基于转录组元分析鉴定拟南芥中可能协调基因调控级联和串联以应对非生物胁迫的枢纽转录因子和 RNA 结合蛋白。

IF 2 3区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Applied Genetics Pub Date : 2024-05-01 Epub Date: 2024-02-10 DOI:10.1007/s13353-024-00837-4
M J Nishanth
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引用次数: 0

摘要

日益恶化的气候条件和不断增加的人口要求开发出能抵御恶劣环境的强健植物品种。在这方面,对转录因子(TFs)和 RNA 结合蛋白(RBPs)等调控蛋白进行调控将是一项有益的策略。此外,了解不同类别调控分子之间复杂的相互联系对于确定用于性状改良的候选基因/蛋白至关重要。迄今为止,大多数研究都单独分析了TFs或RBPs在赋予抗逆性方面的作用。然而,确定通过其他调控因子(即上游调控因子所针对的其他 TFs/RBP)诱导广泛转录组变化的优势/上游 TFs 和 RBPs 也很重要。为此,本研究采用了转录组元分析和计算方法来全面了解调控相互作用。这项工作确定了可能影响压力介导的其他调控因子差异表达的主导 TFs 和 RBPs,它们可能反过来影响基因表达,进而影响生理反应。对拟南芥(i)紫外线辐射、(ii)伤害、(iii)盐度、(iv)寒冷和(v)干旱胁迫相关的 20 项转录组研究进行了基因差异表达分析,然后确定了差异表达的 TFs 和 RBPs。随后,确定了可能影响这些调控因子的其他 TFs 和 RBPs,并分析了它们的相互作用网络和枢纽节点。结果表明,碱性亮氨酸拉链(bZIP)家族 TFs 以及异质性核核糖核蛋白(hnRNP)和富含甘氨酸蛋白(GRP)家族 RBPs(以及其他 TFs 和 RBPs)的相互作用模块有可能在所有考虑的应激条件下影响应激诱导的其他 TFs 和 RBPs 的差异表达。已知已发现的一些枢纽 TFs 和 RBPs 在协调胁迫诱导的转录组变化方面具有重要作用,影响了从种子萌发到衰老的各种生理过程。这项研究强调了可考虑进行多重遗传操作的候选基因/蛋白质--这是一种很有前途的方法,可用于开发健壮的、具有多种抗逆性的植物品种。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Transcriptome meta-analysis-based identification of hub transcription factors and RNA-binding proteins potentially orchestrating gene regulatory cascades and crosstalk in response to abiotic stresses in Arabidopsis thaliana.

Deteriorating climatic conditions and increasing human population necessitate the development of robust plant varieties resistant to harsh environments. Manipulation of regulatory proteins such as transcription factors (TFs) and RNA-binding proteins (RBPs) would be a beneficial strategy in this regard. Further, understanding the complex interconnections between different classes of regulatory molecules would be essential for the identification of candidate genes/proteins for trait improvement. Most studies to date have analysed the roles of TFs or RBPs individually, in conferring stress resilience. However, it would be important to identify dominant/upstream TFs and RBPs inducing widespread transcriptomic alterations through other regulators (i.e., other TFs/RBPs targeted by the upstream regulators). To this end, the present study employed a transcriptome meta-analysis and computational approaches to obtain a comprehensive overview of regulatory interactions. This work identified dominant TFs and RBPs potentially influencing stress-mediated differential expression of other regulators, which could in turn influence gene expression, and consequently, physiological responses. Twenty transcriptomic studies [related to (i) UV radiation, (ii) wounding, (iii) salinity, (iv) cold, and (v) drought stresses in Arabidopsis thaliana] were analysed for differential gene expression, followed by the identification of differentially expressed TFs and RBPs. Subsequently, other TFs and RBPs which could be influencing these regulators were identified, and their interaction networks and hub nodes were analysed. As a result, an interacting module of Basic Leucine Zipper (bZIP) family TFs as well as Heterogeneous nuclear ribonucleoproteins (hnRNP) and Glycine-rich protein (GRP) family RBPs (among other TFs and RBPs) were shown to potentially influence the stress-induced differential expression of other TFs and RBPs under all the considered stress conditions. Some of the identified hub TFs and RBPs are known to be of major importance in orchestrating stress-induced transcriptomic changes influencing a variety of physiological processes from seed germination to senescence. This study highlighted the gene/protein candidates that could be considered for multiplexed genetic manipulation - a promising approach to develop robust, multi-stress-resilient plant varieties.

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来源期刊
Journal of Applied Genetics
Journal of Applied Genetics 生物-生物工程与应用微生物
CiteScore
4.30
自引率
4.20%
发文量
62
审稿时长
6-12 weeks
期刊介绍: The Journal of Applied Genetics is an international journal on genetics and genomics. It publishes peer-reviewed original papers, short communications (including case reports) and review articles focused on the research of applicative aspects of plant, human, animal and microbial genetics and genomics.
期刊最新文献
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