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增强子模块化与新性状的进化。

Enhancer modularity and the evolution of new traits.

作者信息

Koshikawa Shigeyuki

机构信息

a The Hakubi Center for Advanced Research and Graduate School of Science; Kyoto University; Kitashirakawa-Oiwake-Cho ; Sakyo-Ku , Kyoto 606-8 502 , Japan.

出版信息

Fly (Austin). 2015;9(4):155-9. doi: 10.1080/19336934.2016.1151129.

DOI:10.1080/19336934.2016.1151129
PMID:26925592
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4862421/
Abstract

Animals have modular cis-regulatory regions in their genomes, and expression of a single gene is often regulated by multiple enhancers residing in such a region. In the laboratory, and also in natural populations, loss of an enhancer can result in a loss of gene expression. Although only a few examples have been well characterized to date, some studies have suggested that an evolutionary gain of a new enhancer function can establish a new gene expression domain. Our recent study showed that Drosophila guttifera has more enhancers and additional expression domains of the wingless gene during the pupal stage, compared to D. melanogaster, and that these new features appear to have evolved in the ancestral lineage leading to D. guttifera. (1) Gain of a new expression domain of a developmental regulatory gene (toolkit gene), such as wingless, can cause co-option of the expression of its downstream genes to the new domain, resulting in duplication of a preexisting structure at this new body position. Recently, with the advancement of evo-devo studies, we have learned that the developmental regulatory systems are strikingly similar across various animal taxa, in spite of the great diversity of the animals' morphology. Even behind "new" traits, co-options of essential developmental genes from known systems are very common. We previously provided concrete evidence of gains of enhancer activities of a developmental regulatory gene underlying gains of new traits. (1) Broad occurrence of this scenario is testable and should be validated in the future.

摘要

动物基因组中存在模块化的顺式调控区域,单个基因的表达通常受位于该区域的多个增强子调控。在实验室以及自然种群中,增强子的缺失都可能导致基因表达丧失。尽管迄今为止仅有少数实例得到充分表征,但一些研究表明,新增强子功能的进化获得可建立新的基因表达域。我们最近的研究表明,与黑腹果蝇相比,多斑果蝇在蛹期具有更多的增强子以及无翅基因的额外表达域,并且这些新特征似乎是在导致多斑果蝇的祖先谱系中进化而来的。(1)发育调控基因(工具基因),如无翅基因,新表达域的获得可导致其下游基因的表达被引入到新的区域,从而在这个新的身体位置产生已存在结构的重复。最近,随着进化发育生物学研究的进展,我们了解到尽管动物形态具有极大的多样性,但发育调控系统在各种动物类群中惊人地相似。即使在“新”性状背后,从已知系统中借用关键发育基因的情况也非常普遍。我们之前为新性状产生过程中发育调控基因增强子活性的获得提供了确凿证据。(1)这种情况的广泛存在是可以检验的,未来应该得到验证。

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Enhancer modularity and the evolution of new traits.增强子模块化与新性状的进化。
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2
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引用本文的文献

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Dev Cell. 2023 Jan 9;58(1):51-62.e4. doi: 10.1016/j.devcel.2022.12.003.
2
Out from under the wing: reconceptualizing the insect wing gene regulatory network as a versatile, general module for body-wall lobes in arthropods.从翅膀下:将昆虫翅膀基因调控网络重新概念化为节肢动物体壁裂片的通用、通用模块。
Proc Biol Sci. 2021 Dec 22;288(1965):20211808. doi: 10.1098/rspb.2021.1808.
3
Evolution of wing pigmentation in Drosophila: Diversity, physiological regulation, and cis-regulatory evolution.果蝇翅膀色素的演化:多样性、生理调控及顺式调控元件演化。
Dev Growth Differ. 2020 Jun;62(5):269-278. doi: 10.1111/dgd.12661. Epub 2020 Apr 4.
4
Methods for Staging Pupal Periods and Measurement of Wing Pigmentation of Drosophila guttifera.黑腹果蝇蛹期分期及翅色素沉着测量方法
J Vis Exp. 2018 Jan 24(131):56935. doi: 10.3791/56935.
5
Pupal development and pigmentation process of a polka-dotted fruit fly, Drosophila guttifera (Insecta, Diptera).圆点果蝇(Drosophila guttifera,昆虫纲,双翅目)的蛹发育和色素沉着过程
Dev Genes Evol. 2017 Jun;227(3):171-180. doi: 10.1007/s00427-017-0578-3. Epub 2017 Mar 9.

本文引用的文献

1
EVOLUTION OF PELVIC REDUCTION IN THREESPINE STICKLEBACK FISH: A TEST OF COMPETING HYPOTHESES.三刺棘鱼骨盆缩小的进化:竞争假说的检验
Evolution. 1993 Jun;47(3):906-914. doi: 10.1111/j.1558-5646.1993.tb01243.x.
2
Unraveling the Tangled Skein: The Evolution of Transcriptional Regulatory Networks in Development.解开错综复杂的谜团:发育过程中转录调控网络的进化
Annu Rev Genomics Hum Genet. 2015;16:103-31. doi: 10.1146/annurev-genom-091212-153423. Epub 2015 May 20.
3
Gain of cis-regulatory activities underlies novel domains of wingless gene expression in Drosophila.顺式调控活性的增加是果蝇中无翅基因表达新区域的基础。
Proc Natl Acad Sci U S A. 2015 Jun 16;112(24):7524-9. doi: 10.1073/pnas.1509022112. Epub 2015 Jun 1.
4
Recurrent modification of a conserved cis-regulatory element underlies fruit fly pigmentation diversity.保守顺式调控元件的反复修饰是果蝇色素多样性的基础。
PLoS Genet. 2013 Aug;9(8):e1003740. doi: 10.1371/journal.pgen.1003740. Epub 2013 Aug 29.
5
De novo genesis of enhancers in vertebrates.脊椎动物中增强子的从头生成。
PLoS Biol. 2011 Nov;9(11):e1001188. doi: 10.1371/journal.pbio.1001188. Epub 2011 Nov 1.
6
Identification of a functional transposon insertion in the maize domestication gene tb1.鉴定玉米驯化基因 tb1 中的一个功能性转座子插入。
Nat Genet. 2011 Sep 25;43(11):1160-3. doi: 10.1038/ng.942.
7
Morphological evolution caused by many subtle-effect substitutions in regulatory DNA.由调控 DNA 中许多微效替换引起的形态进化。
Nature. 2011 Jun 29;474(7353):598-603. doi: 10.1038/nature10200.
8
Evolutionary origin of a novel gene expression pattern through co-option of the latent activities of existing regulatory sequences.通过利用现有调控序列的潜在活性,新型基因表达模式的进化起源。
Proc Natl Acad Sci U S A. 2011 Jun 21;108(25):10036-43. doi: 10.1073/pnas.1105937108. Epub 2011 May 18.
9
Transcriptional enhancers in animal development and evolution.动物发育和进化中的转录增强子。
Curr Biol. 2010 Sep 14;20(17):R754-63. doi: 10.1016/j.cub.2010.06.070.
10
Generation of a novel wing colour pattern by the Wingless morphogen.通过 Wingless 形态发生素产生新的翅膀颜色图案。
Nature. 2010 Apr 22;464(7292):1143-8. doi: 10.1038/nature08896. Epub 2010 Apr 7.