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MgaSpn全局转录调节因子介导肺炎链球菌中荚膜多糖的生物合成,并通过尿嘧啶合成途径影响毒力。

The MgaSpn global transcriptional regulator mediates the biosynthesis of capsular polysaccharides and affects virulence via the uracil synthesis pathway in Streptococcus pneumoniae.

作者信息

Wang Shuhui, Guo Xinlin, Tao Ye, Zhang Xuemei, Suo Weicai, Zhang Yapeng, Lei Li, Yin Yibing, Zheng Yuqiang

机构信息

Department of Laboratory Medicine Children's Hospital of Chongqing Medical University, National Clinical Research Center for Child Health and Disorders, Ministry of Education Key Laboratory of Child Development and Disorders, Chongqing Key Laboratory of Pediatric Metabolism and Inflammatory Diseases, Chongqing, China.

Department of Laboratory Medicine, Key Laboratory of Diagnostic Medicine Designated by the Ministry of Education, Chongqing Medical University, Chongqing, China.

出版信息

Int J Med Microbiol. 2025 Mar;318:151648. doi: 10.1016/j.ijmm.2025.151648. Epub 2025 Feb 6.

Abstract

Uracil metabolism is an important step in the growth and metabolism of Streptococcus pneumoniae, and pyrimidine nucleotides play an important role in the expression and production of S. pneumoniae capsules. MgaSpn(spd_1587),as a transcriptional ragulator of host environment adaptation, regulates the biosynthesis of the capsules and phosphorylcholine. However, the underlying regulation mechanism between uracil metabolism and biosynthesis of capsules remains incompletely understood. Here, we first described the relationship between uracil metabolism and capsule expression via the pyrR gene(spd_1134) in S. pneumoniae. Electrophoretic mobility-shift assays (EMSAs) and DNase I footprinting assays showed a direct interaction between MgaSpn and the pyrR promoter (P) at two specific binding sites. MgaSpn negatively regulated capsule production through pyrR as confirmed by complementing pyrR expression in D39ΔmgaSpnΔpyrR (mgaSpn and pyrR double-defective strain). Virulence experiments showed that the MgaSpn-pyrR interaction was necessary for both pneumococcal colonization and invasive infection. For the first time, the present study demonstrated that the de novo synthesis gene pyrR of S. pneumoniae is regulated by the MgaSpn transcriptional regulator.Taken together,these results provide an insight into the regulation of capsule production mediated by uracil metabolism and its important roles in pneumococcal pathogenesis.

摘要

尿嘧啶代谢是肺炎链球菌生长和代谢的重要步骤,嘧啶核苷酸在肺炎链球菌荚膜的表达和产生中起重要作用。MgaSpn(spd_1587)作为宿主环境适应性的转录调节因子,调节荚膜和磷酸胆碱的生物合成。然而,尿嘧啶代谢与荚膜生物合成之间的潜在调控机制仍不完全清楚。在此,我们首次描述了肺炎链球菌中尿嘧啶代谢与通过pyrR基因(spd_1134)的荚膜表达之间的关系。电泳迁移率变动分析(EMSA)和DNase I足迹分析表明,MgaSpn与pyrR启动子(P)在两个特定结合位点存在直接相互作用。通过在D39ΔmgaSpnΔpyrR(mgaSpn和pyrR双缺陷菌株)中补充pyrR表达证实,MgaSpn通过pyrR负向调节荚膜产生。毒力实验表明,MgaSpn-pyrR相互作用对肺炎球菌定植和侵袭性感染均是必需的。本研究首次证明,肺炎链球菌的从头合成基因pyrR受MgaSpn转录调节因子调控。综上所述,这些结果为尿嘧啶代谢介导的荚膜产生调控及其在肺炎球菌致病机制中的重要作用提供了深入了解。

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