生物
转录调控
转录组
重编程
RPO
细菌
多药耐受
抗生素
遗传学
核糖核酸
细胞
表型
转录后调控
细菌遗传学
转录活性
基因表达调控
细胞生物学
基因
微生物学
抗生素耐药性
抄写(语言学)
计算生物学
细菌细胞结构
严格的回应
肺炎克雷伯菌
基因表达
细胞周期
模式生物
DNA
作者
Qiang Liu,Zehui Yu,Xiaoli Liu,Amy Iverson,Tyler Simmons,Jason W. Rosch,Peijun Ma
标识
DOI:10.1038/s41467-026-73949-6
摘要
Bacteria can survive antibiotic treatment through phenotypic adaptation, a process that is often transient and involves heterogeneous transcriptional reprogramming. However, how this transcriptional heterogeneity is generated and how it influences antibiotic survival remains unclear. Here, we use bacterial single-cell RNA sequencing and functional assays in Klebsiella pneumoniae to characterize transcriptional heterogeneity and examine how pre-treatment cell states are associated with antibiotic-induced responses and survival outcomes. Using growth phase as a biologically meaningful axis of transcriptional variation, we reveal that even within an isogenic population, distinct transcriptional responses can be induced and co-contribute to survival. These responses are shaped by the cell’s pre-treatment transcriptional state and the mechanism of antibiotic action. Genetic and environmental perturbations, such as rpoS deletion and nutrient supplementation, shift pre-treatment cell states and alter survival frequencies. Our findings establish the biological significance of transcriptional heterogeneity shaped by pre-treatment cell states, providing a systems-level framework for understanding bacterial antibiotic response and suggesting strategies to enhance antibiotic efficacy by modulating cell states. Bacteria can survive antibiotic treatment through transient, heterogeneous transcriptional reprogramming. Here, Liu et al. use bacterial single-cell RNA sequencing and functional assays to show that bacterial responses to antibiotics are shaped by pre-treatment cell states, revealing how transcriptional heterogeneity drives survival.
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