Structural and functional characterization of cellulose synthase proteins (CesA) in rice and their regulation via brassinosteroid signaling under arsenate stress.

IF 5.3 2区 生物学 Q1 PLANT SCIENCES Plant Cell Reports Pub Date : 2024-12-27 DOI:10.1007/s00299-024-03406-5
Ziya Shabab, Piyush Wamanrao Ghoshe, Dronamraju V L Sarada
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Abstract

Key message: CesA proteins response to arsenic stress in rice involves structural and regulatory mechanisms, highlighting the role of BES1/BZR1 transcript levels under arsenate exposure and significant downregulation of BZR1 protein expression. Plants interact with several hazardous metalloids during their life cycle through root and soil connection. One such metalloid, is arsenic and its perilous impact on rice cultivation is a well-known threat. Cellulose synthase and cellulose synthase-like (CesA/CSL) gene family build major constituent of cell wall polysaccharides, however, their interaction and responses to arsenic stress remains enigmatic. The current study describes the structural, functional, and regulatory behavior of CesA proteins using in silico tools with datasets of 367 sequences and an in vitro germination model. Interpro analysis revealed six types of domains, further classified into two major clades: cellulose synthase and glycosyl transferase family group 2 exhibiting polyphyletic grouping. The MEME suite analysis identified the frequent occurrence of "QXXRW" among 35 identified conserved motifs. Further observation of the regulatory mechanism of CesA identified 36 types of trans-regulatory elements involved in hormone signaling, developmental regulation, stress response, etc. Among these, hormone signaling comprises of 7 types of elements, with BES1 being less studied, sequences containing BES1 sites were selected. Additionally, 56 cis-regulatory elements were identified. Arsenate exposure increased transcript level of CesA and BES1/BZR1 compared to control. Western blot analysis revealed a significant downregulation of the BZR1 protein expression in arsenate stressed seedlings. This research shed light on the regulation of CesA mediated by (BES1/BZR1) and brassinosteroid signalling.

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砷酸盐胁迫下水稻纤维素合成酶蛋白(CesA)的结构和功能特征及油菜素内酯信号调控
关键信息:水稻CesA蛋白对砷胁迫的响应涉及结构和调控机制,强调砷暴露下BES1/BZR1转录物水平的作用,以及BZR1蛋白表达的显著下调。植物在其生命周期中通过根系和土壤的联系与几种有害金属相互作用。砷就是这样一种金属,它对水稻种植的危险影响是众所周知的威胁。纤维素合成酶和纤维素合成酶样(CesA/CSL)基因家族是细胞壁多糖的主要组成成分,但它们之间的相互作用和对砷胁迫的反应仍然是一个谜。目前的研究描述了CesA蛋白的结构、功能和调控行为,使用了367序列的数据集和体外萌发模型。Interpro分析显示了6种结构域,进一步划分为两个主要分支:纤维素合成酶和糖基转移酶家族2组,表现出多系性分组。MEME套件分析发现,在35个已确定的保守基序中,“QXXRW”频繁出现。通过对CesA调控机制的进一步观察,鉴定出36种反调控元件,涉及激素信号转导、发育调控、应激反应等。其中,激素信号包括7种元件,由于对BES1的研究较少,我们选择了含有BES1位点的序列。此外,还鉴定出56个顺式调控元件。与对照相比,砷酸盐暴露增加了CesA和BES1/BZR1转录本水平。Western blot分析显示砷酸盐胁迫下幼苗BZR1蛋白表达显著下调。本研究揭示了(BES1/BZR1)和油菜素内酯信号介导的CesA调控机制。
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来源期刊
Plant Cell Reports
Plant Cell Reports 生物-植物科学
CiteScore
10.80
自引率
1.60%
发文量
135
审稿时长
3.2 months
期刊介绍: Plant Cell Reports publishes original, peer-reviewed articles on new advances in all aspects of plant cell science, plant genetics and molecular biology. Papers selected for publication contribute significant new advances to clearly identified technological problems and/or biological questions. The articles will prove relevant beyond the narrow topic of interest to a readership with broad scientific background. The coverage includes such topics as: - genomics and genetics - metabolism - cell biology - abiotic and biotic stress - phytopathology - gene transfer and expression - molecular pharming - systems biology - nanobiotechnology - genome editing - phenomics and synthetic biology The journal also publishes opinion papers, review and focus articles on the latest developments and new advances in research and technology in plant molecular biology and biotechnology.
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