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OxyR 通过调控磁小体岛(MAI)基因、铁代谢和氧化还原状态来控制磁小体的形成。

OxyR controls magnetosome formation by regulating magnetosome island (MAI) genes, iron metabolism, and redox state.

机构信息

State Key Laboratory of Agro-Biotechnology, College of Biological Sciences, China Agricultural University, Beijing, 100193, China.

Agricultural Utilization Research Center, Nutrition and Health Research Institute, COFCO Corporation, Beijing, 102209, China.

出版信息

Free Radic Biol Med. 2020 Dec;161:272-282. doi: 10.1016/j.freeradbiomed.2020.10.015. Epub 2020 Oct 17.

Abstract

Magnetospirillum gryphiswaldense MSR-1 uses chains of magnetosomes, membrane-enveloped magnetite (Fe(II)Fe(III)O) nanocrystals, to align along magnetic field. The process of magnetosome biomineralization requires a precise biological control of redox conditions to maintain a balanced amounts of ferric and ferrous iron. Here, we identified functions of the global regulator OxyR (MGMSRv2_4250, OxyR-4250) in MSR-1 during magnetosome formation. OxyR deletion mutant ΔoxyR-4250 displayed reduced magnetic response, and increased levels of intracellular ROS (reactive oxygen species). OxyR-4250 protein upregulated expression of six antioxidant genes (ahpC1, ahpC2, katE, katG, sodB, trxA), four iron metabolism-related regulator genes (fur, irrA, irrB, irrC), a bacterioferritin gene (bfr), and a DNA protection gene (dps). OxyR-4250 was shown, for the first time, to directly regulate magnetosome island (MAI) genes mamGFDC, mamXY, and feoAB1 operons. Taken together, our findings indicate that OxyR-4250 helps maintain a proper redox environment for magnetosome formation by eliminating excess ROS, regulating iron homeostasis and participating in regulation of Fe/Fe ratio within the magnetosome vesicle through regulating MAI genes.

摘要

趋磁螺旋菌 MSR-1 使用磁小体链,即被膜包裹的磁铁矿 (Fe(II)Fe(III)O) 纳米晶体,沿磁场排列。磁小体生物矿化过程需要对氧化还原条件进行精确的生物控制,以维持铁离子的平衡含量。在这里,我们确定了全局调节剂 OxyR (MGMSRv2_4250,OxyR-4250) 在 MSR-1 形成磁小体过程中的作用。OxyR 缺失突变体 ΔoxyR-4250 表现出降低的磁响应和增加的细胞内 ROS (活性氧) 水平。OxyR-4250 蛋白上调了六个抗氧化基因 (ahpC1、ahpC2、katE、katG、sodB、trxA)、四个铁代谢相关调节基因 (fur、irrA、irrB、irrC)、一个细菌铁蛋白基因 (bfr) 和一个 DNA 保护基因 (dps) 的表达。OxyR-4250 首次被证明可以直接调节磁小体岛 (MAI) 基因 mamGFDC、mamXY 和 feoAB1 操纵子。总之,我们的研究结果表明,OxyR-4250 通过调节 MAI 基因来帮助维持磁小体形成的适当氧化还原环境,消除多余的 ROS,调节铁稳态,并参与调节磁小体囊泡内的 Fe/Fe 比。

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