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一个与调控细胞周期细胞周期蛋白复合物的转录因子网络协调真菌的氧化应激反应。

A network of transcription factors in complex with a regulating cell cycle cyclin orchestrates fungal oxidative stress responses.

机构信息

Key Laboratory of Agricultural Biosafety and Green Production of Upper Yangtze River (Ministry of Education), College of Plant Protection, Southwest University, Chongqing, 400715, People's Republic of China.

Key Laboratory of Entomology and Pest Control Engineering, Beibei Culture Collection of Chongqing Agricultural Microbiology, Chongqing, 400715, People's Republic of China.

出版信息

BMC Biol. 2024 Apr 12;22(1):81. doi: 10.1186/s12915-024-01884-3.

Abstract

BACKGROUND

Response to oxidative stress is universal in almost all organisms and the mitochondrial membrane protein, BbOhmm, negatively affects oxidative stress responses and virulence in the insect fungal pathogen, Beauveria bassiana. Nothing further, however, is known concerning how BbOhmm and this phenomenon is regulated.

RESULTS

Three oxidative stress response regulating ZnCys transcription factors (BbOsrR1, 2, and 3) were identified and verified via chromatin immunoprecipitation (ChIP)-qPCR analysis as binding to the BbOhmm promoter region, with BbOsrR2 showing the strongest binding. Targeted gene knockout of BbOsrR1 or BbOsrR3 led to decreased BbOhmm expression and consequently increased tolerances to free radical generating compounds (HO and menadione), whereas the ΔBbOsrR2 strain showed increased BbOhmm expression with concomitant decreased tolerances to these compounds. RNA and ChIP sequencing analysis revealed that BbOsrR1 directly regulated a wide range of antioxidation and transcription-associated genes, negatively affecting the expression of the BbClp1 cyclin and BbOsrR2. BbClp1 was shown to localize to the cell nucleus and negatively mediate oxidative stress responses. BbOsrR2 and BbOsrR3 were shown to feed into the Fus3-MAPK pathway in addition to regulating antioxidation and detoxification genes. Binding motifs for the three transcription factors were found to partially overlap in the promoter region of BbOhmm and other target genes. Whereas BbOsrR1 appeared to function independently, co-immunoprecipitation revealed complex formation between BbClp1, BbOsrR2, and BbOsrR3, with BbClp1 partially regulating BbOsrR2 phosphorylation.

CONCLUSIONS

These findings reveal a regulatory network mediated by BbOsrR1 and the formation of a BbClp1-BbOsrR2-BbOsrR3 complex that orchestrates fungal oxidative stress responses.

摘要

背景

对氧化应激的反应在几乎所有生物体中都是普遍存在的,而线粒体膜蛋白 BbOhmm 会对昆虫真菌病原体白僵菌的氧化应激反应和毒力产生负面影响。然而,关于 BbOhmm 及其调控机制,目前还知之甚少。

结果

通过染色质免疫沉淀(ChIP)-qPCR 分析鉴定并验证了三个氧化应激反应调控 ZnCys 转录因子(BbOsrR1、2 和 3)与 BbOhmm 启动子区域结合,其中 BbOsrR2 具有最强的结合能力。靶向基因敲除 BbOsrR1 或 BbOsrR3 导致 BbOhmm 表达减少,从而使细胞对自由基生成化合物(HO 和 menadione)的耐受性降低,而 ΔBbOsrR2 菌株则表现出 BbOhmm 表达增加,同时对这些化合物的耐受性降低。RNA 和 ChIP 测序分析表明,BbOsrR1 直接调控了广泛的抗氧化和转录相关基因,负调控 BbClp1 周期蛋白和 BbOsrR2 的表达。研究表明,BbClp1 定位于细胞核内,负调控氧化应激反应。BbOsrR2 和 BbOsrR3 除了调控抗氧化和解毒基因外,还被证明可以进入 Fus3-MAPK 通路。在 BbOhmm 和其他靶基因的启动子区域发现了三个转录因子的结合基序部分重叠。虽然 BbOsrR1 似乎独立发挥作用,但共免疫沉淀显示 BbClp1、BbOsrR2 和 BbOsrR3 之间形成复合物,其中 BbClp1 部分调节 BbOsrR2 的磷酸化。

结论

这些发现揭示了一个由 BbOsrR1 介导的调控网络和 BbClp1-BbOsrR2-BbOsrR3 复合物的形成,该复合物协调了真菌的氧化应激反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dfe3/11015564/d6384d5cdea1/12915_2024_1884_Fig1_HTML.jpg

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