抗生素
氨苄西林
限制
细菌
生物
人口
复制
微生物学
细菌生长
微流控
细菌性疾病
微生物
多药耐受
抗生素耐药性
生物系统
化学
细菌细胞结构
抗菌剂
计算生物学
作者
Ashkan Samimi,Nia Verdon,Rosalind J. Allen,Miriam A. Rosenbaum
出处
期刊:Small science
[Wiley]
日期:2026-01-01
卷期号:6 (1): e202500421-e202500421
标识
DOI:10.1002/smsc.202500421
摘要
Bacterial infections often involve small, local populations of bacteria, yet antibiotic treatment decisions are generally based on bulk population susceptibility assays. Stochastic variability among local small populations can influence susceptibility, limiting the predictive capability of bulk assays. Therefore there is a need to better understand antibiotic response in small populations. Droplet‐based microfluidics enables the high‐throughput production of tens of thousands of picolitre droplets, in which small populations of bacteria (e.g., 8 cells) can be encapsulated and their responses to different environmental conditions tracked. Here, we use a combinatorial droplet‐generation platform, combined with microscopy and image analysis, to interrogate the responses of small populations of Escherichia coli to different bulk‐determined sub‐inhibitory concentrations of the antibiotics tetracycline, streptomycin, and ampicillin within a single experiment. We observe qualitatively distinct small‐population responses for these antibiotics. For the bacteriostatic ribosome‐targeting antibiotic tetracycline, growth varies nonmonotonically at low antibiotic concentrations. For the bactericidal ribosome‐targeting antibiotic streptomycin, we observe apparent bistability, some replicate populations growing while others die. For the bactericidal cell‐wall targeting antibiotic ampicillin, we observe stochastic bacterial filamentation. Our study shows how distinct phenomena impacting antibiotic susceptibility may emerge in small bacterial populations, laying a foundation for deeper studies into potential treatment implications.
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