Serine/threonine protein kinase mediates rifampicin resistance in Brucella melitensis through interacting with ribosomal protein RpsD and affecting antioxidant capacity.

IF 5 2区 生物学 Q1 MICROBIOLOGY
mSystems Pub Date : 2025-01-21 Epub Date: 2024-12-05 DOI:10.1128/msystems.01109-24
Yaqin Yuan, Wenqing Ning, Junjie Chen, Jiquan Li, Tianqi Xue, Cuihong An, Lingling Mao, Guangzhi Zhang, Shizhong Zhou, Jiabo Ding, Xiaowen Yang, Jianqiang Ye
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引用次数: 0

Abstract

Brucellosis, a zoonotic disease, has re-emerged in both humans and animals, causing significant economic losses globally. Recently, an increasing number of rifampicin-resistant Brucella strains have been isolated worldwide without detectable mutations in known antibiotic resistance genes. Here, this study identified the deletion of serine/threonine protein kinase (STPK) gene in B. melitensis as an efficient trigger for rifampicin resistance using bioinformatics predictions, a transposon mutant library, and gene mutation strains. Notably, the absence of the STPK could increase the expression of ribosomal proteins and genes involved in sulfur metabolism and reduced glutathione, and decrease NADPH oxidase activity and NADP+/NADPH ratio, which is associated with the antioxidant capacity of B. melitensis. Moreover, co-immunoprecipitation revealed that STPK could efficiently interact with the ribosomal protein RpsD, possibly altering protein translation and riboswitch expression. These findings demonstrate that the STPK gene mediates resistance by regulating sulfur metabolism to counteract the reactive oxygen species induced by rifampicin. Furthermore, the approaches developed in this study provide a platform for screening new resistance genes in Brucella spp., and the identified STPK or its pathway can serve as a potential target for new drug development against rifampicin-resistant Brucella spp.

Importance: New rifampicin resistance gene in Brucella melitensis is identified via bioinformatics predictions and a whole-genome transposon mutant library, new mechanisms of rifampicin resistance in B. melitensis, and new function of serine/threonine protein kinase gene and its interaction proteins.

丝氨酸/苏氨酸蛋白激酶通过与核糖体蛋白RpsD相互作用,影响抗氧化能力,介导melitensis对利福平的耐药性。
布鲁氏菌病是一种人畜共患疾病,在人类和动物中重新出现,在全球造成重大经济损失。最近,在世界范围内分离出越来越多的耐利福平的布鲁氏菌菌株,在已知的抗生素耐药基因中没有检测到突变。在这里,本研究通过生物信息学预测、转座突变文库和基因突变菌株,确定了B. melitensis丝氨酸/苏氨酸蛋白激酶(STPK)基因的缺失是利福平耐药的有效触发因素。值得注意的是,STPK的缺失会增加核糖体蛋白和硫代谢、还原性谷胱甘肽相关基因的表达,降低NADPH氧化酶活性和NADP+/NADPH比值,而这与蜜蜂的抗氧化能力有关。此外,共免疫沉淀显示STPK可以有效地与核糖体蛋白RpsD相互作用,可能改变蛋白质翻译和核糖体开关的表达。这些发现表明,STPK基因通过调节硫代谢来抵消利福平诱导的活性氧来介导抗性。此外,本研究建立的方法为布鲁氏菌新耐药基因的筛选提供了平台,所鉴定的STPK或其途径可作为针对利福平耐药布鲁氏菌的新药开发的潜在靶点。通过生物信息学预测、全基因组转座子突变文库、利福平耐药新机制、丝氨酸/苏氨酸蛋白激酶基因及其互作蛋白的新功能,确定了梅尔氏布鲁氏菌新的利福平耐药基因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
mSystems
mSystems Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
10.50
自引率
3.10%
发文量
308
审稿时长
13 weeks
期刊介绍: mSystems™ will publish preeminent work that stems from applying technologies for high-throughput analyses to achieve insights into the metabolic and regulatory systems at the scale of both the single cell and microbial communities. The scope of mSystems™ encompasses all important biological and biochemical findings drawn from analyses of large data sets, as well as new computational approaches for deriving these insights. mSystems™ will welcome submissions from researchers who focus on the microbiome, genomics, metagenomics, transcriptomics, metabolomics, proteomics, glycomics, bioinformatics, and computational microbiology. mSystems™ will provide streamlined decisions, while carrying on ASM''s tradition of rigorous peer review.
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