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脊椎动物增强子进化:从文昌鱼顺式调控模块的功能分析中得到的启示。

Enhancer evolution in chordates: Lessons from functional analyses of cephalochordate cis-regulatory modules.

机构信息

Laboratory for Comprehensive Genomic Analysis, RIKEN Center for Integrative Medical Sciences, Tsurumi-ku, Japan.

出版信息

Dev Growth Differ. 2020 Jun;62(5):279-300. doi: 10.1111/dgd.12684. Epub 2020 Jun 16.

DOI:10.1111/dgd.12684
PMID:32479656
Abstract

Chordates comprise three major groups, cephalochordates (amphioxus), tunicates (urochordates), and vertebrates. Since cephalochordates were the early branching group, comparisons between amphioxus and other chordates help us to speculate about ancestral chordates. Here, I summarize accumulating data from functional studies analyzing amphioxus cis-regulatory modules (CRMs) in model systems of other chordate groups, such as mice, chickens, clawed frogs, fish, and ascidians. Conservatism and variability of CRM functions illustrate how gene regulatory networks have evolved in chordates. Amphioxus CRMs, which correspond to CRMs deeply conserved among animal phyla, govern reporter gene expression in conserved expression domains of the putative target gene in host animals. In addition, some CRMs located in similar genomic regions (intron, upstream, or downstream) also possess conserved activity, even though their sequences are divergent. These conservative CRM functions imply ancestral genomic structures and gene regulatory networks in chordates. However, interestingly, if expression patterns of amphioxus genes do not correspond to those of orthologs of experimental models, some amphioxus CRMs recapitulate expression patterns of amphioxus genes, but not those of endogenous genes, suggesting that these amphioxus CRMs are close to the ancestral states of chordate CRMs, while vertebrates/tunicates innovated new CRMs to reconstruct gene regulatory networks subsequent to the divergence of the cephalochordates. Alternatively, amphioxus CRMs may have secondarily lost ancestral CRM activity and evolved independently. These data help to solve fundamental questions of chordate evolution, such as neural crest cells, placodes, a forebrain/midbrain, and genome duplication. Experimental validation is crucial to verify CRM functions and evolution.

摘要

脊索动物包括三个主要类群

头索动物(文昌鱼)、尾索动物(被囊动物)和脊椎动物。由于头索动物是最早分支的类群,因此文昌鱼与其他脊索动物的比较有助于我们推测祖先脊索动物。在这里,我总结了在其他脊索动物类群的模型系统中分析文昌鱼顺式调控模块(CRM)的功能研究的累积数据,如老鼠、鸡、爪蟾、鱼和海鞘。CRM 功能的保守性和可变性说明了基因调控网络在脊索动物中是如何进化的。与动物门之间深度保守的 CRM 相对应的文昌鱼 CRM ,在宿主动物中假定靶基因的保守表达域中调控报告基因的表达。此外,一些位于相似基因组区域(内含子、上游或下游)的 CRM 也具有保守活性,即使它们的序列是发散的。这些保守的 CRM 功能暗示了脊索动物中祖先的基因组结构和基因调控网络。然而,有趣的是,如果文昌鱼基因的表达模式与实验模型的同源基因不对应,一些文昌鱼 CRM 会重现文昌鱼基因的表达模式,而不是内源性基因的表达模式,这表明这些文昌鱼 CRM 接近脊索动物 CRM 的祖先状态,而脊椎动物/被囊动物则创新了新的 CRM 来重建在头索动物分化后基因调控网络。或者,文昌鱼 CRM 可能已经失去了祖先 CRM 的活性并独立进化。这些数据有助于解决脊索动物进化的基本问题,如神经嵴细胞、颅顶、前脑/中脑和基因组复制。实验验证对于验证 CRM 功能和进化至关重要。

相似文献

1
Enhancer evolution in chordates: Lessons from functional analyses of cephalochordate cis-regulatory modules.脊椎动物增强子进化:从文昌鱼顺式调控模块的功能分析中得到的启示。
Dev Growth Differ. 2020 Jun;62(5):279-300. doi: 10.1111/dgd.12684. Epub 2020 Jun 16.
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The amphioxus genome illuminates vertebrate origins and cephalochordate biology.文昌鱼基因组揭示了脊椎动物的起源和头索动物生物学。
Genome Res. 2008 Jul;18(7):1100-11. doi: 10.1101/gr.073676.107. Epub 2008 Jun 18.
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The transcriptome of an amphioxus, Asymmetron lucayanum, from the Bahamas: a window into chordate evolution.来自巴哈马群岛的文昌鱼(卢卡亚文昌鱼)的转录组:窥探脊索动物进化的一扇窗口。
Genome Biol Evol. 2014 Sep 19;6(10):2681-96. doi: 10.1093/gbe/evu212.
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Evolution of cis-regulatory modules for the head organizer gene in chordates: comparisons between and .脊索动物中头部组织者基因顺式调控模块的进化:[具体物种1]与[具体物种2]之间的比较
Zoological Lett. 2019 Aug 2;5:27. doi: 10.1186/s40851-019-0143-1. eCollection 2019.
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DNA methylation in amphioxus: from ancestral functions to new roles in vertebrates.文昌鱼中的 DNA 甲基化:从古老功能到脊椎动物中的新角色。
Brief Funct Genomics. 2012 Mar;11(2):142-55. doi: 10.1093/bfgp/els009. Epub 2012 Mar 2.
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Cis-regulation and conserved non-coding elements in amphioxus.文昌鱼顺式调控和保守非编码元件。
Brief Funct Genomics. 2012 Mar;11(2):118-30. doi: 10.1093/bfgp/els006. Epub 2012 Mar 7.
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The origin and evolution of chordate nervous systems.脊索动物神经系统的起源与演化。
Philos Trans R Soc Lond B Biol Sci. 2015 Dec 19;370(1684). doi: 10.1098/rstb.2015.0048.
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Evolution of anterior Hox regulatory elements among chordates.脊索动物前 Hox 调控元件的演化。
BMC Evol Biol. 2011 Nov 15;11:330. doi: 10.1186/1471-2148-11-330.
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Cis-regulation of the amphioxus engrailed gene: insights into evolution of a muscle-specific enhancer.文昌鱼engrailed基因的顺式调控:对肌肉特异性增强子进化的见解。
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Conservation and elaboration of Hox gene regulation during evolution of the vertebrate head.脊椎动物头部进化过程中Hox基因调控的保守性与精细演化
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Identification of Nodal-dependent enhancer of amphioxus Chordin sufficient to drive gene expression into the chordate dorsal organizer.鉴定文昌鱼 Nodal 依赖性 Chordin 增强子,该增强子足以驱动基因表达进入脊索动物背组织者。
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