腕足动物门:修订间差异

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| image = PlatystrophiaOrdovician.jpg
| image = PlatystrophiaOrdovician.jpg
| image_width = 250px
| image_width = 250px
| image_caption = 腕足动物化石(''Platystrophia ponderosa'')
| image_caption = 腕足动物化石 ''Vinlandostrophia ponderosa'' ([[Ordovician]]). Scale bar is 5.0 mm.
| regnum = [[动物界]] Animalia
| regnum = [[动物界]] Animalia
| phylum = '''腕足动物门 Brachiopoda'''
| phylum = '''腕足动物门 Brachiopoda'''
| phylum_authority = [[André Marie Constant Duméril|Duméril]], 1806
| phylum_authority = [[:en:André Marie Constant Duméril|Duméril]], 1806{{sfn|Zvyagintsev etc: Brachio fouling|(2007)||}}
| subdivision_ranks = [[纲]]
| subdivision_ranks = [[亞門]]與[[纲]]
| subdivision =
| subdivision = 見[[#分類|分類]]
| diversity_link = List of brachiopod genera
[[无绞纲]]<br />
| diversity = About 100 living [[genera]].<br />About 5,000 fossil genera.{{sfn|Cohen: Brachiopoda ELS|(2002)|}}
[[有绞纲]]
}}
}}
'''腕足动物门'''([[學名]]:{{lang|la|'''Brachiopoda'''}})是[[动物|动物界]]的一个门,全部是海产、底栖、有一對硬壳的触手冠动物。但與[[雙殼類]]動物不同的是:其殼是上、下開合,而不是左、右開合。鉸位在後背部,而前方可開合作捕食或防御。自寒武紀開始演化,不足300种;[[化石]]种类却有2,100多屬,30000余种,现存的种类多分布在高纬度的冷水区,

'''腕足动物门'''是[[动物|动物界]]的一个门。自寒武紀開始演化,不足300种;[[化石]]种类却有2,100多屬,30000余种,现存的种类多分布在高纬度的冷水区,全部是海产、底栖、具双壳的触手冠动物。
Two major groups are recognized, articulate and inarticulate. Articulate brachiopods have toothed hinges and simple opening and closing muscles, while inarticulate brachiopods have untoothed hinges and a more complex system of muscles used to keep the two halves aligned. In a typical brachiopod a stalk-like [[pedicle (zoology)|pedicle]] projects from an opening in one of the valves, known as the pedicle valve, attaching the animal to the seabed but clear of silt that would obstruct the opening.

== 語源 ==
The word "brachiopod" is formed from the [[Ancient Greek]] words βραχίων ("arm") and πούς ("foot").{{sfn|Shorter Oxford English Dictionary|(2002)|loc=entry "Brachiopod"}} They are often known as "lamp shells", since the curved shells of the [[class (biology)|class]] [[Terebratulida]] look rather like pottery oil-lamps.{{sfn|Cohen: Brachiopoda ELS|(2002)|}}

Lifespans range from 3 to over 30 years. Ripe [[gamete]]s ([[ovum|ova]] or [[sperm]]) float from the [[gonad]]s into the main coelom and then exit into the mantle cavity. The [[larva]]e of inarticulate brachiopods are miniature adults, with lophophores that enable the larvae to feed and swim for months, until the animals become heavy enough to settle to the seabed. Larvae of articulate species are different from the adult forms, live only on [[yolk]], remain only among the plankton for only a few days, and then start [[metamorphosis|metamorphosing]].

In addition to the traditional classification into inarticulate and articulate brachiopods, two approaches appeared in the 1990s: grouping the inarticulate [[Craniida]] with articulate brachiopods, as both used the same material in the [[mineral]] layers of the shell; and making the Craniida a third group, as their outer [[organic matter | organic]] layer is different from that of either the others. However, some [[taxonomist]]s believe it is premature to suggest higher levels of classification such as [[order (biology) | order]], and recommend a bottom-up approach that identifies genera and then groups these into intermediate groups. Traditionally brachiopods have been regarded as members of or as a [[sister group]] to the [[deuterostome]]s, a super-phylum that includes [[chordate]]s and [[echinoderm]]s. One type of analysis of brachiopods' evolutionary relationships has always placed brachiopods as [[protostome]]s, while another type has split between placing brachiopods among the protostomes or the deuterostomes.

In 2003 it was suggested that brachiopods evolved from an ancestor similar to ''[[Halkieria]]'', a [[slug]]-like animal with "[[chain mail]]" on its back and a shell at the front and rear end, and that the ancestral brachiopod converted its shells into a pair of valves by folding the rear part of its body under its front. However, new fossils found in 2007 to 2008 showed that [[tommotiid]]s' "chain mail" formed the tube of a [[Sessility (zoology) | sessile]] animal, and that one resembled [[phoronid]]s, which are close relatives or a sub-group of brachiopod, while the other tommotiid bearing two symmetrical plates that might be an early form of brachiopod valves. Lineages that have both fossil and [[extant taxon | extant]] brachiopods appeared in the early [[Cambrian]], [[Ordovician]] and [[Carboniferous]] [[period (geology) | periods]] respectively. Other lineages have arisen and then become extinct, sometimes during severe [[mass extinctions]]. At their peak in the [[Paleozoic]] [[era (geology) | era]] the brachiopods were among the most abundant filter-feeders and reef-builders, and occupied other [[ecological niche]]s, including swimming in the jet-propulsion style of [[scallop]]s. Brachiopod fossils have been useful indicators of climate changes during the [[Paleozoic]] era. However, after the [[Permian–Triassic extinction event]], brachiopods recovered only a third of their former diversity. A study in 2007 concluded that brachiopods were especially vulnerable to the Permian–Triassic extinction, as they built calcareous hard parts (made of [[calcium carbonate]]) and had low [[metabolic rate]]s and weak respiratory systems. It was often thought that brachiopods were in decline after the Permian–Triassic extinction, and were out-competed by bivalves. However, a study in 1980 concluded that: both brachiopods and bivalves increased all the way from the Paleozoic to modern times, but bivalves increased faster; after the Permian–Triassic extinction, brachiopods for the first time were less diverse than bivalves.

Brachiopods live only in the sea, and most species avoid locations with strong currents or waves. Articulate species have larvae that settle in quickly and form dense populations in [[Endemism | well-defined areas]], while inarticulate larvae swimming for up to a month and have wide ranges. Brachiopods now live mainly in cold and low-light conditions. Fish and crustaceans seem to find brachiopod flesh distasteful and seldom attack them. Among brachiopods only the lingulids have been fished commercially, on a very small scale. One brachiopod species may be a measure of environmental conditions around an oil terminal being built in Russia on the shore of the [[Sea of Japan]].
== 分類 ==
主要為分為兩綱──[[無鉸綱]]和[[有鉸綱]]──有鉸綱的兩殼間有齒和槽可絞合,無鉸綱則否。無鉸綱生物殼主要成分是[[幾丁質]]、磷酸鹽,有肛門;有鉸綱生物的殼主要成分是[[鈣]]質,無肛門,排泄器官為[[原腎]]。
*[[无绞纲]]
*[[有绞纲]]


== 特征 ==
== 特征 ==
介壳两枚,大小相等或不等,掩盖背腹两面;介壳的形状和饰纹以及内部器官的构造,是鉴定腕足纲属、种的依据;身体柔软、左右对称;头顶有突出部;上生许多触手,称为“腕足”;消化道呈U字形弯曲,常缺少肛门;具有体腔和后肾。
介壳两枚,大小相等或不等,掩盖背腹两面;介壳的形状和饰纹以及内部器官的构造,是鉴定腕足纲属、种的依据;身体柔软、左右对称;头顶有突出部;上生许多触手,称为“腕足”;消化道呈U字形弯曲,常缺少肛门;具有体腔和后肾。
===Shells and their mechanisms===
[[File:Brachiopod valves and pedicle (articulate) 01.png|right | thumb | 100px | An articulate brachiopod:<br /><span style="background:#939391;">&nbsp;&nbsp;&nbsp;</span> Pedicle valve<br /><span style="background:#dcdcdb;">&nbsp;&nbsp;&nbsp;</span> Brachial valve<br /><span style="background:#ff80ff;">&nbsp;&nbsp;&nbsp;</span> Pedicle</span><br /><span style="background:olive;">&nbsp;&nbsp;&nbsp;</span> Surface</span>]]
Modern brachiopods range from {{convert|1|to|100|mm|in}} long, and most species are about {{convert|10|to|30|mm|in}}.{{sfn|Cohen: Brachiopoda ELS|(2002)|}} Each has two [[biomineralization|biomineralized]] valves (shell sections). The valves cover the dorsal and ventral surface of the animal, unlike [[bivalve]] [[molluscs]] whose shells cover the lateral surfaces. The brachial valve bears on its inner surface the brachia ("arms") from which the phylum gets its name, and which supports the [[lophophore]], used for [[filter feeder|filtering]] and [[Aquatic respiration|respiration]]. The other is known as the pedicle valve, as its inner surface bears the stalk-like pedicle by which most brachiopods attach themselves to surfaces.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} The brachial and pedicle valves are often called the [[Anatomical terms of location#Dorsal and ventral|dorsal]] ("upper") and ventral ("lower"),{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} but some [[paleontology|paleontologists]] regard "dorsal" and "ventral" as incorrect terms, since they believe that the "ventral" valve was formed by folding of the upper surface under the body.{{sfn|Cohen: Brachiopoda ELS|(2002)|}} Irrespective of this debate, the valves of brachiopods are differently arranged of those of [[bivalve]] [[molluscs]], which lie on the left and right sides of the body. In most brachiopod species both valves are convex, the surfaces often bear growth lines or other ornaments, and the pedicle valve is larger than the brachial. However, the lingulids, which burrow into the seabed, have valves that are smoother, flatter and of similar size and shape.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

Brachiopod valves have a [[hinge]], in which the rearmost end of the brachial valve rocks on an internal projection of the pedicle valve. The internal projections of articulate ("jointed") brachiopods have teeth that fit into sockets on the brachial valve, an arrangement that locks the valves together. Inarticulate brachiopods have no matching teeth and sockets, and their valves are held together only by muscles.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

<!-- ******
Brachiopod shells can be classified according to the angle between the cardinal plane and the plane where the shells join (commissure); '''anacline''' shells have an angle of less than 90°, whereas '''aspacline''' shells have a higher angle.<ref>http://www.encyclopedia.com/doc/1O13-apsacline.html; http://www.mcz.harvard.edu/Departments/InvertPaleo/Trenton/Intro/PaleoPage/Terminology&Morphology/Terminology&Morphology.htm#InclinationofBra</ref> *****
-->
All brachiopods have adductor muscles, that are set on the inside of the pedicle valve and close the valves by pulling on the part of the brachial valve ahead of the hinge. These muscles have both "quick" fibers that close the valves in emergencies and "catch" fibers that are slower but can keep the valves closed for long periods. Articulate brachiopods open the valves by means of abductor muscles, also known as diductors, which lie further to the rear and pull on the part of the brachial valve behind the hinge. Inarticulate brachiopods use a different opening mechanism, in which muscles reduce the length of the [[coelom]] (main body cavity) and make it bulge outwards, pushing the valves apart. Both [[class (biology)|classes]] open the valves to an angle of about 10°. The more complex set of muscles employed by inarticulate brachiopods can also operate the valves as scissors, a mechanism that lingulids use to burrow.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}
{{Annotated image | float=right | image=Lingula anatina.jpg | width=200 | image-width=200 | height=100 | image-top=-50
| caption=The inarticulate species ''[[Lingula anatina]]'', showing the long pedicle, flattened shells and prominent [[chaeta]]e around the front edge of the shells
|annotations=
}}
Each valve consists of three layers, an outer [[periostracum]] made of [[organic compound]]s and two [[biomineralization|biomineralized]] layers. Articulated brachiopods have a periostracum made of [[protein]]s, a "primary layer" of [[calcite]] (a form of [[calcium carbonate]]) under that, and finally a mixture of proteins and calcite.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Inarticulate brachiopod shells have a similar sequence of layers, but their composition is different from that articulated brachiopods and also varies between the [[class (biology)|classes]] of inarticulate brachiopods. Linguids and discinids, which have pedicles, have a [[matrix (biology)|matrix]] of [[glycosaminoglycan]]s (long, unbranched [[polysaccharide]]s), in which other material are embedded: [[chitin]] in the periostracum;{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} [[apatite]] containing [[calcium phosphate]] in the primary biomineralized layer;<ref>"Apatite" is strictly defined in terms of its structure rather than chemical composition. Some forms contain calcium phosphate and others have calcium carbonate. See see {{cite web|url=http://www.uwex.edu/wgnhs/Mineral%20Index/Minerals/apatite.htm|title=Apatite Ca5(PO4, CO3)3(F, Cl, OH) Hexagonal<!--original title lacks proper subscripts-->|last=Cordua|first=W.S.|publisher=University of Wisconsin|accessdate=23 October 2009}}</ref> and a complex mixture in the innermost layer, containing [[collagen]] and other proteins, chitinophosphate and apatite.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} [[Craniidae|Craniids]], which have no pedicle and cement themselves directly to hard surfaces, have a periostracum of [[chitin]] and mineralized layers of calcite.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}{{sfn|Parkinson etc: Brachiopod shells|(2005)|}}

===Mantle===
Brachiopods, as with [[mollusc]]s, have an [[epithelium|epithelial]] mantle that secretes and lines the shell, and encloses the internal organs. The brachiopod body occupies only about one-third of the internal space inside the shell, nearest the hinge. The rest of the space is lined with the mantle [[lobe (anatomy)|lobes]], extensions that enclose a water-filled space in which sits the lophophore.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} The coelom extends into each lobe as a network of canals, which carry nutrients to the edges of the mantle.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}}

Relatively new cells in a groove on the edges of the mantle secrete material that extends the periostracum. These cells are gradually displaced to the underside of the mantle by more recent cells in the groove, and switch to secreting the mineralized material of the shell valves. In other words, on the edge of the valve the periostracum is extended first, and then reinforced by extension of the mineralized layers under the periostracum.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} In most species the edge of the mantle also bears movable bristles, often called [[chaeta]]e or [[setae]], that may help defend the animals and may act as [[sensor]]s. In some brachiopods groups of chaetae help to channel the flow of water into and out of the mantle cavity.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

In most brachiopods, [[diverticulum|diverticula]] (hollow extensions) of the mantle penetrate through the mineralized layers of the valves into the periostraca. The function of these diverticula is uncertain and it is suggested that they may be storage chambers for chemicals such as [[glycogen]], may [[secretion|secrete]] repellents to deter organisms that stick to the shell or may help in [[Breathing|respiration]].{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Experiments show that a brachiopod's [[oxygen]] consumption drops if [[petroleum jelly]] is smeared on the shell, clogging the diverticula.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}}

===Lophophore===
Like [[bryozoan]]s and [[phoronid]]s, brachiopods have a lophophore, a crown of tentacles whose [[cilia]] (fine hairs) create a water current that enables them to [[filter feeder|filter]] food particles out of the water. However a bryozoan or phoronid lophophore is a ring of tentacles mounted on a single, retracted stalk,{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Bryozoa"|pp=829–845}}{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Phoronida"|pp=817–821}} while the basic form of the brachiopod lophophore is U-shaped,<!--
**** check this
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--> forming the brachia ("arms") from which the phylum gets its name.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Brachiopod lophophores are non-retractable and occupy up to two-thirds of the internal space, in the frontmost area where the valves gape when opened. To provide enough filtering capacity in this restricted space, lophophores of larger brachiopods are folded in moderately to very complex shapes—loops and coils are common, and some species' lophophores resemble a hand with the fingers splayed.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} In all species the lophophore is supported by [[cartilage]] and by a [[hydrostatic skeleton]] (in other words by the pressure of its internal fluid),{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} and the fluid extends into the tentacles.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Some articulate brachiopods also have a brachidium, a calcareous support for the lophophore attached to the inside of the brachial valve.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}}

The tentacles bear [[cilia]] (fine mobile hairs) on their edges and along the center. The beating of the outer cilia drives a water current from the tips of the tentacles to their bases, where it exits. Food particles that collide with the tentacles are trapped by [[mucus]], and the cillia down the middle drive this mixture to the base of the tentacles.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Introduction"|p=817}} A brachial groove runs round the bases of the tentacles, and its own cilia pass food along the groove towards the mouth.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} The method used by brachiopods is known as "upstream collecting", as food particles are captured as they enter the field of cilia that creates the feeding current. This method is used by the related [[phoronid]]s and [[bryozoan]]s, and also by [[pterobranch]]s. [[Entoproct]]s use a similar-looking crown of tentacles, but it is solid and the flow runs from bases to tips, forming a "downstream collecting" system that catches food particles as they are about to exit.{{sfn|Riisgård etc: Downstream|(2000)|}}

===Attachment to substrate===
[[File:Lingulid burrow 01.png|right | thumb | 150px | A lingulid in in its burrow, in "up" and retracted positions{{sfn|Emig: Inart Brach|(2001)|}}]]
Most modern species attach to hard surfaces by means of a cylindrical pedicle ("stalk"), an extension of the body wall. This has a chitinous [[cuticle]] (non-cellular "skin") and protrudes through an opening in the hinge.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} However, some [[genus|genera]] such as the inarticulate ''Crania'' and the articulate ''Lacazella'' have no pedicle, and cement the rear of the "pedicle" valve to a surface so that the front is slightly inclined up away from the surface.{{sfn|Cohen: Brachiopoda ELS|(2002)|}}{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} In a few articulate genera such as ''[[Neothyris]]'' and ''[[Anakinetica]]'', the pedicles wither as the adults grow and finally lie loosely on the surface. In these genera the shells are thickened and shaped so that the opening of the gaping valves is kept free of the sediment.{{sfn|Cohen: Brachiopoda ELS|(2002)|}}

Pedicles of inarticulate species are extensions of the main coelom, which houses the internal organs. A layer of longitudinal muscles lines the [[squamous epithelium|epidermis]] of the pedicle.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Members of the [[order (biology)|order]] Lingulida have long pedicles, which they use to burrow into soft substrates, to raise the shell to the opening of the burrow to feed, and to retract the shell when disturbed.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} A lingulid moves its body up and down the top two-thirds of the burrow, while the remaining third is occupied only by the pedicle, with a bulb on the end that builds a "concrete" anchor.{{sfn|Emig: Inart Brach|(2001)|}} However, the pedicles of the order Discinida are short and attach to hard surfaces.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

An articulate pedicle has no coelom, is constructed from a different part of the [[larva]]l body, and has a core composed of [[connective tissue]]. Muscles at the rear of the body can straighten, bend or even rotate the pedicle. The far end of the pedicle generally has rootlike extensions or short papillae ("bumps"), which attach to hard surfaces. However, articulate brachiopods of genus ''Chlidonophora'' use a branched pedicle to anchor in [[sediment]]. The pedicle emerges from the pedicle valve, either through a notch in the hinge or, in species where the pedicle valve is longer than the brachial, from a hole where the pedicle valve doubles back to touch the brachial valve. Some species stand with the front end upwards, while others lie horizontal with the pedicle valve uppermost.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

===Feeding and excretion===
[[File:Liospiriferina rostrata Noir.jpg|thumb|A fossil of ''Spiriferina rostrata'' with visible skeleton of the lophophore]]
The water flow enters the lophophore from the sides of the open valves and exits at the front of the animal. In lingulids the entrance and exit channels are formed by groups of chaetae that function as funnels.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} In other brachiopods the entry and exit channels are organized by the shape of the lophophore.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} The lophophore captures food particles, especially [[phytoplankton]] (tiny [[photosynthetic]] organisms), and deliver them to the mouth via the brachial grooves along the bases of the tentacles.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}
The mouth is at the base of the lophophore.{{sfn|Cohen etc: Brachiopod fold|(2003)|}} Food passes through the mouth, muscular [[pharynx]] ("throat") and [[oesophagus]] ("gullet"),{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} all of which are lined with cilia and cells that secrete [[mucus]] and digestive [[enzymes]].{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} The [[stomach]] wall has branched ceca ("pouches") where food is digested, mainly within the cells.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

Nutrients are transported throughout the coelom, including the mantle lobes, by cilia.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} The wastes produced by [[metabolism]] are broken into [[ammonia]], which is eliminated by [[diffusion]] through the mantle and lophophore.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Brachiopods have [[metanephridia]], used by many [[phylum|phyla]] to excrete ammonia and other dissolved wastes. However, brachiopods have no sign of the [[podocytes]], which perform the first phase of excretion in this process,{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Bilateria" sect. "Excretion"|pp=212–214}} and brachiopod metanephridia appear to be used only to emit [[sperm]] and [[ovum|ova]].{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

The majority of food consumed by brachiopods is digestible, with very little solid waste produced.{{sfn|Cowen: History of life|(2000)|loc=ch. "Invert Paleo"|p=408}} The cilia of the lophophore can change direction to eject isolated particles of indigestible matter. If the animal encounters larger lumps of undesired matter, the cilia lining the entry channels pause and the tentacles in contact with the lumps move apart to form large gaps and then slowly use their cilia to dump the lumps onto the lining of the mantle. This has its own cilia, which wash the lumps out through the opening between the valves. If the lophophore is clogged, the adductors snap the valves sharply, which creates a "sneeze" that clears the obstructions.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} In some inarticulate brachiopods the digestive tract is U-shaped and ends with an anus that eliminates solids from the front of the body wall.{{sfn|Cohen etc: Brachiopod fold|(2003)|}} Other inarticulate brachiopods and all articulate brachiopods have a curved gut that ends blindly, with no anus.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} These animals bundle solid waste with mucus and periodically "sneeze" it out, using sharp contractions of the gut muscles.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}}

===Circulation and respiration===
The lophophore and mantle are the only surfaces that absorb [[oxygen]] and eliminate [[carbon dioxide]]. Oxygen seems to be distributed by the fluid of the coelom, which is circulated through the mantle and driven either by contractions of the lining of the coelom or by beating of its cilia. In some species oxygen is partly carried by the [[respiratory pigment]] [[hemerythrin]], which is transported in coelomocyte cells.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}The maximum oxygen consumption of brachiopods is low, and their minimum requirement is not measurable.

Brachiopods also have colorless [[blood]], circulated by a muscular heart lying in the dorsal part of the body above the stomach.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} The blood passes through vessels that extend to the front and back of the body, and branch to organs including the lophophore at the front and the gut, muscles, gonads and nephridia at the rear. The blood circulation seems not to be completely closed, and the coelomic and blood fluids must mix to a degree.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} The main function of the blood may be to deliver nutrients.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

===Nervous system and senses===
The "brain" of adult articulates consists of two [[ganglion|ganglia]], one above and the other below the [[oesophagus]]. Adult inarticulates have only the lower ganglion.{{sfn|Nielsen: Brachio brains|(2005)|}} From the ganglia and the [[commissure]]s where they join, nerves run to the lophophore, the mantle lobes and the muscles that operate the valves. The edge of the mantle has probably the greatest concentration of sensors. Although not directly connected to [[sensory neurons]], the mantle's [[chaeta]]e probably send [[tactile]] signals to receptors in the [[squamous epithelium|epidermis]] of the mantle. Many brachiopods close their valves if shadows appear above them, but the cells responsible for this are unknown. Some brachiopods have [[statocyst]]s, which detect changes in the animals' position.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

===Reproduction and lifecycle===
Lifespans range from 3 to over 30&nbsp;years.{{sfn|Cohen: Brachiopoda ELS|(2002)|}} Adults of most species are of one sex throughout their lives. The [[gonad]]s are masses of developing [[gamete]]s ([[ovum|ova]] or [[sperm]]), and most species have four gonads, two in each valve.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} Those of articulates lie in the channels of the mantle lobes, while those of inarticulates lie near the gut.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} Ripe gametes float into the main coelom and then exit into the mantle cavity via the [[metanephridia]], which open on either side of the mouth. Most species release both ova and sperm into the water, but females of some species keep the [[embryo]]s in brood chambers until the larvae hatch.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

The [[Cleavage (embryo)|cell division]] in the embryo is radial (cells form in stacks of rings directly above each other), holoblastic (cells are separate, although adjoining) and regulative (the type of tissue into which a cell develops is controlled by interactions between adjacent cells, rather than rigidly within each cell).{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Bilateria" sect. "Reproduction"|pp=214–219}}{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} While some animals develop the mouth and [[anus]] by deepening the [[blastopore]], a "dent" in the surface of the early embryo, the blastopore of brachiopods closes up, and their mouth and anus develop from new openings.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}

The [[larva]]e of inarticulates swim as [[plankton]] for months{{sfn|Cohen: Brachiopoda ELS|(2002)|}} and are like miniature adults, with valves, mantle lobes, a pedicle that coils in the mantle cavity, and a small lophophore, which is used for both feeding and swimming{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}—except that [[Craniidae|Craniids]] have no pedicle.{{sfn|Doherty: Lophophorates|(2001)|loc=sect. "Introduction", "Brachiopoda"|pp=341–342, 356–363}} As the shell becomes heavier, the juvenile sinks to the bottom and becomes a sessile adult.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} The larvae of articulate species live only on [[yolk]], and remain among the plankton for only a few days.{{sfn|Cohen: Brachiopoda ELS|(2002)|}} This type of larva has a [[cilia]]ted frontmost lobe that becomes the body and lophophore, a rear lobe that becomes the pedicle, and a mantle like a skirt, with the hem towards the rear. On [[metamorphosis|metamorphosing]] into an adult, the pedicle attaches to a surface, the front lobe develops the lophophore and other organs, and the mantle rolls up over the front lobe and starts to [[secretion|secrete]] the shell.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}
The maximum oxygen consumption of brachiopods is low, and their minimal requirement is not measurable. In cold seas, brachiopod growth is seasonal and the animals often lose weight in winter. These variations in growth often form growth lines in the shells. Members of some [[genus|genera]] have survived for a year in aquaria without food.{{sfn|Cohen: Brachiopoda ELS|(2002)|}}

=={{anchor|TaxonomyAnchor}}Taxonomy==
[[File:Pygites diphyoides (d'Orbigny).jpg|thumb|''Pygites diphyoides'' ([[d'Orbigny]], 1849) from the [[Hauterivian]] (Lower Cretaceous) of Cehegin, Murcia, Spain. This terebratulid is characterized by a central perforation through its valves.]]
Fossil brachiopod [[genus|genera]] have great diversity but only a few [[skeleton|skeletal]] characteristics, while the modern genera have much lower diversity but provide soft-bodied characteristics as well as skeletal ones—and both sets of specimens have limitations that make it difficult to produce a comprehensive classification of brachiopods. The phylum also has experienced significant [[convergent evolution]] and reversals (in which a more recent group seems to have lost a characteristic that is seen in an intermediate group, reverting to a characteristic last seen in an older group). Hence some brachiopod [[taxonomy|taxonomists]] believe it is premature to define higher levels of classification such as [[order (biology)|order]], and recommend instead a bottom-up approach that identifies genera and then groups these into intermediate groups.{{sfn|Carlson: Ghosts|(2001)|}}

However, other taxonomists believe that some patterns of characteristics are sufficiently stable to make higher-level classifications worthwhile, although there are different views about what the higher-level classifications should be.{{sfn|Carlson: Ghosts|(2001)|}}
The "traditional" classification was defined in 1869;{{sfn|ITIS: Brachiopoda||}} two further approaches were established in the 1990s:{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
*In the "traditional" classification, the Articulata have toothed hinges between the valves, while the hinges of the Inarticulata are held together only by muscles.{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
*A classification devised in the 1990s, based on the materials of which the shells are based, united the [[Craniida]] and the "articulate" brachiopods in the [[Calciata]], which have [[calcite]] shells. The [[Lingulida]] and [[Discinida]], combined in the [[Lingulata]], have shells made of [[chitin]] and [[calcium phosphate]].{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
*A three-part scheme, also from the 1990s, places the Craniida in a separate group of its own, the [[Craniformea]]. The Lingulida and Discinida are grouped as [[Linguliformea]], and the Rhynchonellida and Terebratulida as [[Rhynchonelliformea]].{{sfn|Milsom etc: 3-part taxonomy|(2009)||}}{{sfn|Williams etc: Suprafamilial Classif|(2000)|loc=Preface|pp=xxxix-xlv}}

{| class="wikitable"
|+ Three high-level classifications of brachiopods{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
|- style="text-align:center;"
! style="background:#ffc;"| "Traditional" classification{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} !! style="background:#ffc;" colspan="3"| Inarticulata !! style="background:#ffc;" colspan="2"| Articulata
|- style="text-align:center;"
! style="background:#ffc;"| "Calciata" approach{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} !! style="background:#ffc;" colspan="2"| [[Lingulata]] !! style="background:#ffc;" colspan="3"| [[Calciata]]
|- style="text-align:center;"
! style="background:#ffc;"| Three-part approach{{sfn|Milsom etc: 3-part taxonomy|(2009)||}}{{sfn|Williams etc: Suprafamilial Classif|(2000)|loc=Preface|pp=xxxix-xlv}}
!! style="background:#ffc;" colspan="2"| Linguliformea !! style="background:#ffc;"| Craniformea !! style="background:#ffc;" colspan="2"| Rhynchonelliformea
|- style="text-align:center;"
! [[Order (biology)|Orders]] !! [[Lingulida]]{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} !! [[Discinida]]{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} !! [[Craniida]]{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} !! [[Terebratulida]]{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}} !! [[Rhynchonellida]]{{sfn|Ruppert etc: Invert Zoo|(2004)|loc=ch. "Lophophorata" sect. "Brachiopoda"|pp=821–829}}
|- style="text-align:center;"
! Hinge
| colspan="3" | No teeth || colspan="2" | Teeth and sockets
|- style="text-align:center;"
! Anus
| colspan="3" | On front of body, at end of U-shaped gut || colspan="2" | None
|- style="text-align:center;"
! rowspan="2" | Pedicle
| colspan="2" | Contains [[coelom]] with muscles running through || No pedicle || colspan="2" | No coelom, muscles where joins body
|- style="text-align:center;"
| Long, burrows || Short, attached to hard surfaces || None, cemented to surface || colspan="2" | Short, attached to hard surfaces{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
|- style="text-align:center;"
! [[Periostracum]]
| colspan="2" | [[Glycosaminoglycans]] and [[chitin]] || Chitin || colspan="2" | [[Protein]]s
|- style="text-align:center;"
! Primary (middle) [[Biomineralization|mineralized]] layer of shell
| colspan="2" | Glycosaminoglycans and [[apatite]] (calcium phosphate) || colspan="3" | [[Calcite]] (a form of [[calcium carbonate]])
|- style="text-align:center;"
! Inner mineralized layer of shell
| colspan="2" | [[Collagen]] and other proteins, chitinophosphate and apatite (calcium phosphate) || Calcite || colspan="2" | Proteins and calcite
|- style="text-align:center;"
! [[Chaeta]]e around opening of shells
| colspan="2" | Yes{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} || No{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} || colspan="2" | Yes{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
|- style="text-align:center;"
! [[Coelom]] fully divided
| colspan="2" | Yes{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} || No{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} || colspan="2" | Yes{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}
|}

About 330&nbsp;living species are recognized,{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}} grouped into over 100&nbsp;[[genus|genera]]. The great majority of modern brachiopods are rhynchonelliforms (Articulata, but excluding Craniida).{{sfn|Cohen: Brachiopoda ELS|(2002)|}}

==Ecology==
===Distribution and habitat===
Brachiopods live only in the sea. Most species avoid locations with strong currents or waves, and typical sites include rocky overhangs, crevices and caves, steep slopes of [[continental shelf|continental shelves]], and in the bottoms of deep oceans. However, some articulate species attach to [[kelp]] or in exceptionally sheltered sites in [[intertidal zone]]s. The smallest living brachiopod, ''[[Gwynia]]'', is only about {{convert|1|mm|in}} long, and lives in [[gravel]].{{sfn|Cohen: Brachiopoda ELS|(2002)|}}
Rhynchonelliforms (Articulata excluding Craniida), whose larvae consume only their yolks and settle and develop quickly, specialize in [[Endemism|specific areas]] and form dense populations that can reach thousands per meter. Young adults often attach to the shells of more mature ones. On the other hand, inarticulate brachipods, whose larva swim for up to a month before settling, have wide ranges. Members of the discinoid genus ''[[Pelagodiscus]]'' have a [[cosmopolitan distribution]].{{sfn|Cohen: Brachiopoda ELS|(2002)|}}

===Interactions with other organisms===
[[File:StrophomenidCornulitidOrdovician.jpg|thumb|[[Strophomenida|Strophomenid]] brachiopod with attached [[Cornulitida|cornulitid]] worm tube (Upper [[Ordovician]], SE [[Indiana]], USA). Brachiopod valves often serve as substrates for encrusting organisms.]]
Brachiopod [[metabolism]]s are 3 to 10&nbsp;times slower than those of [[bivalve]]s. While brachiopods were abundant in warm, shallow seas during the [[Cretaceous]] [[period (geology)|period]], they have been outcompeted by bivalves, and now live mainly in cold and low-light conditions.{{sfn|Vermeij: Directionality|(1999)||}}

Brachiopod shells occasionally show evidence of damage by predators, and sometimes of subsequent repair. Fish and crustaceans seem to find brachiopod flesh distasteful.{{sfn|Cohen: Brachiopoda ELS|(2002)|}} The fossil record shows that drilling predators like [[gastropod]]s attacked [[mollusc]]s and [[echinoid]]s 10 to 20 times more often than they did brachiopods, suggesting that such predators attacked brachiopods by mistake or when other prey was scarce.{{sfn|Kowalewski etc: 2nd-choice prey|(2002)||}} In waters where food is scarce, the snail ''[[Capulus ungaricus]]'' steals food from bivalves, snails, tube worms, and brachiopods.{{sfn|Iyengar: Kleptoparasitism|(2008)||}}

Among brachiopods only the lingulids have been fished commercially, and only on a very small scale.{{sfn|UCMP: Lingulata||}} Brachiopods seldom settle on artificial surfaces, probably because they are vulnerable to pollution. This may make the population of ''[[Coptothyrus adamsi]]'' useful as a measure of environmental conditions around an oil terminal being built in Russia on the shore of the [[Sea of Japan]].{{sfn|Zvyagintsev etc: Brachio fouling|(2007)||}}

==Evolutionary history==
===Fossil record===
{{Main|Evolutionary history of brachiopods}}
<div style="float:right; width:auto; padding:0; margin:2px">
<div style="width:auto; position: relative"><!-- So can annotate with absolutely positioned divs -->
<table style="float:right;" border="1" cellspacing="0" cellpadding="0">
<caption>Timeline of major fossil brachiopod groups{{sfn|UCMP: Brachio Fossil Range||}}</caption>
<tr>
<td style="width:95px; text-align:right;">Era&nbsp;</td>
<td colspan="6" style="text-align:center;">'''[[Paleozoic]]'''</td>
<td colspan="3" style="text-align:center;">'''[[Mesozoic]]'''</td>
<td colspan="2" style="text-align:center;">'''[[Cenozoic|Cen]]'''</td>
</tr>
<tr>
<td style="text-align:right;">Period&nbsp;</td>
<td style="width:27px; text-align:center;">'''[[Cambrian|Cm]]'''</td>
<td style="width:22px; text-align:center;">'''[[Ordovician|O]]'''</td>
<td style="width:14px; text-align:center;">'''[[Silurian|S]]'''</td>
<td style="width:29px; text-align:center;">'''[[Devonian|D]]'''</td>
<td style="width:30px; text-align:center;">'''[[Carboniferous|C]]'''</td>
<td style="width:24px; text-align:center;">'''[[Permian|P]]'''</td>
<td style="width:26px; text-align:center;">'''[[Triassic|Tr]]'''</td>
<td style="width:27px; text-align:center;">'''[[Jurassic|J]]'''</td>
<td style="width:40px; text-align:center;">'''[[Cretaceous|K]]'''</td>
<td style="width:21px; text-align:center;">'''[[Paleogene|Pg]]'''</td>
<td style="width:12px; text-align:center;">'''[[Neogene|N]]'''</td>
</tr>
<tr>
<td style="height:240px;">&nbsp;</td><!-- To position taxa names here -->
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td>&nbsp;</td>
<!-- To position timeline bars here -->
</tr>
</table>
<!-- Taxa and their bars, each pair in containing divs to set Y coord of each pair -->
<div style="position: absolute; top:70px; left:5px">Lingulata</div>
<div style="position:absolute; background:green; top:70px; left:102px; width:290px;">&nbsp;</div>
<div style="position: absolute; top:100px; left:5px">Obolellida</div>
<div style="position:absolute; background:green; top:100px; left:102px; width:10px;">&nbsp;</div>
<div style="position: absolute; top:130px; left:5px">Strophomenida</div>
<div style="position:absolute; background:green; top:130px; left:126px; width:157px;">&nbsp;</div>
<div style="position: absolute; top:160px; left:5px">Orthodida</div>
<div style="position:absolute; background:green; top:160px; left:110px; width:145px;">&nbsp;</div>
<div style="position: absolute; top:190px; left:5px">Pentamerida</div>
<div style="position:absolute; background:green; top:190px; left:118px; width:79px;">&nbsp;</div>
<div style="position: absolute; top:220px; left:5px">Rhynchonellida</div>
<div style="position:absolute; background:green; top:220px; left:126px; width:266px;">&nbsp;</div>
<div style="position: absolute; top:250px; left:5px">Spiriferida</div>
<div style="position:absolute; background:green; top:250px; left:139px; width:152px;">&nbsp;</div>
<div style="position: absolute; top:280px; left:5px">Terebratulida</div>
<div style="position:absolute; background:green; top:280px; left:200px; width:192px;">&nbsp;</div>
</div></div>

Over 12,000&nbsp;fossil species are recognized,{{sfn|Ax: Multicellular Animals|(2003)|loc=ch."Brachiopoda"|pp=87–93}}grouped into over 5,000&nbsp;[[genus|genera]]. While the largest modern brachiopods are {{convert|100|mm|in}} long,{{sfn|Cohen: Brachiopoda ELS|(2002)|}} a few fossils measure up to {{convert|200|mm|in}} wide.{{sfn|Fortey: Fossils the key|(2008)|loc=ch. "How to recognize" sect. "Brachiopods"}} The earliest confirmed brachiopods have been found in the early [[Cambrian]], inarticulate forms appearing first, followed soon after by articulate forms.{{sfn|Ushatinskaya: Earliest brachiopods|(2008)|}} Three unmineralized species have also been found in the Cambrian, and apparently represent two distinct groups that evolved from mineralized ancestors.{{sfn|Balthasar etc: Brachios stem Phoronids|(2009)||}} The inarticulate ''[[Lingula (genus)|Lingula]]'' is often called a "[[living fossil]]", as very similar [[genus|genera]] have been all the way back to the [[Ordovician]]. On the other hand, articulate brachiopods have produced major diversifications, and suffered severe [[mass extinctions]]{{sfn|Fortey: Fossils the key|(2008)|loc=ch.
"How to recognize" sect. "Brachiopods"}}—but the articulate Rhynchonellida and Terebratulida, the most diverse present-day groups, appeared at the start of the Ordovician and [[Carboniferous]] respectively.{{sfn|UCMP: Brachio Fossil Range||}}

Since 1991 Nielsen has proposed a hypothesis about the development of brachiopods, adapted in 2003 by Cohen and colleagues as a hypothesis about the earliest evolution of brachiopods. This "brachiopod fold" hypothesis suggests that brachiopods evolved from an ancestor similar to ''[[Halkieria]]'',{{sfn|Cohen etc: Brachiopod fold|(2003)|}} a [[slug]]-like animal with "[[chain mail]]" on its back and a shell at the front and rear end.{{sfn|Conway Morris etc: Articulated Halkieriids|(1995)}} The hypothesis proposes that the first brachiopod converted its shells into a pair of valves by folding the rear part of its body under its front.{{sfn|Cohen etc: Brachiopod fold|(2003)|}}

However, fossils from 2007 onwards have supported a new interpretation of the Early-Cambrian [[tommotiid]]s and a new hypothesis that brachiopods evolved from tommotiids. The "armor mail" of tommotiids was well-known but not in an assembled form, and it was generally assumed that tommotiids were slug-like animals similar to ''Halkieria'', except that tommotiids' armor was made of [[organophosphatic]] compounds while that of ''Halkieria'' was made of [[calcite]]. However fossils of a new tommotiid, ''[[Eccentrotheca]]'', showed an assembled mail coat that formed a tube, which would indicate a sessile animal rather than a creeping slug-like one. ''Eccentrotheca'''s organophosphatic tube resembled that of [[phoronid]]s,<ref name="SkovstedBrockEtAl2008Eccentrotheca">{{cite doi | 10.1130/G24385A.1 }}</ref><!-- {{sfn|Skovsted etc: Eccentrotheca|(2008)||}} --> sessile animals that feed by [[lophophore]]s and are regarded either very close relatives or a sub-group of brachiopods.{{sfn|Cohen: Phoronids in Brachios|(2000|)}} ''[[Paterimitra]]'', another mostly assembled fossil found in 2008 and described in 2009, had two symmetrical plates at the bottom, like brachiopod valves but not fully enclosing the animal's body.<ref name="SkovstedHolmerEtAl2009Paterimitra">{{cite doi|10.1098/rspb.2008.1655}}</ref>

[[File:Onniella.jpg| thumb | right | 180px | A dense assemblage of the [[Ordovician]] species ''Dalmanella meeki'']]
At their peak in the [[Paleozoic]] the brachiopods were among the most abundant filter-feeders and reef-builders,{{sfn|Barry: Great Dying|(2002)||}} and occupied other [[ecological niche]]s, including swimming in the jet-propulsion style of [[scallop]]s.{{sfn|Cohen: Brachiopoda ELS|(2002)|}} However, after the [[Permian–Triassic extinction event]], informally known as the "Great Dying",{{sfn|Barry: Great Dying|(2002)||}} brachiopods recovered only a third of their former diversity.{{sfn|Barry: Great Dying|(2002)||}} It was often thought that brachiopods were actually decline in diversity, and that in some way bivalves out-competed them. However, in 1980 [[Stephen Jay Gould|Gould]] and Calloway produced a statistical analysis that concluded that: both brachiopods and bivalves increased all the way from the Paleozoic to modern times, but bivalves increased faster; the Permian–Triassic extinction was moderately severe for bivalves but devastating for brachiopods, so that brachiopods for the first time were less diverse than bivalves and their diversity after the Permian increased from a very low base; there is no evidence that bivalves out-competed brachiopods, and short-term increases or decreases for both groups appeared at the same times.{{sfn|Gould etc: Clams and Brachios|(1980)}} In 2007 Knoll and Bambach concluded that brachiopods were one of several groups that were most vulnerable to the Permian–Triassic extinction, as all had calcareous hard parts (made of [[calcium carbonate]]) and had low [[metabolic rate]]s and weak respiratory systems.{{sfn|Knoll etc: P-Tr extinction|(2007)|}}

Brachiopod fossils have been useful indicators of climate changes during the [[Paleozoic]] era. When global temperatures were low, as in much of the [[Ordovician]], the large difference in temperatures between equator and poles created different collections of fossils at different [[latitude]]s. On the other hand, warmer periods, such much of the [[Silurian]], created smaller difference in temperatures, and all seas at the low to middle latitudes were colonized by the same few brachiopod species.{{sfn|Gaines etc: Inverteb proxies|(2009)|}}

===Evolutionary family tree===
====Deuterostomes or protostomes====
From about the 1940s to the 1990s, [[phylogeny|family trees]] based on [[embryology|embryological]] and [[morphology (biology)|morphological]] features placed brachiopods among or as a [[sister group]] to the [[deuterostome]]s.{{sfn|Halanych: New phylogeny|(2004)|}}<ref>De Rosa (2001) cites the following examples of brachiopods as close to deuterostomes:
* {{cite book|last=Hyman|first=L.H.|title=The invertebrates|publisher=McGraw-Hill|year=1940|isbn=0-07-031661-9}}
* {{cite journal|last=Eernisse|first=D.J.|coauthors=Albert, J.S., and Anderson., F.E.|year=1992|title=Annelida and Arthropoda are not sister taxa: A phylogenetic analysis of spiralian metazoan morphology|journal=Systemic Biology|volume=41|pages=305–330}}
* {{cite book|last=Nielsen|first=C.|title=Animal evolution: Interrelationships of the living phyla|publisher=Oxford University Press|year=1995|isbn=0-19-854867-2}}
* {{cite journal|last=Lüter|first=C.|coauthors=Bartholomaeus, T.|title=The phylogenetic position of Brachiopoda—a comparison of morphological and molecular data|journal=Zoological Scripta|volume=26|pages=245–253|doi=10.1111/j.1463-6409.1997.tb00414.x|year=1997|issue=3}}
</ref> a super-phylum that includes [[chordate]]s and [[echinoderm]]s.{{sfn|UCMP: Deuterostomia|}} Closer examination has found difficulties in the grounds on which brachiopods were affiliated with deuterostomes:<ref name="DeRosa2001BrachiopodsProtostomes" />
* [[Radial cleavage]] in the earliest [[cell division|divisions]] of the egg appears to be the original condition for the ancestral bilaterians, in the earliest Ecdysozoa and possibly in the earliest [[Eutrochozoa]], a major sub-group of the Lophotrochozoa.{{sfn|Valentine: Cleavage patterns|}} Hence radial cleavage does not imply that brachiopods are affiliated with deuterostomes.<ref name="DeRosa2001BrachiopodsProtostomes" />
* The traditional view is that the [[coelom]](s) in deuterostomes and protostomes form by different process, called [[enterocoely]] and [[schizocoely]] respectively.<ref name="DeRosa2001BrachiopodsProtostomes" /> However, research since the early 1990s has found significant exceptions.{{sfn|Valentine: Cleavage patterns|(1997)|}}<ref>
* {{cite book|last=Ruppert|first=E.E|title=Microscopic anatomy of invertebrates, volume 4: Aschelminthes|editor=Harrison, F.W., and Ruppert, E.E|publisher=Wiley-Liss|year=1991|pages=1–17|chapter=Introduction to the aschelminth phyla: A consideration of mesoderm, body cavities, and cuticle}}
* {{cite journal|doi=10.1111/j.1469-185X.1999.tb00046.x|last=Budd|first=G.E|coauthors=Jensen, S|year=2000|title=A critical reappraisal of the fossil record of the bilaterian phyla|journal=Biological Review of the Cambridge Philosophical Society|volume=75|pages=253–295|pmid=10881389|issue=2}}
</ref> Both types of coelom construction appear among brachiopods, and therefore do not imply that brachiopods are deuterostomes.<ref name="DeRosa2001BrachiopodsProtostomes" />
* The terms "deuterostomes" and "protostomes" originally defined distinct ways of forming the mouth from the [[blastopore]], a depression that appears in an early stage of the [[embryo]]. However, some "protostomes" forming the mouth using a process more like that typical of deuterostomes.<ref>
*{{cite book|last=Anderson|first=D.T.|title=Embryology and phylogeny in annelids and arthropods|publisher=Pergamon Press Ltd|year=1973|isbn=0-08-017069-2}}
*{{cite journal|last=Arendt|first=D.|coauthors=Nubler-Jung, K.|year=1997|title=Dorsal or ventral: Similarities in fate maps and gastrulation patterns in annelids, arthropods and chordates|journal=Mechanisms of Development|volume=71|issue=1–2|pages=7–21|doi=10.1016/S0925-4773(96)00620-X }}
</ref> Hence forming the mouth via a deuterostome-like process does not imply that brachiopods are affiliated with deuterostomes.<ref name="DeRosa2001BrachiopodsProtostomes" />

Nielsen views the brachiopods and closely related [[phoronid]]s as affiliated with the deuterostome [[pterobranchs]] because their lophophores are driven by one [[cilia|cilium]] per cell, while those of [[bryozoan]]s, which he regards as protosomes, have multiple cilia per cell.{{sfn|Nielsen: Phylog pos of Brachios|(2002)|}} However, pterobranchs are [[hemichordate]]s and probably closely related to [[echinoderm]]s, and there is no evidence that the latest common ancestor of pterobranchs and other hemichordates or the latest common ancestor of hemichordates and echinoderms was [[sessility (zoology)|sessile]] and fed by means of tentacles.<ref name="DeRosa2001BrachiopodsProtostomes" />

From 1988 onwards analyses based on [[molecular phylogeny]], which compares [[biochemistry|biochemical]] features such as similarities in [[DNA]], have placed brachiopods among the [[Lophotrochozoa]], a [[protostome]] super-phylum that includes [[mollusc]]s, [[annelid]]s and [[flatworm]]s but excludes the other protostome super-phylum [[Ecdysozoa]], whose members include [[arthropod]]s.{{sfn|Halanych: New phylogeny |(2004)|}}<ref name="DeRosa2001BrachiopodsProtostomes">{{cite journal|doi=10.1080/106351501753462830|last=de Rosa|first=R.|year=2001|title=Molecular Data Indicate the Protostome Affinity of Brachiopods|journal=Systematic Biology|volume=50|issue=6|pages=848–859|url=http://sysbio.oxfordjournals.org/cgi/reprint/50/6/848.pdf|accessdate=27 Jan 2010|pmid=12116636}}</ref> This conclusion is unanimous among molecular phylogeny studies, which use a wide selection of genes: [[Ribosomal DNA|rDNA]], [[Hox genes]], [[mitochondria]]l [[protein]] genes, single [[Cell nucleus|nuclear]] [[protein]] genes and sets of nuclear protein genes.{{sfn|Helmkampf etc: Lophotrochozoa concept|(2008)|}}

Some combined studies in 2000 and 2001, using both molecular and morphological data, support brachiopods as Lophotrochozoa,{{sfn|Giribet etc: Combined phylogeny|(2000)|}}{{sfn|Peterson etc: Combined phylogeny|(2001)|}} while others in 1998 and 2004 concluded that brachiopods were deuterostomes.{{sfn|Helmkampf etc: Lophotrochozoa concept|(2008)|}}

====Relationship with other lophotrochozoans====
The [[phoronid]]s feed with a lophophore, burrow or encrust on surfaces, and build three-layered tubes made of [[polysaccharide]], possibly [[chitin]], mixed with particles with seabed material. Traditionally they have been regarded as a separate phylum, but increasingly detailed molecular phylogeny studies between 1997 and 2000 have concluded that phoronids are a sub-group of brachiopods.{{sfn|Cohen: Phoronids in Brachios|(2000|)}} However, an analysis in 2005 concluded that phoronids are a sub-group of [[bryozoa]]ns.{{sfn|Wood etc: Phylactolaemate Phylog|(2005)|}}

While all molecular phylogeny studies and half the combined studies until 2008 conclude that brachiopods are [[lophotrochozoa]]ns, they could not identify which lophotrochozoan phylum were the closest relatives of brachiopods—except phoronids, which are a sub-group of brachiopods.{{sfn|Cohen: Phoronids in Brachios|(2000|)}}{{sfn|Helmkampf etc: Lophotrochozoa concept|(2008)|}} However in 2008 two analyses found that brachiopods' closest lophotrochozoan relatives were [[nemertea|nemertine]]s. The authors found this surprising, since nemertines have [[spiral cleavage]] in the early stages of [[cell division]] and form a [[trochophore]] [[larva]], while brachiopods have [[radial cleavage]] and a larva that shows no sign of having evolved from a trochophore.{{sfn|Dunn etc: Close to Nemertines|(2008)|}}{{sfn|Bourlat etc: Close to Nemertines|(2008)|}} Another study in 2008 also concluded that brachiopods are closely related to nemertines, casting doubt on the idea that brachiopods are part of a [[clade]] [[Lophophorata]] of lophophore-feeding animals within the lophotrochozoans.{{sfn|Helmkampf etc: Lophotrochozoa concept|(2008)|}}

==Gallery==
<gallery>
Image:Brachiopoda-morphology.png|Brachiopod morphology
Image:Brachiopod Neospirifer.jpg|A [[Carboniferous]] brachiopod ''Neospirifer condor'', from Bolivia. The specimen is 7&nbsp;cm across.
Image:Rhynchotremadentatum.jpg|''Rhynchotrema dentatum'', a rhynchonellid brachiopod from the Cincinnatian (Upper [[Ordovician]]) of southeastern Indiana.
Image:HederellaOH3.jpg|A [[Devonian]] spiriferid brachiopod from Ohio that served as a host substrate for a colony of [[hederellid]]s. The specimen is 5 cm wide.
Image:Syringothyris01.JPG|''Syringothyris'' sp.; a spiriferid brachiopod from the [[Logan Formation]] (Lower [[Carboniferous]]) of [[Wooster, Ohio]] (internal molds).
Image:PetrocraniaOrdovician.jpg|''Petrocrania'' brachiopods attached to a strophomenid brachiopod; Upper Ordovician of southeastern Indiana.
Image:LingulaanatinaAA.JPG|''Lingula anatina'' from Stradbroke Island, Australia.
Image:Brachiopods Leberfinger quarry.jpg|Brachiopod casts in the [[Lock Haven Formation]]
Image:HercosestriaSmallCluster040111.jpg|''[[Hercosestria]] cribrosa'' Cooper & Grant 1969 (Roadian, Guadalupian, Middle Permian); Glass Mountains, Texas.
</gallery>

== 參看 ==
*[[List of brachiopod genera]]
*''[[Novocrania anomala]]''
*[[Margaret Jope]]

== 註釋 ==
{{reflist|colwidth=25em}}

== 參考資料 ==
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<!-- <ref name="DeRosa2001BrachiopodsProtostomes">{{cite journal|doi=10.1080/106351501753462830|last=de Rosa|first=R.|year=2001|title=Molecular Data Indicate the Protostome Affinity of Brachiopods|journal=Systematic Biology|volume=50|issue=6|pages=848–859|url=http://sysbio.oxfordjournals.org/cgi/reprint/50/6/848.pdf|accessdate=27 Jan 2010|pmid=12116636}}</ref> -->
* {{cite journal | doi=10.1080/106351501753462830 | last=de Rosa | first=R | year=2001 | title=Molecular Data Indicate the Protostome Affinity of Brachiopods
| journal=Systematic Biology | volume=50 | issue=6 | pages=848–859 | url=http://sysbio.oxfordjournals.org/cgi/reprint/50/6/848.pdf
| accessdate=27 Jan 2010 | ref={{SfnRef|de Rosa: Downstream|(2000)}} | pmid=12116636 }}
* {{cite book | last1=Ruppert | first=E.E | coauthors=Fox, R.S., and Barnes, R.D
| title=Invertebrate Zoology | publisher=Brooks / Cole | edition=7 | isbn=0-03-025982-7
| year=2004 | ref={{SfnRef|Ruppert etc: Invert Zoo|(2004)}} }}
<!-- <ref name="SkovstedBrockEtAl2008Eccentrotheca">{{cite doi | 10.1130/G24385A.1 }}</ref> -->
* {{cite doi | 10.1130/G24385A.1 | ref={{SfnRef|Skovsted etc: Eccentrotheca|(2008)}} }}
* {{cite book | last1=Trumble | first1=W | coauthors=Brown, L
| title=Shorter Oxford English Dictionary
| publisher=Oxford University Press, USA | year=2002 |isbn=0-19-860457-2
| ref={{SfnRef|Shorter Oxford English Dictionary|(2002)}} }}
* {{cite web | url=http://www.ucmp.berkeley.edu/brachiopoda/lingulata.html
| title=Introduction to the Lingulata
| publisher=University of California Museum of Paleontology | accessdate=16 Nov 2009
| ref={{SfnRef|UCMP: Lingulata||}} }}
* {{cite web | url=http://www.ucmp.berkeley.edu/brachiopoda/brachiopodafr.html
| title=Fossil Range Chart of Brachiopods|publisher=University of California Museum of Paleontology
| accessdate=16 Nov 2009 | ref={{SfnRef|UCMP: Brachio Fossil Range||}} }}
* {{cite web | url=http://www.ucmp.berkeley.edu/phyla/deuterostomia.html | title=Introduction to the Deuterostomia
| publisher=University of California Museum of Paleontology | accessdate=27 January 2010 | ref={{SfnRef|UCMP: Deuterostomia|}} }}
* {{cite journal | last=Ushatinskaya | first=G.T | year=2008
|title=Origin and dispersal of the earliest brachiopods | journal=Paleontological Journal
| publisher=Springer Verlag | volume=42 | issue=8 | pages=776–791
| doi=10.1134/S0031030108080029 | ref={{SfnRef|Ushatinskaya: Earliest brachiopods|(2008)|}} }}
* {{cite journal | last=Valentine | first=J.W | year=1997 | title=Cleavage patterns and the topology of the metazoan tree of life
| journal=Proceedings of the National Academy of Sciences | volume=94 | issue=15 | pages=8001–8005
|doi=10.1073/pnas.94.15.8001| ref={{SfnRef|Valentine: Cleavage patterns|(1997)|}} | pmid=9223303 | pmc=21545 |bibcode = 1997PNAS...94.8001V }}
* {{cite journal | last=Vermeij | first=G.T | date=March, 1999
| title=Inequality and the Directionality of History | journal=The American Naturalist
|publisher=The American Society of Naturalists | volume=153 | issue=3 | pages=243–253
|jstor=2463821| ref={{SfnRef|Vermeij: Directionality|(1999)}} }}
* {{cite book | year=2000 |last1=Williams | first1=A | last2=Carlson | first2=C.H.C
| last3=Brunton | first3=S.J | editor=Williams, A., Carlson, C.H.C, and Brunton, S.J
| work=Treatise on Invertebrate Paleontology | title=Brachiopoda
| chapter=Outline of Suprafamilial Classification and Authorship | pages=xxxix-xlv
| publisher=Geological Society of America and The University of Kansas
|isbn=0-8137-3108-9 | ref={{SfnRef|Williams etc: Suprafamilial Classif|(2000)}} }}
* {{cite book | last=Wood | first=T.S | coauthors=Lore | others=M
| title=Bryozoan Studies 2004: Proceedings of the 13th International Bryozoology Association
| editor=Moyano, H. I., Cancino, J. M. and Wyse-Jackson, P.N | publisher=Taylor & Francis Group | location=London | year=2005 | pages=361–367
| chapter=The higher phylogeny of phylactolaemate bryozoans inferred from 18S ribosomal DNA sequences
| ref={{SfnRef|Wood etc: Phylactolaemate Phylog|(2005)}} }}
* {{cite journal | last=Zvyagintsev |first= A.Y | coauthors=Radashevsky, V. I., and Kashin, I. A
| date=August, 2007
| title=First record of a brachiopod (Brachiopoda: Terebrataliidae) in the fouling of hydrotechnical installations in Peter the Great Bay, Sea of Japan
| journal=Russian Journal of Marine Biology | volume=33 | issue=4 | pages=264–266 | doi=10.1134/S1063074007040098
| ref={{SfnRef|Zvyagintsev etc: Brachio fouling|(2007)}} }}
{{refend}}


== 分类 ==
==Further reading==
*{{cite book|last=Moore|first=R.C.|coauthors=Lalicker, C.G., and Fischer, A.G.|title=Invertebrate Fossils|publisher=Mcgraw-Hill College|date=June 1952|isbn=0-07-043020-9}}
主要為分為兩綱──無鉸綱和有鉸綱──有鉸綱的兩殼間有齒和槽可絞合,無鉸綱則否。無鉸綱生物殼主要成分是[[幾丁質]]、磷酸鹽,有肛門;有鉸綱生物的殼主要成分是[[鈣]]質,無肛門,排泄器官為[[原腎]]。


== 外部連結 ==
{{生物學小作品}}
{{Commonscat|Brachiopoda}}
*[http://www.ucmp.berkeley.edu/brachiopoda/brachiopoda.html UC-Berkeley Museum of Paleontology]
* [http://www.palaeos.com/Invertebrates/Lophotrochozoa/Brachiopoda/E0A0E0Brachiopoda.htm Palaeos Brachiopoda]
*[http://paleopolis.rediris.es/BrachNet/ BrachNet]
*[http://www.kgs.ku.edu/Extension/fossils/brachiopod.html Information from the Kansas Geological Survey]
*[http://perso.wanadoo.fr/jean-ours.filippi/brach/anglais/poursavoirplusang22.html site of R.Filippi]
*[http://paleopolis.rediris.es/Brachiopoda_Phoronida_databases/ Brachiopoda World Database]


{{Template:动物界}}
{{动物界}}


[[Category:腕足动物门|*]]
[[Category:腕足动物门| ]]


{{Link GA|de}}
{{Link GA|de}}

2013年2月26日 (二) 18:44的版本

腕足动物门
化石時期: 下寒武纪至現代
腕足动物化石 Vinlandostrophia ponderosa (Ordovician). Scale bar is 5.0 mm.
腕足动物化石 Vinlandostrophia ponderosa (Ordovician). Scale bar is 5.0 mm.
科學分類
界: 动物界 Animalia
門: 腕足动物门 Brachiopoda
Duméril, 1806[1]
多樣性
About 100 living genera.
About 5,000 fossil genera.[2]
亞門

分類

腕足动物门學名Brachiopoda)是动物界的一个门,全部是海产、底栖、有一對硬壳的触手冠动物。但與雙殼類動物不同的是:其殼是上、下開合,而不是左、右開合。鉸位在後背部,而前方可開合作捕食或防御。自寒武紀開始演化,不足300种;化石种类却有2,100多屬,30000余种,现存的种类多分布在高纬度的冷水区,

Two major groups are recognized, articulate and inarticulate. Articulate brachiopods have toothed hinges and simple opening and closing muscles, while inarticulate brachiopods have untoothed hinges and a more complex system of muscles used to keep the two halves aligned. In a typical brachiopod a stalk-like pedicle projects from an opening in one of the valves, known as the pedicle valve, attaching the animal to the seabed but clear of silt that would obstruct the opening.

語源

The word "brachiopod" is formed from the Ancient Greek words βραχίων ("arm") and πούς ("foot").[3] They are often known as "lamp shells", since the curved shells of the class Terebratulida look rather like pottery oil-lamps.[2]

Lifespans range from 3 to over 30 years. Ripe gametes (ova or sperm) float from the gonads into the main coelom and then exit into the mantle cavity. The larvae of inarticulate brachiopods are miniature adults, with lophophores that enable the larvae to feed and swim for months, until the animals become heavy enough to settle to the seabed. Larvae of articulate species are different from the adult forms, live only on yolk, remain only among the plankton for only a few days, and then start metamorphosing.

In addition to the traditional classification into inarticulate and articulate brachiopods, two approaches appeared in the 1990s: grouping the inarticulate Craniida with articulate brachiopods, as both used the same material in the mineral layers of the shell; and making the Craniida a third group, as their outer organic layer is different from that of either the others. However, some taxonomists believe it is premature to suggest higher levels of classification such as order, and recommend a bottom-up approach that identifies genera and then groups these into intermediate groups. Traditionally brachiopods have been regarded as members of or as a sister group to the deuterostomes, a super-phylum that includes chordates and echinoderms. One type of analysis of brachiopods' evolutionary relationships has always placed brachiopods as protostomes, while another type has split between placing brachiopods among the protostomes or the deuterostomes.

In 2003 it was suggested that brachiopods evolved from an ancestor similar to Halkieria, a slug-like animal with "chain mail" on its back and a shell at the front and rear end, and that the ancestral brachiopod converted its shells into a pair of valves by folding the rear part of its body under its front. However, new fossils found in 2007 to 2008 showed that tommotiids' "chain mail" formed the tube of a sessile animal, and that one resembled phoronids, which are close relatives or a sub-group of brachiopod, while the other tommotiid bearing two symmetrical plates that might be an early form of brachiopod valves. Lineages that have both fossil and extant brachiopods appeared in the early Cambrian, Ordovician and Carboniferous periods respectively. Other lineages have arisen and then become extinct, sometimes during severe mass extinctions. At their peak in the Paleozoic era the brachiopods were among the most abundant filter-feeders and reef-builders, and occupied other ecological niches, including swimming in the jet-propulsion style of scallops. Brachiopod fossils have been useful indicators of climate changes during the Paleozoic era. However, after the Permian–Triassic extinction event, brachiopods recovered only a third of their former diversity. A study in 2007 concluded that brachiopods were especially vulnerable to the Permian–Triassic extinction, as they built calcareous hard parts (made of calcium carbonate) and had low metabolic rates and weak respiratory systems. It was often thought that brachiopods were in decline after the Permian–Triassic extinction, and were out-competed by bivalves. However, a study in 1980 concluded that: both brachiopods and bivalves increased all the way from the Paleozoic to modern times, but bivalves increased faster; after the Permian–Triassic extinction, brachiopods for the first time were less diverse than bivalves.

Brachiopods live only in the sea, and most species avoid locations with strong currents or waves. Articulate species have larvae that settle in quickly and form dense populations in well-defined areas, while inarticulate larvae swimming for up to a month and have wide ranges. Brachiopods now live mainly in cold and low-light conditions. Fish and crustaceans seem to find brachiopod flesh distasteful and seldom attack them. Among brachiopods only the lingulids have been fished commercially, on a very small scale. One brachiopod species may be a measure of environmental conditions around an oil terminal being built in Russia on the shore of the Sea of Japan.

分類

主要為分為兩綱──無鉸綱有鉸綱──有鉸綱的兩殼間有齒和槽可絞合,無鉸綱則否。無鉸綱生物殼主要成分是幾丁質、磷酸鹽,有肛門;有鉸綱生物的殼主要成分是質,無肛門,排泄器官為原腎

特征

介壳两枚,大小相等或不等,掩盖背腹两面;介壳的形状和饰纹以及内部器官的构造,是鉴定腕足纲属、种的依据;身体柔软、左右对称;头顶有突出部;上生许多触手,称为“腕足”;消化道呈U字形弯曲,常缺少肛门;具有体腔和后肾。

Shells and their mechanisms

An articulate brachiopod:
    Pedicle valve
    Brachial valve
    Pedicle
    Surface

Modern brachiopods range from 1至100毫米(0.039至3.937英寸) long, and most species are about 10至30毫米(0.39至1.18英寸).[2] Each has two biomineralized valves (shell sections). The valves cover the dorsal and ventral surface of the animal, unlike bivalve molluscs whose shells cover the lateral surfaces. The brachial valve bears on its inner surface the brachia ("arms") from which the phylum gets its name, and which supports the lophophore, used for filtering and respiration. The other is known as the pedicle valve, as its inner surface bears the stalk-like pedicle by which most brachiopods attach themselves to surfaces.[4] The brachial and pedicle valves are often called the dorsal ("upper") and ventral ("lower"),[4] but some paleontologists regard "dorsal" and "ventral" as incorrect terms, since they believe that the "ventral" valve was formed by folding of the upper surface under the body.[2] Irrespective of this debate, the valves of brachiopods are differently arranged of those of bivalve molluscs, which lie on the left and right sides of the body. In most brachiopod species both valves are convex, the surfaces often bear growth lines or other ornaments, and the pedicle valve is larger than the brachial. However, the lingulids, which burrow into the seabed, have valves that are smoother, flatter and of similar size and shape.[4]

Brachiopod valves have a hinge, in which the rearmost end of the brachial valve rocks on an internal projection of the pedicle valve. The internal projections of articulate ("jointed") brachiopods have teeth that fit into sockets on the brachial valve, an arrangement that locks the valves together. Inarticulate brachiopods have no matching teeth and sockets, and their valves are held together only by muscles.[4]

All brachiopods have adductor muscles, that are set on the inside of the pedicle valve and close the valves by pulling on the part of the brachial valve ahead of the hinge. These muscles have both "quick" fibers that close the valves in emergencies and "catch" fibers that are slower but can keep the valves closed for long periods. Articulate brachiopods open the valves by means of abductor muscles, also known as diductors, which lie further to the rear and pull on the part of the brachial valve behind the hinge. Inarticulate brachiopods use a different opening mechanism, in which muscles reduce the length of the coelom (main body cavity) and make it bulge outwards, pushing the valves apart. Both classes open the valves to an angle of about 10°. The more complex set of muscles employed by inarticulate brachiopods can also operate the valves as scissors, a mechanism that lingulids use to burrow.[4]

The inarticulate species Lingula anatina, showing the long pedicle, flattened shells and prominent chaetae around the front edge of the shells

Each valve consists of three layers, an outer periostracum made of organic compounds and two biomineralized layers. Articulated brachiopods have a periostracum made of proteins, a "primary layer" of calcite (a form of calcium carbonate) under that, and finally a mixture of proteins and calcite.[4] Inarticulate brachiopod shells have a similar sequence of layers, but their composition is different from that articulated brachiopods and also varies between the classes of inarticulate brachiopods. Linguids and discinids, which have pedicles, have a matrix of glycosaminoglycans (long, unbranched polysaccharides), in which other material are embedded: chitin in the periostracum;[4] apatite containing calcium phosphate in the primary biomineralized layer;[5] and a complex mixture in the innermost layer, containing collagen and other proteins, chitinophosphate and apatite.[4][6] Craniids, which have no pedicle and cement themselves directly to hard surfaces, have a periostracum of chitin and mineralized layers of calcite.[4][7]

Mantle

Brachiopods, as with molluscs, have an epithelial mantle that secretes and lines the shell, and encloses the internal organs. The brachiopod body occupies only about one-third of the internal space inside the shell, nearest the hinge. The rest of the space is lined with the mantle lobes, extensions that enclose a water-filled space in which sits the lophophore.[4] The coelom extends into each lobe as a network of canals, which carry nutrients to the edges of the mantle.[8]

Relatively new cells in a groove on the edges of the mantle secrete material that extends the periostracum. These cells are gradually displaced to the underside of the mantle by more recent cells in the groove, and switch to secreting the mineralized material of the shell valves. In other words, on the edge of the valve the periostracum is extended first, and then reinforced by extension of the mineralized layers under the periostracum.[8] In most species the edge of the mantle also bears movable bristles, often called chaetae or setae, that may help defend the animals and may act as sensors. In some brachiopods groups of chaetae help to channel the flow of water into and out of the mantle cavity.[4]

In most brachiopods, diverticula (hollow extensions) of the mantle penetrate through the mineralized layers of the valves into the periostraca. The function of these diverticula is uncertain and it is suggested that they may be storage chambers for chemicals such as glycogen, may secrete repellents to deter organisms that stick to the shell or may help in respiration.[4] Experiments show that a brachiopod's oxygen consumption drops if petroleum jelly is smeared on the shell, clogging the diverticula.[8]

Lophophore

Like bryozoans and phoronids, brachiopods have a lophophore, a crown of tentacles whose cilia (fine hairs) create a water current that enables them to filter food particles out of the water. However a bryozoan or phoronid lophophore is a ring of tentacles mounted on a single, retracted stalk,[9][10] while the basic form of the brachiopod lophophore is U-shaped, forming the brachia ("arms") from which the phylum gets its name.[4] Brachiopod lophophores are non-retractable and occupy up to two-thirds of the internal space, in the frontmost area where the valves gape when opened. To provide enough filtering capacity in this restricted space, lophophores of larger brachiopods are folded in moderately to very complex shapes—loops and coils are common, and some species' lophophores resemble a hand with the fingers splayed.[4] In all species the lophophore is supported by cartilage and by a hydrostatic skeleton (in other words by the pressure of its internal fluid),[8] and the fluid extends into the tentacles.[4] Some articulate brachiopods also have a brachidium, a calcareous support for the lophophore attached to the inside of the brachial valve.[8]

The tentacles bear cilia (fine mobile hairs) on their edges and along the center. The beating of the outer cilia drives a water current from the tips of the tentacles to their bases, where it exits. Food particles that collide with the tentacles are trapped by mucus, and the cillia down the middle drive this mixture to the base of the tentacles.[11] A brachial groove runs round the bases of the tentacles, and its own cilia pass food along the groove towards the mouth.[4] The method used by brachiopods is known as "upstream collecting", as food particles are captured as they enter the field of cilia that creates the feeding current. This method is used by the related phoronids and bryozoans, and also by pterobranchs. Entoprocts use a similar-looking crown of tentacles, but it is solid and the flow runs from bases to tips, forming a "downstream collecting" system that catches food particles as they are about to exit.[12]

Attachment to substrate

A lingulid in in its burrow, in "up" and retracted positions[13]

Most modern species attach to hard surfaces by means of a cylindrical pedicle ("stalk"), an extension of the body wall. This has a chitinous cuticle (non-cellular "skin") and protrudes through an opening in the hinge.[4] However, some genera such as the inarticulate Crania and the articulate Lacazella have no pedicle, and cement the rear of the "pedicle" valve to a surface so that the front is slightly inclined up away from the surface.[2][4] In a few articulate genera such as Neothyris and Anakinetica, the pedicles wither as the adults grow and finally lie loosely on the surface. In these genera the shells are thickened and shaped so that the opening of the gaping valves is kept free of the sediment.[2]

Pedicles of inarticulate species are extensions of the main coelom, which houses the internal organs. A layer of longitudinal muscles lines the epidermis of the pedicle.[4] Members of the order Lingulida have long pedicles, which they use to burrow into soft substrates, to raise the shell to the opening of the burrow to feed, and to retract the shell when disturbed.[8] A lingulid moves its body up and down the top two-thirds of the burrow, while the remaining third is occupied only by the pedicle, with a bulb on the end that builds a "concrete" anchor.[13] However, the pedicles of the order Discinida are short and attach to hard surfaces.[4]

An articulate pedicle has no coelom, is constructed from a different part of the larval body, and has a core composed of connective tissue. Muscles at the rear of the body can straighten, bend or even rotate the pedicle. The far end of the pedicle generally has rootlike extensions or short papillae ("bumps"), which attach to hard surfaces. However, articulate brachiopods of genus Chlidonophora use a branched pedicle to anchor in sediment. The pedicle emerges from the pedicle valve, either through a notch in the hinge or, in species where the pedicle valve is longer than the brachial, from a hole where the pedicle valve doubles back to touch the brachial valve. Some species stand with the front end upwards, while others lie horizontal with the pedicle valve uppermost.[4]

Feeding and excretion

A fossil of Spiriferina rostrata with visible skeleton of the lophophore

The water flow enters the lophophore from the sides of the open valves and exits at the front of the animal. In lingulids the entrance and exit channels are formed by groups of chaetae that function as funnels.[4] In other brachiopods the entry and exit channels are organized by the shape of the lophophore.[8] The lophophore captures food particles, especially phytoplankton (tiny photosynthetic organisms), and deliver them to the mouth via the brachial grooves along the bases of the tentacles.[4] The mouth is at the base of the lophophore.[14] Food passes through the mouth, muscular pharynx ("throat") and oesophagus ("gullet"),[4] all of which are lined with cilia and cells that secrete mucus and digestive enzymes.[8] The stomach wall has branched ceca ("pouches") where food is digested, mainly within the cells.[4]

Nutrients are transported throughout the coelom, including the mantle lobes, by cilia.[8] The wastes produced by metabolism are broken into ammonia, which is eliminated by diffusion through the mantle and lophophore.[4] Brachiopods have metanephridia, used by many phyla to excrete ammonia and other dissolved wastes. However, brachiopods have no sign of the podocytes, which perform the first phase of excretion in this process,[15] and brachiopod metanephridia appear to be used only to emit sperm and ova.[4]

The majority of food consumed by brachiopods is digestible, with very little solid waste produced.[16] The cilia of the lophophore can change direction to eject isolated particles of indigestible matter. If the animal encounters larger lumps of undesired matter, the cilia lining the entry channels pause and the tentacles in contact with the lumps move apart to form large gaps and then slowly use their cilia to dump the lumps onto the lining of the mantle. This has its own cilia, which wash the lumps out through the opening between the valves. If the lophophore is clogged, the adductors snap the valves sharply, which creates a "sneeze" that clears the obstructions.[8] In some inarticulate brachiopods the digestive tract is U-shaped and ends with an anus that eliminates solids from the front of the body wall.[14] Other inarticulate brachiopods and all articulate brachiopods have a curved gut that ends blindly, with no anus.[4] These animals bundle solid waste with mucus and periodically "sneeze" it out, using sharp contractions of the gut muscles.[8]

Circulation and respiration

The lophophore and mantle are the only surfaces that absorb oxygen and eliminate carbon dioxide. Oxygen seems to be distributed by the fluid of the coelom, which is circulated through the mantle and driven either by contractions of the lining of the coelom or by beating of its cilia. In some species oxygen is partly carried by the respiratory pigment hemerythrin, which is transported in coelomocyte cells.[4]The maximum oxygen consumption of brachiopods is low, and their minimum requirement is not measurable.

Brachiopods also have colorless blood, circulated by a muscular heart lying in the dorsal part of the body above the stomach.[4] The blood passes through vessels that extend to the front and back of the body, and branch to organs including the lophophore at the front and the gut, muscles, gonads and nephridia at the rear. The blood circulation seems not to be completely closed, and the coelomic and blood fluids must mix to a degree.[8] The main function of the blood may be to deliver nutrients.[4]

Nervous system and senses

The "brain" of adult articulates consists of two ganglia, one above and the other below the oesophagus. Adult inarticulates have only the lower ganglion.[17] From the ganglia and the commissures where they join, nerves run to the lophophore, the mantle lobes and the muscles that operate the valves. The edge of the mantle has probably the greatest concentration of sensors. Although not directly connected to sensory neurons, the mantle's chaetae probably send tactile signals to receptors in the epidermis of the mantle. Many brachiopods close their valves if shadows appear above them, but the cells responsible for this are unknown. Some brachiopods have statocysts, which detect changes in the animals' position.[4]

Reproduction and lifecycle

Lifespans range from 3 to over 30 years.[2] Adults of most species are of one sex throughout their lives. The gonads are masses of developing gametes (ova or sperm), and most species have four gonads, two in each valve.[4] Those of articulates lie in the channels of the mantle lobes, while those of inarticulates lie near the gut.[8] Ripe gametes float into the main coelom and then exit into the mantle cavity via the metanephridia, which open on either side of the mouth. Most species release both ova and sperm into the water, but females of some species keep the embryos in brood chambers until the larvae hatch.[4]

The cell division in the embryo is radial (cells form in stacks of rings directly above each other), holoblastic (cells are separate, although adjoining) and regulative (the type of tissue into which a cell develops is controlled by interactions between adjacent cells, rather than rigidly within each cell).[18][4] While some animals develop the mouth and anus by deepening the blastopore, a "dent" in the surface of the early embryo, the blastopore of brachiopods closes up, and their mouth and anus develop from new openings.[4]

The larvae of inarticulates swim as plankton for months[2] and are like miniature adults, with valves, mantle lobes, a pedicle that coils in the mantle cavity, and a small lophophore, which is used for both feeding and swimming[4]—except that Craniids have no pedicle.[8] As the shell becomes heavier, the juvenile sinks to the bottom and becomes a sessile adult.[4] The larvae of articulate species live only on yolk, and remain among the plankton for only a few days.[2] This type of larva has a ciliated frontmost lobe that becomes the body and lophophore, a rear lobe that becomes the pedicle, and a mantle like a skirt, with the hem towards the rear. On metamorphosing into an adult, the pedicle attaches to a surface, the front lobe develops the lophophore and other organs, and the mantle rolls up over the front lobe and starts to secrete the shell.[4] The maximum oxygen consumption of brachiopods is low, and their minimal requirement is not measurable. In cold seas, brachiopod growth is seasonal and the animals often lose weight in winter. These variations in growth often form growth lines in the shells. Members of some genera have survived for a year in aquaria without food.[2]

Taxonomy

Pygites diphyoides (d'Orbigny, 1849) from the Hauterivian (Lower Cretaceous) of Cehegin, Murcia, Spain. This terebratulid is characterized by a central perforation through its valves.

Fossil brachiopod genera have great diversity but only a few skeletal characteristics, while the modern genera have much lower diversity but provide soft-bodied characteristics as well as skeletal ones—and both sets of specimens have limitations that make it difficult to produce a comprehensive classification of brachiopods. The phylum also has experienced significant convergent evolution and reversals (in which a more recent group seems to have lost a characteristic that is seen in an intermediate group, reverting to a characteristic last seen in an older group). Hence some brachiopod taxonomists believe it is premature to define higher levels of classification such as order, and recommend instead a bottom-up approach that identifies genera and then groups these into intermediate groups.[19]

However, other taxonomists believe that some patterns of characteristics are sufficiently stable to make higher-level classifications worthwhile, although there are different views about what the higher-level classifications should be.[19] The "traditional" classification was defined in 1869;[20] two further approaches were established in the 1990s:[6]

  • In the "traditional" classification, the Articulata have toothed hinges between the valves, while the hinges of the Inarticulata are held together only by muscles.[4][6]
  • A classification devised in the 1990s, based on the materials of which the shells are based, united the Craniida and the "articulate" brachiopods in the Calciata, which have calcite shells. The Lingulida and Discinida, combined in the Lingulata, have shells made of chitin and calcium phosphate.[6]
  • A three-part scheme, also from the 1990s, places the Craniida in a separate group of its own, the Craniformea. The Lingulida and Discinida are grouped as Linguliformea, and the Rhynchonellida and Terebratulida as Rhynchonelliformea.[21][22]
Three high-level classifications of brachiopods[4][6]
"Traditional" classification[4][6] Inarticulata Articulata
"Calciata" approach[6] Lingulata Calciata
Three-part approach[21][22] Linguliformea Craniformea Rhynchonelliformea
Orders Lingulida[4] Discinida[4] Craniida[4] Terebratulida[4] Rhynchonellida[4]
Hinge No teeth Teeth and sockets
Anus On front of body, at end of U-shaped gut None
Pedicle Contains coelom with muscles running through No pedicle No coelom, muscles where joins body
Long, burrows Short, attached to hard surfaces None, cemented to surface Short, attached to hard surfaces[6]
Periostracum Glycosaminoglycans and chitin Chitin Proteins
Primary (middle) mineralized layer of shell Glycosaminoglycans and apatite (calcium phosphate) Calcite (a form of calcium carbonate)
Inner mineralized layer of shell Collagen and other proteins, chitinophosphate and apatite (calcium phosphate) Calcite Proteins and calcite
Chaetae around opening of shells Yes[6] No[6] Yes[6]
Coelom fully divided Yes[6] No[6] Yes[6]

About 330 living species are recognized,[6] grouped into over 100 genera. The great majority of modern brachiopods are rhynchonelliforms (Articulata, but excluding Craniida).[2]

Ecology

Distribution and habitat

Brachiopods live only in the sea. Most species avoid locations with strong currents or waves, and typical sites include rocky overhangs, crevices and caves, steep slopes of continental shelves, and in the bottoms of deep oceans. However, some articulate species attach to kelp or in exceptionally sheltered sites in intertidal zones. The smallest living brachiopod, Gwynia, is only about 1毫米(0.039英寸) long, and lives in gravel.[2] Rhynchonelliforms (Articulata excluding Craniida), whose larvae consume only their yolks and settle and develop quickly, specialize in specific areas and form dense populations that can reach thousands per meter. Young adults often attach to the shells of more mature ones. On the other hand, inarticulate brachipods, whose larva swim for up to a month before settling, have wide ranges. Members of the discinoid genus Pelagodiscus have a cosmopolitan distribution.[2]

Interactions with other organisms

Strophomenid brachiopod with attached cornulitid worm tube (Upper Ordovician, SE Indiana, USA). Brachiopod valves often serve as substrates for encrusting organisms.

Brachiopod metabolisms are 3 to 10 times slower than those of bivalves. While brachiopods were abundant in warm, shallow seas during the Cretaceous period, they have been outcompeted by bivalves, and now live mainly in cold and low-light conditions.[23]

Brachiopod shells occasionally show evidence of damage by predators, and sometimes of subsequent repair. Fish and crustaceans seem to find brachiopod flesh distasteful.[2] The fossil record shows that drilling predators like gastropods attacked molluscs and echinoids 10 to 20 times more often than they did brachiopods, suggesting that such predators attacked brachiopods by mistake or when other prey was scarce.[24] In waters where food is scarce, the snail Capulus ungaricus steals food from bivalves, snails, tube worms, and brachiopods.[25]

Among brachiopods only the lingulids have been fished commercially, and only on a very small scale.[26] Brachiopods seldom settle on artificial surfaces, probably because they are vulnerable to pollution. This may make the population of Coptothyrus adamsi useful as a measure of environmental conditions around an oil terminal being built in Russia on the shore of the Sea of Japan.[1]

Evolutionary history

Fossil record

Timeline of major fossil brachiopod groups[27]
Era  Paleozoic Mesozoic Cen
Period  Cm O S D C P Tr J K Pg N
                       
Lingulata
 
Obolellida
 
Strophomenida
 
Orthodida
 
Pentamerida
 
Rhynchonellida
 
Spiriferida
 
Terebratulida
 

Over 12,000 fossil species are recognized,[6]grouped into over 5,000 genera. While the largest modern brachiopods are 100毫米(3.9英寸) long,[2] a few fossils measure up to 200毫米(7.9英寸) wide.[28] The earliest confirmed brachiopods have been found in the early Cambrian, inarticulate forms appearing first, followed soon after by articulate forms.[29] Three unmineralized species have also been found in the Cambrian, and apparently represent two distinct groups that evolved from mineralized ancestors.[30] The inarticulate Lingula is often called a "living fossil", as very similar genera have been all the way back to the Ordovician. On the other hand, articulate brachiopods have produced major diversifications, and suffered severe mass extinctions[28]—but the articulate Rhynchonellida and Terebratulida, the most diverse present-day groups, appeared at the start of the Ordovician and Carboniferous respectively.[27]

Since 1991 Nielsen has proposed a hypothesis about the development of brachiopods, adapted in 2003 by Cohen and colleagues as a hypothesis about the earliest evolution of brachiopods. This "brachiopod fold" hypothesis suggests that brachiopods evolved from an ancestor similar to Halkieria,[14] a slug-like animal with "chain mail" on its back and a shell at the front and rear end.[31] The hypothesis proposes that the first brachiopod converted its shells into a pair of valves by folding the rear part of its body under its front.[14]

However, fossils from 2007 onwards have supported a new interpretation of the Early-Cambrian tommotiids and a new hypothesis that brachiopods evolved from tommotiids. The "armor mail" of tommotiids was well-known but not in an assembled form, and it was generally assumed that tommotiids were slug-like animals similar to Halkieria, except that tommotiids' armor was made of organophosphatic compounds while that of Halkieria was made of calcite. However fossils of a new tommotiid, Eccentrotheca, showed an assembled mail coat that formed a tube, which would indicate a sessile animal rather than a creeping slug-like one. Eccentrotheca's organophosphatic tube resembled that of phoronids,[32] sessile animals that feed by lophophores and are regarded either very close relatives or a sub-group of brachiopods.[33] Paterimitra, another mostly assembled fossil found in 2008 and described in 2009, had two symmetrical plates at the bottom, like brachiopod valves but not fully enclosing the animal's body.[34]

A dense assemblage of the Ordovician species Dalmanella meeki

At their peak in the Paleozoic the brachiopods were among the most abundant filter-feeders and reef-builders,[35] and occupied other ecological niches, including swimming in the jet-propulsion style of scallops.[2] However, after the Permian–Triassic extinction event, informally known as the "Great Dying",[35] brachiopods recovered only a third of their former diversity.[35] It was often thought that brachiopods were actually decline in diversity, and that in some way bivalves out-competed them. However, in 1980 Gould and Calloway produced a statistical analysis that concluded that: both brachiopods and bivalves increased all the way from the Paleozoic to modern times, but bivalves increased faster; the Permian–Triassic extinction was moderately severe for bivalves but devastating for brachiopods, so that brachiopods for the first time were less diverse than bivalves and their diversity after the Permian increased from a very low base; there is no evidence that bivalves out-competed brachiopods, and short-term increases or decreases for both groups appeared at the same times.[36] In 2007 Knoll and Bambach concluded that brachiopods were one of several groups that were most vulnerable to the Permian–Triassic extinction, as all had calcareous hard parts (made of calcium carbonate) and had low metabolic rates and weak respiratory systems.[37]

Brachiopod fossils have been useful indicators of climate changes during the Paleozoic era. When global temperatures were low, as in much of the Ordovician, the large difference in temperatures between equator and poles created different collections of fossils at different latitudes. On the other hand, warmer periods, such much of the Silurian, created smaller difference in temperatures, and all seas at the low to middle latitudes were colonized by the same few brachiopod species.[38]

Evolutionary family tree

Deuterostomes or protostomes

From about the 1940s to the 1990s, family trees based on embryological and morphological features placed brachiopods among or as a sister group to the deuterostomes.[39][40] a super-phylum that includes chordates and echinoderms.[41] Closer examination has found difficulties in the grounds on which brachiopods were affiliated with deuterostomes:[42]

  • Radial cleavage in the earliest divisions of the egg appears to be the original condition for the ancestral bilaterians, in the earliest Ecdysozoa and possibly in the earliest Eutrochozoa, a major sub-group of the Lophotrochozoa.[43] Hence radial cleavage does not imply that brachiopods are affiliated with deuterostomes.[42]
  • The traditional view is that the coelom(s) in deuterostomes and protostomes form by different process, called enterocoely and schizocoely respectively.[42] However, research since the early 1990s has found significant exceptions.[44][45] Both types of coelom construction appear among brachiopods, and therefore do not imply that brachiopods are deuterostomes.[42]
  • The terms "deuterostomes" and "protostomes" originally defined distinct ways of forming the mouth from the blastopore, a depression that appears in an early stage of the embryo. However, some "protostomes" forming the mouth using a process more like that typical of deuterostomes.[46] Hence forming the mouth via a deuterostome-like process does not imply that brachiopods are affiliated with deuterostomes.[42]

Nielsen views the brachiopods and closely related phoronids as affiliated with the deuterostome pterobranchs because their lophophores are driven by one cilium per cell, while those of bryozoans, which he regards as protosomes, have multiple cilia per cell.[47] However, pterobranchs are hemichordates and probably closely related to echinoderms, and there is no evidence that the latest common ancestor of pterobranchs and other hemichordates or the latest common ancestor of hemichordates and echinoderms was sessile and fed by means of tentacles.[42]

From 1988 onwards analyses based on molecular phylogeny, which compares biochemical features such as similarities in DNA, have placed brachiopods among the Lophotrochozoa, a protostome super-phylum that includes molluscs, annelids and flatworms but excludes the other protostome super-phylum Ecdysozoa, whose members include arthropods.[39][42] This conclusion is unanimous among molecular phylogeny studies, which use a wide selection of genes: rDNA, Hox genes, mitochondrial protein genes, single nuclear protein genes and sets of nuclear protein genes.[48]

Some combined studies in 2000 and 2001, using both molecular and morphological data, support brachiopods as Lophotrochozoa,[49][50] while others in 1998 and 2004 concluded that brachiopods were deuterostomes.[48]

Relationship with other lophotrochozoans

The phoronids feed with a lophophore, burrow or encrust on surfaces, and build three-layered tubes made of polysaccharide, possibly chitin, mixed with particles with seabed material. Traditionally they have been regarded as a separate phylum, but increasingly detailed molecular phylogeny studies between 1997 and 2000 have concluded that phoronids are a sub-group of brachiopods.[33] However, an analysis in 2005 concluded that phoronids are a sub-group of bryozoans.[51]

While all molecular phylogeny studies and half the combined studies until 2008 conclude that brachiopods are lophotrochozoans, they could not identify which lophotrochozoan phylum were the closest relatives of brachiopods—except phoronids, which are a sub-group of brachiopods.[33][48] However in 2008 two analyses found that brachiopods' closest lophotrochozoan relatives were nemertines. The authors found this surprising, since nemertines have spiral cleavage in the early stages of cell division and form a trochophore larva, while brachiopods have radial cleavage and a larva that shows no sign of having evolved from a trochophore.[52][53] Another study in 2008 also concluded that brachiopods are closely related to nemertines, casting doubt on the idea that brachiopods are part of a clade Lophophorata of lophophore-feeding animals within the lophotrochozoans.[48]

Gallery

參看

註釋

  1. ^ 1.0 1.1 Zvyagintsev etc: Brachio fouling & (2007).
  2. ^ 2.00 2.01 2.02 2.03 2.04 2.05 2.06 2.07 2.08 2.09 2.10 2.11 2.12 2.13 2.14 2.15 Cohen: Brachiopoda ELS & (2002).
  3. ^ Shorter Oxford English Dictionary & (2002),entry "Brachiopod".
  4. ^ 4.00 4.01 4.02 4.03 4.04 4.05 4.06 4.07 4.08 4.09 4.10 4.11 4.12 4.13 4.14 4.15 4.16 4.17 4.18 4.19 4.20 4.21 4.22 4.23 4.24 4.25 4.26 4.27 4.28 4.29 4.30 4.31 4.32 4.33 4.34 4.35 4.36 4.37 4.38 4.39 4.40 4.41 4.42 4.43 4.44 4.45 4.46 Ruppert etc: Invert Zoo & (2004),第821–829頁,ch. "Lophophorata" sect. "Brachiopoda".
  5. ^ "Apatite" is strictly defined in terms of its structure rather than chemical composition. Some forms contain calcium phosphate and others have calcium carbonate. See see Cordua, W.S. Apatite Ca5(PO4, CO3)3(F, Cl, OH) Hexagonal. University of Wisconsin. [23 October 2009]. 
  6. ^ 6.00 6.01 6.02 6.03 6.04 6.05 6.06 6.07 6.08 6.09 6.10 6.11 6.12 6.13 6.14 6.15 Ax: Multicellular Animals & (2003),第87–93頁,ch."Brachiopoda".
  7. ^ Parkinson etc: Brachiopod shells & (2005).
  8. ^ 8.00 8.01 8.02 8.03 8.04 8.05 8.06 8.07 8.08 8.09 8.10 8.11 8.12 8.13 Doherty: Lophophorates & (2001),第341–342, 356–363頁,sect. "Introduction", "Brachiopoda".
  9. ^ Ruppert etc: Invert Zoo & (2004),第829–845頁,ch. "Lophophorata" sect. "Bryozoa".
  10. ^ Ruppert etc: Invert Zoo & (2004),第817–821頁,ch. "Lophophorata" sect. "Phoronida".
  11. ^ Ruppert etc: Invert Zoo & (2004),第817頁,ch. "Lophophorata" sect. "Introduction".
  12. ^ Riisgård etc: Downstream & (2000).
  13. ^ 13.0 13.1 Emig: Inart Brach & (2001).
  14. ^ 14.0 14.1 14.2 14.3 Cohen etc: Brachiopod fold & (2003).
  15. ^ Ruppert etc: Invert Zoo & (2004),第212–214頁,ch. "Bilateria" sect. "Excretion".
  16. ^ Cowen: History of life & (2000),第408頁,ch. "Invert Paleo".
  17. ^ Nielsen: Brachio brains & (2005).
  18. ^ Ruppert etc: Invert Zoo & (2004),第214–219頁,ch. "Bilateria" sect. "Reproduction".
  19. ^ 19.0 19.1 Carlson: Ghosts & (2001).
  20. ^ ITIS: Brachiopoda.
  21. ^ 21.0 21.1 Milsom etc: 3-part taxonomy & (2009).
  22. ^ 22.0 22.1 Williams etc: Suprafamilial Classif & (2000),第xxxix-xlv頁,Preface.
  23. ^ Vermeij: Directionality & (1999).
  24. ^ Kowalewski etc: 2nd-choice prey & (2002).
  25. ^ Iyengar: Kleptoparasitism & (2008).
  26. ^ UCMP: Lingulata.
  27. ^ 27.0 27.1 UCMP: Brachio Fossil Range.
  28. ^ 28.0 28.1 Fortey: Fossils the key & (2008),ch. "How to recognize" sect. "Brachiopods".
  29. ^ Ushatinskaya: Earliest brachiopods & (2008).
  30. ^ Balthasar etc: Brachios stem Phoronids & (2009).
  31. ^ Conway Morris etc: Articulated Halkieriids & (1995).
  32. ^ doi: 10.1130/G24385A.1
    {{cite doi}}已停用,请参见{{cite journal}}。
  33. ^ 33.0 33.1 33.2 Cohen: Phoronids in Brachios, (2000 & ).
  34. ^ doi:10.1098/rspb.2008.1655
    {{cite doi}}已停用,请参见{{cite journal}}。
  35. ^ 35.0 35.1 35.2 Barry: Great Dying & (2002).
  36. ^ Gould etc: Clams and Brachios & (1980).
  37. ^ Knoll etc: P-Tr extinction & (2007).
  38. ^ Gaines etc: Inverteb proxies & (2009).
  39. ^ 39.0 39.1 Halanych: New phylogeny & (2004).
  40. ^ De Rosa (2001) cites the following examples of brachiopods as close to deuterostomes:
    • Hyman, L.H. The invertebrates. McGraw-Hill. 1940. ISBN 0-07-031661-9. 
    • Eernisse, D.J.; Albert, J.S., and Anderson., F.E. Annelida and Arthropoda are not sister taxa: A phylogenetic analysis of spiralian metazoan morphology. Systemic Biology. 1992, 41: 305–330. 
    • Nielsen, C. Animal evolution: Interrelationships of the living phyla. Oxford University Press. 1995. ISBN 0-19-854867-2. 
    • Lüter, C.; Bartholomaeus, T. The phylogenetic position of Brachiopoda—a comparison of morphological and molecular data. Zoological Scripta. 1997, 26 (3): 245–253. doi:10.1111/j.1463-6409.1997.tb00414.x. 
  41. ^ UCMP: Deuterostomia.
  42. ^ 42.0 42.1 42.2 42.3 42.4 42.5 42.6 de Rosa, R. Molecular Data Indicate the Protostome Affinity of Brachiopods (PDF). Systematic Biology. 2001, 50 (6): 848–859 [27 Jan 2010]. PMID 12116636. doi:10.1080/106351501753462830. 
  43. ^ Valentine: Cleavage patterns.
  44. ^ Valentine: Cleavage patterns & (1997).
  45. ^
    • Ruppert, E.E. Introduction to the aschelminth phyla: A consideration of mesoderm, body cavities, and cuticle. Harrison, F.W., and Ruppert, E.E (编). Microscopic anatomy of invertebrates, volume 4: Aschelminthes. Wiley-Liss. 1991: 1–17. 
    • Budd, G.E; Jensen, S. A critical reappraisal of the fossil record of the bilaterian phyla. Biological Review of the Cambridge Philosophical Society. 2000, 75 (2): 253–295. PMID 10881389. doi:10.1111/j.1469-185X.1999.tb00046.x. 
  46. ^
    • Anderson, D.T. Embryology and phylogeny in annelids and arthropods. Pergamon Press Ltd. 1973. ISBN 0-08-017069-2. 
    • Arendt, D.; Nubler-Jung, K. Dorsal or ventral: Similarities in fate maps and gastrulation patterns in annelids, arthropods and chordates. Mechanisms of Development. 1997, 71 (1–2): 7–21. doi:10.1016/S0925-4773(96)00620-X. 
  47. ^ Nielsen: Phylog pos of Brachios & (2002).
  48. ^ 48.0 48.1 48.2 48.3 Helmkampf etc: Lophotrochozoa concept & (2008).
  49. ^ Giribet etc: Combined phylogeny & (2000).
  50. ^ Peterson etc: Combined phylogeny & (2001).
  51. ^ Wood etc: Phylactolaemate Phylog & (2005).
  52. ^ Dunn etc: Close to Nemertines & (2008).
  53. ^ Bourlat etc: Close to Nemertines & (2008).

參考資料

Further reading

  • Moore, R.C.; Lalicker, C.G., and Fischer, A.G. Invertebrate Fossils. Mcgraw-Hill College. June 1952. ISBN 0-07-043020-9. 

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