Mirza Zainab, Jonwal Sarvesh, Saini Himanshu, Sinha Alok Krishna, Gupta Meetu
Ecotoxicogenomics Lab, Department of Biotechnology, Jamia Millia Islamia, New Delhi, 25, India.
National Institute of Plant Genome Research, Aruna Asaf Ali Marg, New Delhi, 110067, India.
Plant Physiol Biochem. 2023 Nov;204:108136. doi: 10.1016/j.plaphy.2023.108136. Epub 2023 Oct 23.
Arsenic (As) is a significant environmental element that restricts the growth and production of rice plants. Although the role of iron (Fe) to sequester As in rice is widely known, the molecular mechanism regarding As-Fe interaction remains opaque. Here, we show the differential response of two rice varieties (Ratna and Lalat) in terms of their morphological and biochemical changes in the presence of As and Fe. These results together with in-silico screening, gene expression analysis, and protein-protein interaction studies suggest the role of OsWRKY76 in Fe-mediated As stress alleviation. When OsWRKY76 is activated by MAPK signaling, it inhibits the gene expression of Fe transporters OsIRT1 and OsYSL2, which reduces the amount of Fe accumulated. However, MAPK signaling and OsWRKY76 remain down-regulated during Fe supplementation with As, which subsequently encourages the up-regulation of OsIRT1 and OsYSL2. This results in greater Fe content and decreased As accumulation and toxicity. The lower HO and SOD, CAT, and APX activities were likewise seen under the As + Fe condition. Overall, results revealed the molecular aspects of Fe-mediated control of OsWRKY76 signaling and showed that Ratna is a more As tolerant variety than Lalat. Lalat, however, performs better in As stress due to the presence of Fe.
砷(As)是一种重要的环境元素,会限制水稻植株的生长和产量。尽管铁(Fe)在水稻中螯合砷的作用广为人知,但砷 - 铁相互作用的分子机制仍不清楚。在此,我们展示了两个水稻品种(Ratna和Lalat)在砷和铁存在下的形态和生化变化方面的差异反应。这些结果与电子筛选、基因表达分析和蛋白质 - 蛋白质相互作用研究一起表明了OsWRKY76在铁介导的砷胁迫缓解中的作用。当OsWRKY76被丝裂原活化蛋白激酶(MAPK)信号激活时,它会抑制铁转运蛋白OsIRT1和OsYSL2的基因表达,从而减少积累的铁量。然而,在补充铁和砷的过程中,MAPK信号和OsWRKY76仍然下调,这随后促使OsIRT1和OsYSL2上调。这导致铁含量增加,砷积累和毒性降低。在砷 + 铁条件下同样观察到较低水平的过氧化氢酶(HO)、超氧化物歧化酶(SOD)、过氧化氢酶(CAT)和抗坏血酸过氧化物酶(APX)活性。总体而言,结果揭示了铁介导的OsWRKY76信号调控的分子层面,并表明Ratna是比Lalat更耐砷的品种。然而,由于铁的存在,Lalat在砷胁迫下表现更好。