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本文引用的文献

1
Hox gene expression in the hemichordate Saccoglossus kowalevskii and the evolution of deuterostome nervous systems.后口动物神经嵴的 Hox 基因表达与后口动物神经系统的进化。
Integr Comp Biol. 2006 Dec;46(6):890-901. doi: 10.1093/icb/icl045. Epub 2006 Oct 18.
2
Coloniality has evolved once in Stolidobranch Ascidians.Stolidobranch Ascidians 中出现了一次殖民现象。
Integr Comp Biol. 2006 Jun;46(3):255-68. doi: 10.1093/icb/icj035. Epub 2006 May 3.
3
Origins of radial symmetry identified in an echinoderm during adult development and the inferred axes of ancestral bilateral symmetry.在一种棘皮动物的成体发育过程中确定的辐射对称起源以及推断的祖先两侧对称轴。
Proc Biol Sci. 2007 Jun 22;274(1617):1511-6. doi: 10.1098/rspb.2007.0312.
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Ribosomal RNA genes and deuterostome phylogeny revisited: more cyclostomes, elasmobranchs, reptiles, and a brittle star.核糖体RNA基因与后口动物系统发育再探讨:更多的圆口纲动物、板鳃亚纲动物、爬行动物以及一种海蛇尾
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Axial patterning in cephalochordates and the evolution of the organizer.头索动物的轴向模式形成与组织者的演化
Nature. 2007 Feb 8;445(7128):613-7. doi: 10.1038/nature05472. Epub 2007 Jan 21.
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Paleogenomics of echinoderms.棘皮动物古基因组学
Science. 2006 Nov 10;314(5801):956-60. doi: 10.1126/science.1132310.
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The genome of the sea urchin Strongylocentrotus purpuratus.紫球海胆的基因组。
Science. 2006 Nov 10;314(5801):941-52. doi: 10.1126/science.1133609.
8
Deuterostome phylogeny reveals monophyletic chordates and the new phylum Xenoturbellida.后口动物系统发育揭示了单系的脊索动物和新的异涡虫门。
Nature. 2006 Nov 2;444(7115):85-8. doi: 10.1038/nature05241. Epub 2006 Oct 18.
9
Expression patterns of Hox genes in larvae of the sea lily Metacrinus rotundus.海百合(Metacrinus rotundus)幼虫中Hox基因的表达模式。
Dev Genes Evol. 2006 Dec;216(12):797-809. doi: 10.1007/s00427-006-0108-1. Epub 2006 Sep 30.
10
Lack of resolution in the animal phylogeny: closely spaced cladogeneses or undetected systematic errors?动物系统发育中分辨率的缺失:是紧密间隔的分支发生还是未被检测到的系统误差?
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解读后口动物系统发育:分子、形态学和古生物学视角

Deciphering deuterostome phylogeny: molecular, morphological and palaeontological perspectives.

作者信息

Swalla Billie J, Smith Andrew B

机构信息

Department of Biology, University of Washington, Seattle, WA 98195-1800, USA.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2008 Apr 27;363(1496):1557-68. doi: 10.1098/rstb.2007.2246.

DOI:10.1098/rstb.2007.2246
PMID:18192178
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2615822/
Abstract

Deuterostomes are a monophyletic group of animals that include the vertebrates, invertebrate chordates, ambulacrarians and xenoturbellids. Fossil representatives from most major deuterostome groups, including some phylum-level crown groups, are found in the Lower Cambrian, suggesting that evolutionary divergence occurred in the Late Precambrian, in agreement with some molecular clock estimates. Molecular phylogenies, larval morphology and the adult heart/kidney complex all support echinoderms and hemichordates as a sister grouping (Ambulacraria). Xenoturbellids are a relatively newly discovered phylum of worm-like deuterostomes that lacks a fossil record, but molecular evidence suggests that these animals are a sister group to the Ambulacraria. Within the chordates, cephalochordates share large stretches of chromosomal synteny with the vertebrates, have a complete Hox complex and are sister group to the vertebrates based on ribosomal and mitochondrial gene evidence. In contrast, tunicates have a highly derived adult body plan and are sister group to the vertebrates based on the analyses of concatenated genomic sequences. Cephalochordates and hemichordates share gill slits and an acellular cartilage, suggesting that the ancestral deuterostome also shared these features. Gene network data suggest that the deuterostome ancestor had an anterior-posterior body axis specified by Hox and Wnt genes, a dorsoventral axis specified by a BMP/chordin gradient, and was bilaterally symmetrical with left-right asymmetry determined by expression of nodal.

摘要

后口动物是一类单系群动物,包括脊椎动物、无脊椎脊索动物、棘皮动物和异涡虫类。在寒武纪早期发现了大多数主要后口动物类群的化石代表,包括一些门级别的冠群,这表明进化分歧发生在前寒武纪晚期,这与一些分子钟估计结果一致。分子系统发育、幼虫形态以及成体心脏/肾脏复合体均支持棘皮动物和半索动物作为一个姐妹类群(棘皮动物门)。异涡虫类是一类相对较新发现的类似蠕虫的后口动物门,缺乏化石记录,但分子证据表明这些动物是棘皮动物门的姐妹类群。在脊索动物中,头索动物与脊椎动物共享大片染色体同线性,具有完整的Hox复合体,并且基于核糖体和线粒体基因证据,是脊椎动物的姐妹类群。相比之下,被囊动物具有高度特化的成体身体结构,并且基于串联基因组序列分析,是脊椎动物的姐妹类群。头索动物和半索动物共享鳃裂和无细胞软骨,这表明原始后口动物也具有这些特征。基因网络数据表明,后口动物祖先具有由Hox和Wnt基因指定的前后身体轴、由BMP/脊索蛋白梯度指定的背腹轴,并且是左右对称的,左右不对称由节点基因的表达决定。