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利用计算机对辣椒(Capsicum annuum L.)中锌指结构域相关同源结构域(ZF-HD)家族基因进行的计算机与计算分析

In silico and computational analysis of zinc finger motif-associated homeodomain (ZF-HD) family genes in chilli (Capsicum annuum L).

机构信息

United Graduate School of Agricultural Science, Faculty of Biological Sciences, Gifu University, Yanagido, Gifu, 501-1193, Japan.

Department of Agricultural, Food and Nutritional Science, University of Alberta, Edmonton, AB, T6G 2R3, Canada.

出版信息

BMC Genomics. 2023 Oct 11;24(1):603. doi: 10.1186/s12864-023-09682-x.

Abstract

Zinc finger-homeodomain (ZHD) proteins are mostly expressed in plants and are involved in proper growth and development and minimizing biotic and abiotic stress. A recent study identified and characterized the ZHD gene family in chilli (Capsicum annuum L.) to determine their probable molecular function. ZHD genes with various physicochemical characteristics were discovered on twelve chromosomes in chilli. We separated ZHD proteins into two major groups using sequence alignment and phylogenetic analysis. These groups differ in gene structure, motif distribution, and a conserved ZHD and micro-zinc finger ZF domain. The majority of the CaZHDs genes are preserved, early duplication occurred recently, and significant pure selection took place throughout evolution, according to evolutionary study. According to expression profiling, the genes were found to be equally expressed in tissues above the ground, contribute to plant growth and development and provide tolerance to biotic and abiotic stress. This in silico analysis, taken as a whole, hypothesized that these genes perform distinct roles in molecular and phytohormone signaling processes, which may serve as a foundation for subsequent research into the roles of these genes in other crops.

摘要

锌指-同源结构域(ZHD)蛋白主要在植物中表达,参与适当的生长和发育,以及最大限度地减少生物和非生物胁迫。最近的一项研究鉴定并描述了辣椒(Capsicum annuum L.)中的 ZHD 基因家族,以确定其可能的分子功能。在辣椒的十二条染色体上发现了具有各种物理化学特性的 ZHD 基因。我们使用序列比对和系统发育分析将 ZHD 蛋白分为两个主要组。这些组在基因结构、基序分布和保守的 ZHD 和微锌指 ZF 结构域方面存在差异。根据进化研究,大多数 CaZHDs 基因是保守的,最近发生了早期复制,并且在进化过程中发生了显著的纯选择。根据表达谱分析,这些基因在地上组织中表达水平相等,有助于植物的生长和发育,并提供对生物和非生物胁迫的耐受性。总的来说,这项计算机分析假设这些基因在分子和植物激素信号转导过程中发挥不同的作用,这可能为后续研究这些基因在其他作物中的作用奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef21/10566081/5b8b5b8c56ac/12864_2023_9682_Fig1_HTML.jpg

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