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Ohr 和 OhrR 对于有机过氧化物抗性和 ORS571 共生至关重要。

Ohr and OhrR Are Critical for Organic Peroxide Resistance and Symbiosis in ORS571.

机构信息

Department of Microbiology, College of Life Sciences, Nanjing Agricultural University, Nanjing 210095, China.

Jiangsu Provincial Key Lab for Organic Solid Waste Utilization, Jiangsu Collaborative Innovation Center for Solid Organic Waste Resource Utilization, National Engineering Research Center for Organic-based Fertilizers, Postdoctoral Station of Agricultural Resources and Environment, Nanjing Agricultural University, Nanjing 210095, China.

出版信息

Genes (Basel). 2020 Mar 20;11(3):335. doi: 10.3390/genes11030335.

Abstract

is a symbiotic nitrogen-fixing bacterium that forms both root and stem nodules on . During nodule formation, bacteria have to withstand organic peroxides that are produced by plant. Previous studies have elaborated on resistance to these oxygen radicals in several bacteria; however, to the best of our knowledge, none have investigated this process in . In this study, we identified and characterised the organic hydroperoxide resistance gene (AZC_2977) and its regulator (AZC_3555) in ORS571. Hypersensitivity to organic hydroperoxide was observed in an mutant. While using a -based reporter system, we revealed that OhrR repressed the expression of . Moreover, electrophoretic mobility shift assays demonstrated that OhrR regulated by direct binding to its promoter region. We showed that this binding was prevented by OhrR oxidation under aerobic conditions, which promoted OhrR dimerization and the activation of . Furthermore, we showed that one of the two conserved cysteine residues in OhrR, Cys, was critical for the sensitivity to organic hydroperoxides. Plant assays revealed that the inactivation of Ohr decreased the number of stem nodules and nitrogenase activity. Our data demonstrated that Ohr and OhrR are required for protecting from organic hydroperoxide stress and play an important role in the interaction of the bacterium with plants. The results that were obtained in our study suggested that a thiol-based switch in might sense host organic peroxide signals and enhance symbiosis.

摘要

是一种共生固氮细菌,能在 上形成根瘤和茎瘤。在形成根瘤的过程中,细菌必须耐受植物产生的有机过氧化物。以前的研究已经详细阐述了几种细菌对这些氧自由基的抗性;然而,据我们所知,还没有研究过 在 中的这个过程。在这项研究中,我们在 ORS571 中鉴定并描述了有机过氧化物抗性基因 (AZC_2977)及其调节剂 (AZC_3555)。在 突变体中观察到对有机过氧化物的超敏反应。在用 启动子报告系统时,我们揭示了 OhrR 抑制了 的表达。此外,电泳迁移率变动分析表明 OhrR 通过直接结合其启动子区域来调节 。我们表明,在有氧条件下,OhrR 氧化会阻止这种结合,从而促进 OhrR 二聚化和 的激活。此外,我们表明 OhrR 中两个保守半胱氨酸残基之一的 Cys 对于对有机过氧化物的敏感性至关重要。植物实验表明,Ohr 的失活减少了茎瘤的数量和固氮酶活性。我们的数据表明,Ohr 和 OhrR 对于保护 免受有机过氧化物应激非常重要,并在细菌与植物的相互作用中发挥重要作用。我们的研究结果表明, 中的基于硫醇的开关可能感知宿主有机过氧化物信号并增强共生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8969/7141136/234118012639/genes-11-00335-g001.jpg

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