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Development of the cranium and paired fins in the zebrafish Danio rerio (Ostariophysi, Cyprinidae).斑马鱼(鲤形目,鲤科)颅骨和成对鳍的发育
J Morphol. 1996 Aug;229(2):121-160. doi: 10.1002/(SICI)1097-4687(199608)229:2<121::AID-JMOR1>3.0.CO;2-4.
2
Three-dimensional limb joint mobility in the early tetrapod Ichthyostega.早期四足鱼石螈的三维肢体关节活动性。
Nature. 2012 Jun 28;486(7404):523-6. doi: 10.1038/nature11124.
3
A marine stem-tetrapod from the Devonian of western North America.来自北美西部泥盆纪的一种海洋干群四足动物。
PLoS One. 2012;7(3):e33683. doi: 10.1371/journal.pone.0033683. Epub 2012 Mar 20.
4
An antiarch placoderm shows that pelvic girdles arose at the root of jawed vertebrates.一种反对弓鲛鱼类的盾皮鱼揭示了有颌脊椎动物的骨盆带起源于根部。
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Behavioral evidence for the evolution of walking and bounding before terrestriality in sarcopterygian fishes.在肉鳍鱼类中,在陆生之前就出现了行走和跳跃的行为证据,证明了它们的进化。
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7
Development and evolution of the muscles of the pelvic fin.骨盆鳍肌肉的发育与进化。
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骨盆鳍/后肢的发育进化史。

The evolutionary history of the development of the pelvic fin/hindlimb.

机构信息

Department of Anatomy & Histology, School of Medical Sciences and Bosch Institute, University of Sydney, Sydney, NSW, Australia.

出版信息

J Anat. 2013 Jan;222(1):114-33. doi: 10.1111/j.1469-7580.2012.01557.x. Epub 2012 Aug 23.

DOI:10.1111/j.1469-7580.2012.01557.x
PMID:22913749
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3552419/
Abstract

The arms and legs of man are evolutionarily derived from the paired fins of primitive jawed fish. Few evolutionary changes have attracted as much attention as the origin of tetrapod limbs from the paired fins of ancestral fish. The hindlimbs of tetrapods are derived from the pelvic fins of ancestral fish. These evolutionary origins can be seen in the examination of shared gene and protein expression patterns during the development of pelvic fins and tetrapod hindlimbs. The pelvic fins of fish express key limb positioning, limb bud induction and limb outgrowth genes in a similar manner to that seen in hindlimb development of higher vertebrates. We are now at a point where many of the key players in the development of pelvic fins and vertebrate hindlimbs have been identified and we can now readily examine and compare mechanisms between species. This is yielding fascinating insights into how the developmental programme has altered during evolution and how that relates to anatomical change. The role of pelvic fins has also drastically changed over evolutionary history, from playing a minor role during swimming to developing into robust weight-bearing limbs. In addition, the pelvic fins/hindlimbs have been lost repeatedly in diverse species over evolutionary time. Here we review the evolution of pelvic fins and hindlimbs within the context of the changes in anatomical structure and the molecular mechanisms involved.

摘要

人类的手臂和腿部是从原始有颌鱼类的成对鱼鳍进化而来的。很少有进化变化像从祖先鱼类的成对鱼鳍进化出四足动物的四肢那样引起如此多的关注。四足动物的后肢是从祖先鱼类的骨盆鳍进化而来的。在研究骨盆鳍和四足动物后肢发育过程中共享的基因和蛋白质表达模式时,可以看到这些进化起源。鱼类的骨盆鳍以与高等脊椎动物后肢发育中相似的方式表达关键的肢体定位、肢体芽诱导和肢体延伸基因。现在,我们已经确定了许多在骨盆鳍和脊椎动物后肢发育中起关键作用的因素,我们现在可以很容易地在物种之间检查和比较机制。这为我们提供了一个迷人的视角,了解在进化过程中发育计划是如何改变的,以及这与解剖结构变化有何关联。在进化历史中,骨盆鳍的作用也发生了巨大的变化,从在游泳中起次要作用到发展成强壮的承重肢体。此外,在进化过程中,不同物种的骨盆鳍/后肢已经多次丢失。在这里,我们将在涉及的解剖结构变化和分子机制的背景下,回顾骨盆鳍和后肢的进化。