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全基因组鉴定、表征及表达分析揭示假尿苷合酶(PUS)家族蛋白在水稻发育和胁迫响应中的作用。

Genome-wide identification, characterization, and expression analysis unveil the roles of pseudouridine synthase (PUS) family proteins in rice development and stress response.

作者信息

Dhingra Yashika, Lahiri Milinda, Bhandari Nikunj, Kaur Inderjit, Gupta Shitij, Agarwal Manu, Katiyar-Agarwal Surekha

机构信息

Department of Plant Molecular Biology, University of Delhi, South Campus, Benito Juarez Marg, Dhaula Kuan, New Delhi, 110021 India.

Present Address: Institute of Plant Sciences, Universität Bern, Altenbergrain 21, 3013 Bern, Switzerland.

出版信息

Physiol Mol Biol Plants. 2023 Dec;29(12):1981-2004. doi: 10.1007/s12298-023-01396-4. Epub 2023 Nov 30.

Abstract

UNLABELLED

Pseudouridylation, the conversion of uridine (U) to pseudouridine (Ѱ), is one of the most prevalent and evolutionary conserved RNA modifications, which is catalyzed by pseudouridine synthase (PUS) enzymes. Ѱs play a crucial epitranscriptomic role by regulating attributes of cellular RNAs across diverse organisms. However, the precise biological functions of PUSs in plants remain largely elusive. In this study, we identified and characterized 21 members in the rice PUS family which were categorized into six distinct subfamilies, with RluA and TruA emerging as the most extensive. A comprehensive analysis of domain structures, motifs, and homology modeling revealed that OsPUSs possess all canonical features of true PUS proteins, essential for substrate recognition and catalysis. The exploration of promoters revealed presence of cis-acting regulatory elements associated with hormone and abiotic stress responses. Expression analysis of genes showed differential expression at developmental stages and under stress conditions. Notably, displayed high expression in salt, heat, and drought stresses. Several members showed induction in heat stress, while a significant decline in expression was observed for various members in drought and salinity. Furthermore, miRNAs predicted to target s were themselves responsive to variable stresses, adding an additional layer of regulatory complexity of OsPUSs. Study of protein-protein interaction networks provided substantial support for the potential regulatory role of OsPUSs in numerous cellular and stress response pathways. Conclusively, our study provides functional insights into the family, contributing to a better understanding of their crucial roles in shaping the development and stress adaptation in rice.

SUPPLEMENTARY INFORMATION

The online version contains supplementary material available at 10.1007/s12298-023-01396-4.

摘要

未标记

假尿苷化,即尿苷(U)向假尿苷(Ѱ)的转化,是最普遍且在进化上保守的RNA修饰之一,由假尿苷合酶(PUS)催化。Ѱ通过调节多种生物体中细胞RNA的特性发挥关键的表观转录组学作用。然而,PUS在植物中的精确生物学功能仍 largely 难以捉摸。在本研究中,我们鉴定并表征了水稻PUS家族中的21个成员,它们被分为六个不同的亚家族,其中RluA和TruA最为广泛。对结构域结构、基序和同源建模的综合分析表明,OsPUS具有真正PUS蛋白的所有典型特征,这对于底物识别和催化至关重要。对启动子的探索揭示了与激素和非生物胁迫反应相关的顺式作用调控元件的存在。基因表达分析表明,在发育阶段和胁迫条件下存在差异表达。值得注意的是,在盐、热和干旱胁迫中表现出高表达。几个成员在热胁迫中表现出诱导,而在干旱和盐度下,各种成员的表达显著下降。此外,预测靶向Ѱ的miRNA本身对可变胁迫有反应,增加了OsPUS调控复杂性的额外层面。蛋白质-蛋白质相互作用网络的研究为OsPUS在众多细胞和胁迫反应途径中的潜在调控作用提供了大量支持。总之,我们的研究提供了对该家族功能的见解,有助于更好地理解它们在塑造水稻发育和胁迫适应中的关键作用。

补充信息

在线版本包含可在10.1007/s12298-023-01396-4获取的补充材料。

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