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GhCYS2 通过调节棉花细胞活力和光合作用来控制对镉胁迫的耐受性。

GhCYS2 governs the tolerance against cadmium stress by regulating cell viability and photosynthesis in cotton.

机构信息

Institute of Cotton Research of Chinese Academy of Agricultural Sciences / Research Base, Anyang Institute of Technology, National Key Laboratory of Cotton Bio-breeding and Integrated Utilization, Anyang 455000, Henan, China.

Hunan Institute of Cotton Science, Changde 415101, Hunan, China.

出版信息

Ecotoxicol Environ Saf. 2023 Sep 15;263:115386. doi: 10.1016/j.ecoenv.2023.115386. Epub 2023 Aug 18.

Abstract

Cysteine, an early sulfur-containing compound in plants, is of significant importance in sulfur metabolism. CYS encodes cysteine synthetase that further catalyzes cysteine synthesis. In this investigation, CYS genes, identified from genome-wide analysis of Gossypium hirsutum bioinformatically, led to the discovery of GhCYS2 as the pivotal gene responsible for Cd response. The silencing of GhCYS2 through virus-induced gene silencing (VIGS) rendered plants highly susceptible to Cd stress. Silencing GhCYS2 in plants resulted in diminished levels of cysteine and glutathione while leading to the accumulation of MDA and ROS within cells, thereby impeding the regular process of photosynthesis. Consequently, the stomatal aperture of leaves decreased, epidermal cells underwent distortion and deformation, intercellular connections are dramatically disrupted, and fissures manifested between cells. Ultimately, these detrimental effected culminating in plant wilting and a substantial reduction in biomass. The association established between Cd and cysteine in this investigation offered a valuable reference point for further inquiry into the functional and regulatory mechanisms of cysteine synthesis genes.

摘要

半胱氨酸是植物中最早含硫的化合物,在硫代谢中具有重要意义。CYS 编码半胱氨酸合成酶,进一步催化半胱氨酸的合成。在这项研究中,通过生物信息学对棉花基因组进行全面分析,鉴定出 CYS 基因,发现 GhCYS2 是负责 Cd 响应的关键基因。通过病毒诱导的基因沉默(VIGS)沉默 GhCYS2 使植物对 Cd 胁迫高度敏感。在植物中沉默 GhCYS2 会导致半胱氨酸和谷胱甘肽水平降低,同时导致 MDA 和 ROS 在细胞内积累,从而阻碍光合作用的正常过程。因此,叶片的气孔开度减小,表皮细胞发生扭曲和变形,细胞间连接严重破坏,细胞间出现裂缝。最终,这些不利影响导致植物萎蔫和生物量大量减少。本研究中 Cd 与半胱氨酸的关联为进一步研究半胱氨酸合成基因的功能和调控机制提供了有价值的参考。

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