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铁通过调控砷胁迫水稻(Oryza sativa L.)中的 OsWRKY71 来重新编程根系结构。

Iron reprogrammes the root system architecture by regulating OsWRKY71 in arsenic-stressed rice (Oryza sativa L.).

机构信息

Ecotoxicogenomics Lab, Department of Biotechnology, Jamia Millia Islamia, New Delhi, 110025, India.

出版信息

Plant Mol Biol. 2024 Feb 7;114(1):11. doi: 10.1007/s11103-024-01420-5.

DOI:10.1007/s11103-024-01420-5
PMID:38324196
Abstract

Iron (Fe) has been critically reported to act as a signal that can be interpreted to activate the molecular mechanisms involved in root developmental processes. Arsenic (As) is a well-known metalloid that restricts the growth and productivity of rice plants by altering their root architecture. Since root system architecture (RSA) under As stress targets WRKY transcription factors (TFs) and their interaction partners, the current investigation was carried out to better understand the Fe-dependent dynamics of RSA and its participation in this process. Here, we analyzed the effects of As and Fe (alone or in combination) exposed to hydroponically grown rice roots of 12-day-old plants. Our research showed that adding As to Fe changed how OsWRKY71 was expressed and improved the morphology and anatomy of the rice roots in Ratna and Lalat varieties. As + Fe treatment also manifested the biochemical parameters. OsWRKY71, revealed an up-regulation (Fe alone and As + Fe conditions) and down-regulation (As stress) in both varieties, in comparison to the controls. The improved root anatomy and root oxidizability indicated the enhanced capability of Lalat over the Ratna variety to induce OsWRKY71 for the better development of RSA during As + Fe treatment. Further, OsWRKY71 has revealed the presence of gibberellin-responsive cis-regulatory elements (GAREs) in its promoter region, indicating the involvement of OsWRKY71 in the gibberellin pathway. Molecular docking revealed that OsWRKY71 and SLR1 (DELLA protein) interact positively, which supports the hypothesis that Fe alters RSA by regulating OsWRKY71 through the gibberellin pathway in As-stressed rice.

摘要

铁(Fe)被认为是一种信号,可以被解释为激活参与根发育过程的分子机制。砷(As)是一种众所周知的类金属,通过改变水稻的根系结构来限制其生长和生产力。由于砷胁迫下的根系系统结构(RSA)针对 WRKY 转录因子(TFs)及其相互作用伙伴,因此进行了当前的研究,以更好地理解 RSA 的 Fe 依赖性动态及其在该过程中的参与。在这里,我们分析了单独或组合暴露于水培生长的 12 天大的水稻根系中的 As 和 Fe 对水稻的影响。我们的研究表明,向 Fe 中添加 As 改变了 OsWRKY71 的表达,并改善了 Ratna 和 Lalat 品种水稻根系的形态和解剖结构。As + Fe 处理还表现出生化参数。与对照相比,OsWRKY71 在两个品种中均表现为上调(Fe 单独和 As + Fe 条件)和下调(As 胁迫)。改善的根系解剖结构和根系氧化能力表明,Lalat 品种比 Ratna 品种更能诱导 OsWRKY71,从而在 As + Fe 处理期间更好地发育 RSA。此外,OsWRKY71 在其启动子区域中显示出存在赤霉素反应性顺式调控元件(GAREs),表明 OsWRKY71 参与赤霉素途径。分子对接表明 OsWRKY71 和 SLR1(DELLA 蛋白)相互作用呈阳性,这支持了 Fe 通过赤霉素途径调节 OsWRKY71 来改变 As 胁迫下 RSA 的假设。

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