HD-Zip I转录因子作为植物蛋白相互作用网络多样性来源的功能和调控差异的进化后果

IF 2.1 3区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Journal of Molecular Evolution Pub Date : 2023-10-01 Epub Date: 2023-06-23 DOI:10.1007/s00239-023-10121-4
Natalia Żyła, Danuta Babula-Skowrońska
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引用次数: 1

摘要

HD超家族已经被详细研究了几十年。植物特异性HD-Zip I亚家族因其参与植物发育和胁迫反应而最受关注。在这篇综述中,我们对HD-Zip I基因在调节各种生物过程中的功能冗余和多样化的进化事件提供了全面的见解。我们总结了HD-Zip家族的进化史,强调了WGD在其基因组中保留重复的扩展和分化中的重要作用。为了确定HD-Zip I在不同物种中的进化起源和功能保护之间的关系,我们进行了系统发育分析,比较了它们在不同组织和压力下的表达谱,并追踪了直系同源物和旁系同源物在调节发育过程中的作用。我们发现,来自不同物种的HD-Zip I具有相似的基因结构,具有高度保守的HD和Zip,与相同的DNA序列结合,并参与相似的生物过程。然而,它们表现出功能多样性,表现为表达模式的改变。它们中的一些参与了物种特异性叶片形态和表型的调节。在这里,我们讨论了HD-Zip I的DNA结合和蛋白质相互作用功能域及其靶基因顺式调控区的变化在通过从头调控系统的形成促进适应性创新中的作用。了解HD-Zip I亚家族在生物-环境相互作用中的作用仍然是进化发育生物学(evo-devo)的一个挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Evolutionary Consequences of Functional and Regulatory Divergence of HD-Zip I Transcription Factors as a Source of Diversity in Protein Interaction Networks in Plants.

Evolutionary Consequences of Functional and Regulatory Divergence of HD-Zip I Transcription Factors as a Source of Diversity in Protein Interaction Networks in Plants.

Evolutionary Consequences of Functional and Regulatory Divergence of HD-Zip I Transcription Factors as a Source of Diversity in Protein Interaction Networks in Plants.

Evolutionary Consequences of Functional and Regulatory Divergence of HD-Zip I Transcription Factors as a Source of Diversity in Protein Interaction Networks in Plants.

The HD superfamily has been studied in detail for several decades. The plant-specific HD-Zip I subfamily attracts the most attention because of its involvement in plant development and stress responses. In this review, we provide a comprehensive insight into the evolutionary events responsible for the functional redundancy and diversification of the HD-Zip I genes in regulating various biological processes. We summarized the evolutionary history of the HD-Zip family, highlighting the important role of WGDs in its expansion and divergence of retained duplicates in the genome. To determine the relationship between the evolutionary origin and functional conservation of HD-Zip I in different species, we performed a phylogenetic analysis, compared their expression profiles in different tissues and under stress and traced the role of orthologs and paralogs in regulating developmental processes. We found that HD-Zip I from different species have similar gene structures with a highly conserved HD and Zip, bind to the same DNA sequences and are involved in similar biological processes. However, they exhibit a functional diversity, which is manifested in altered expression patterns. Some of them are involved in the regulation of species-specific leaf morphology and phenotypes. Here, we discuss the role of changes in functional domains involved in DNA binding and protein interaction of HD-Zip I and in cis-regulated regions of its target genes in promoting adaptive innovations through the formation of de novo regulatory systems. Understanding the role of the HD-Zip I subfamily in organism-environment interactions remains a challenge for evolutionary developmental biology (evo-devo).

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来源期刊
Journal of Molecular Evolution
Journal of Molecular Evolution 生物-进化生物学
CiteScore
5.50
自引率
2.60%
发文量
36
审稿时长
3 months
期刊介绍: Journal of Molecular Evolution covers experimental, computational, and theoretical work aimed at deciphering features of molecular evolution and the processes bearing on these features, from the initial formation of macromolecular systems through their evolution at the molecular level, the co-evolution of their functions in cellular and organismal systems, and their influence on organismal adaptation, speciation, and ecology. Topics addressed include the evolution of informational macromolecules and their relation to more complex levels of biological organization, including populations and taxa, as well as the molecular basis for the evolution of ecological interactions of species and the use of molecular data to infer fundamental processes in evolutionary ecology. This coverage accommodates such subfields as new genome sequences, comparative structural and functional genomics, population genetics, the molecular evolution of development, the evolution of gene regulation and gene interaction networks, and in vitro evolution of DNA and RNA, molecular evolutionary ecology, and the development of methods and theory that enable molecular evolutionary inference, including but not limited to, phylogenetic methods.
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