Pvrboh基因的全基因组鉴定和表达分析揭示了它们在盐耐受性和钙信号传导中的潜在作用。

IF 4 2区 生物学 Q2 CELL BIOLOGY
Ling Pan, Lirong Cai, Yang Lu, Di Peng
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引用次数: 0

摘要

盐胁迫是制约植物生长和生产力的主要环境因素。了解植物耐盐机制对提高盐碱地作物产量至关重要。呼吸爆发氧化酶(Rboh)基因家族触发活性氧(ROS)的产生,作为信号分子调节植物在盐水条件下的耐受性和发育。然而,对盐生植物中Rboh基因家族的全面分析在很大程度上是未知的。在这项研究中,我们对典型的盐生植物Paspalum vaginatum的Rboh基因家族成员进行了表征。进化分析显示,与相关物种相比,Pvrboh基因在数量上存在差异。此外,在Pvrboh启动子中还发现了与植物激素、光响应和植物发育相关的顺式作用元件。所有Pvrboh基因均位于膜上,在高盐度条件下表达上调,参与根源或叶源H2O2的产生。基因结构分析和Ca2+抑制剂实验进一步表明,Pvrboh4和Pvrboh5与Ca2+信号传导密切相关,而Pvrboh6则不存在这种关联。benthamiana的分裂荧光素酶实验表明PvRBOH5与AtCPK5有强相互作用。此外,基因调控网络分析显示,来自32个不同家族的多个转录因子可能调控Pvrboh5的表达。这些发现为Pvrboh基因在提高植物耐盐性中的作用提供了新的见解,为提高作物的胁迫抗性提供了潜在的靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genome-wide identification and expression analysis Pvrboh genes reveal their potential roles in salt tolerance and calcium signaling.

Salinity stress is a major environmental factor that limits plant growth and productivity. Understanding the mechanisms of plant salt tolerance is crucial for improving crop yields in saline soils. The Respiratory Burst Oxidases (Rboh) gene family triggers the production of reactive oxygen species (ROS), which act as a signaling molecule to regulate plant tolerance and development under saline conditions. However, a comprehensive analysis of the Rboh gene family in halophytic plants is largely unexplored. In this study, we characterized members of the Rboh gene family in Paspalum vaginatum, a typical halophyte. Evolutionary analysis revealed numerical differences in Pvrboh genes compared to those related species. Additionally, cis-acting elements related to plant hormones, light response, and plant development were identified in Pvrboh promoters. All Pvrboh genes were found to be membrane-localized and upregulated under high salinity, contributing to either root-sourced or leaf-sourced H2O2 production. Gene structural analysis and Ca2+ inhibitor experiments further indicated that Pvrboh4 and Pvrboh5 were closely associated with Ca2+ signaling, whereas Pvrboh6 did not exhibit such an association. Split-luciferase assay in N. benthamiana showed that PvRBOH5 strongly interacted with AtCPK5. Furthermore, a gene regulatory network analysis revealed multiple transcription factors from 32 distinct families that may regulate Pvrboh5 expression. These findings provide new insights into the role of Pvrboh genes in enhancing plant salt tolerance, offering potential targets for improving stress resilience in crops.

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来源期刊
Plant and Cell Physiology
Plant and Cell Physiology 生物-细胞生物学
CiteScore
8.40
自引率
4.10%
发文量
166
审稿时长
1.7 months
期刊介绍: Plant & Cell Physiology (PCP) was established in 1959 and is the official journal of the Japanese Society of Plant Physiologists (JSPP). The title reflects the journal''s original interest and scope to encompass research not just at the whole-organism level but also at the cellular and subcellular levels. Amongst the broad range of topics covered by this international journal, readers will find the very best original research on plant physiology, biochemistry, cell biology, molecular genetics, epigenetics, biotechnology, bioinformatics and –omics; as well as how plants respond to and interact with their environment (abiotic and biotic factors), and the biology of photosynthetic microorganisms.
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