生物
计算生物学
抗生素耐药性
遗传学
清脆的
基因
抗生素
保守序列
流动遗传元素
基因组
抗药性
传输(电信)
系统发育树
万古霉素
生物信息学
基因组学
毒力
RNA干扰
上位性
药物发现
作者
Maria-Vittoria Mazzuoli,Jessica Burnier,Albane Schmid,Louise Martin,Axel B. Janssen,Clément Gallay,Annelies Sophie Zinkernagel,Jan‐Willem Veening
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-10-13
被引量:1
标识
DOI:10.1101/2025.10.13.682098
摘要
Abstract Staphylococcus aureus remains a major clinical threat due to rising antibiotic resistance and high rates of treatment failure. Deciphering the genetic responses to antibiotic pressure and identifying conserved vulnerabilities are essential steps toward developing broadly effective therapies. Here, we constructed strain-resolved CRISPR interference (CRISPRi) libraries targeting all genes in four clinically relevant S. aureus strains spanning major clonal complexes. CRISPRi-seq screens enabled high-resolution mapping of their fitness landscapes and the definition of a core essentialome representing robust targets for antimicrobial intervention. Exposure of the CRISPRi libraries to four mechanistically distinct antibiotics revealed genome-wide susceptibility profiles, identifying both strain-dependent and conserved susceptibility signatures shaped by the drug mode of action and genetic background. Analysis of these conserved vulnerabilities provided insight into antibiotic-specific stress responses and resistance mechanisms. Among the core determinants of vancomycin vulnerability, we identified several previously uncharacterized genes, including a conserved membrane-associated operon, here designated EsrABC, whose disruption markedly increases vancomycin sensitivity in the four strains. Our study provides a genome-wide atlas of S. aureus fitness and conditional vulnerabilities, fully explorable in the here-developed online AureoBrowse platform ( https://aureobrowse.veeninglab.com/ ), revealing candidates for synergistic therapies and potential therapeutic targets.
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