棉花FORMIN基因家族的全基因组鉴定、表征及表达谱分析。

IF 1.9 Q3 GENETICS & HEREDITY BMC genomic data Pub Date : 2024-12-18 DOI:10.1186/s12863-024-01285-z
Pollob Shing, Md Shohel Ul Islam, Mst Sumaiya Khatun, Fatema Tuz Zohra, Naimul Hasan, Shaikh Mizanur Rahman, Md Abdur Rauf Sarkar
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摘要

背景:Gossypium raimondii是一种被广泛应用的基因组模式棉。其提高纤维质量的遗传影响和适应挑战性环境的能力都有助于提高棉花产量。形成蛋白是一个大的蛋白质家族,主要由FH1和FH2结构域组成。formin结构域的存在高度调节肌动蛋白和微管丝在细胞骨架动力学中面对各种非生物胁迫,如干旱、盐度和低温。结果:本研究分析鉴定了26个双胍基因,主要分布在雷蒙地鼠的细胞核和叶绿体中。根据进化系统发生关系,GrFH分布分散,可分为7个不同的类群,与MtFH具有共同的祖先关系。GrFH基因结构预测显示各组之间的内含子-外显子排列存在差异。分布在12条不同染色体上的GrFH均存在FH2保守结构域。此外,有11对GrFH发生了片段重复。其中GrFH4-GrFH7进化时间为3500万年前(MYA)。此外,还发现了57个顺式调控元件(cis-acting regulatory elements, CAREs)基序在植物的生长发育和对各种非生物胁迫(包括冷胁迫)的响应中发挥潜在作用。GrFH基因主要表现为调控肌动蛋白聚合的生物学过程。GrFH中的主要转录因子(TFs)家族ERF、GATA、MYB和LBD调节非生物胁迫(特别是盐)的表达以及对某些病原体的防御。GrFH的microRNA揭示了在盐、冷等非生物胁迫下调控其基因表达的调控机制。棉花(G.raimondii)最经济的方面之一是生产绒毛,因为它用于制造织物和其他工业应用。GrFH在不同组织中的表达谱,特别是在胚珠到纤维的转化过程中,GrFH4、GrFH6、GrFH12、GrFH14和GrFH26在寒冷条件下的表达水平升高(上调),以及GrFH19和GrFH26在盐胁迫下的表达,表明它们可能参与应对这些环境挑战。此外,这些与细胞骨架动力学相关的耐应力GrFH对于生产高质量的绒毛是必不可少的。结论:本研究的发现有助于阐明formin基因的进化和功能特征,并破译其在寒冷和盐等非生物胁迫中的潜在作用,以及未来在湿实验室中的应用。
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Genome-wide identification, characterization and expression profiles of FORMIN gene family in cotton (Gossypium Raimondii L.).

Background: Gossypium raimondii serves as a widely used genomic model cotton species. Its genetic influence to enhance fiber quality and ability to adapt to challenging environments both contribute to increasing cotton production. The formins are a large protein family that predominately consists of FH1 and FH2 domains. The presence of the formin domains highly regulates the actin and microtubule filament in the cytoskeleton dynamics confronting various abiotic stresses such as drought, salinity, and cold temperatures.

Results: In this study, 26 formin genes were analyzed and characterized in G. raimondii and mostly were found in the nucleus and chloroplast. According to the evolutionary phylogenetic relationship, GrFH were dispersed and classified into seven different groups and shared an ancestry relationship with MtFH. The GrFH gene structure prediction revealed diverse intron-exon arrangements between groups. The FH2 conserved domain was found in all the GrFH distributed on 12 different chromosomes. Moreover, 11 pairs of GrFH transpired segmental duplication. Among them, GrFH4-GrFH7 evolved 35 million years ago (MYA) according to the evolutionary divergence time. Besides, 57 cis-acting regulatory elements (CAREs) motifs were found to play a potential role in plant growth, development, and in response to various abiotic stresses, including cold stress. The GrFH genes mostly exhibited biological processes resulting in the regulation of actin polymerization. The ERF, GATA, MYB, and LBD, major transcription factors (TFs) families in GrFH, regulated expression in abiotic stress specifically salt as well as defense against certain pathogens. The microRNA of GrFH unveiled the regulatory mechanism to regulate their gene expression in abiotic stresses such as salt and cold. One of the most economic aspects of cotton (G.raimondii) is the production of lint due to its use in manufacturing fabrics and other industrial applications. The expression profiles of GrFH in different tissues particularly during the conversion from ovule to fiber (lint), and the increased levels (up-regulation) of GrFH4, GrFH6, GrFH12, GrFH14, and GrFH26 under cold conditions, along with GrFH19 and GrFH26 in response to salt stress, indicated their potential involvement in combating these environmental challenges. Moreover, these stress-tolerant GrFH linked to cytoskeleton dynamics are essential in producing high-quality lint.

Conclusions: The findings from this study can contribute to elucidating the evolutionary and functional characterizations of formin genes and deciphering their potential role in abiotic stress such as cold and salt as well as in the future implications in wet lab.

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