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细菌异质性耐药的高度动态特性使其临床检测变得困难。

The highly dynamic nature of bacterial heteroresistance impairs its clinical detection.

机构信息

Department of Medical Biochemistry and Microbiology, Uppsala University, Uppsala, Sweden.

Department of Cell and Molecular Biology, Uppsala University, Uppsala, Sweden.

出版信息

Commun Biol. 2021 May 5;4(1):521. doi: 10.1038/s42003-021-02052-x.

Abstract

Many bacterial species and antibiotic classes exhibit heteroresistance, a phenomenon in which a susceptible bacterial isolate harbors a resistant subpopulation that can grow in the presence of an antibiotic and cause treatment failure. The resistant phenotype is often unstable and without antibiotic selection it reverts back to susceptibility. Here we studied the dynamics by which these resistant subpopulations are enriched in the presence of antibiotic and recede back to their baseline frequency in the absence of selection. An increasing understanding of this instability will allow more effective diagnostics and treatment of infections caused by heteroresistant bacteria. We show for clinical isolates of Escherichia coli and Salmonella enterica that different antibiotics at levels below the MIC of the susceptible main population can cause rapid enrichment of resistant subpopulations with increased copy number of genes that cause resistance. Modelling and growth rate measurements of bacteria with increased gene copy number in cultures and by microscopy of single-cells in a microfluidic chip show that the fitness cost of gene amplifications and their intrinsic instability drives their rapid loss in the absence of selection. Using a common antibiotic susceptibility test, we demonstrate that this test strongly underestimates the occurrence of heteroresistance in clinical isolates.

摘要

许多细菌物种和抗生素类别表现出异质性耐药性,这是一种现象,即敏感的细菌分离株中存在耐药亚群,该亚群能够在抗生素存在的情况下生长,并导致治疗失败。耐药表型通常不稳定,没有抗生素选择,它会恢复到敏感性。在这里,我们研究了在存在抗生素的情况下这些耐药亚群如何被富集,以及在没有选择的情况下它们如何回到基线频率的动态。对这种不稳定性的深入了解将允许更有效地诊断和治疗由异质性耐药细菌引起的感染。我们展示了临床分离的大肠杆菌和沙门氏菌属的情况,低于敏感主要群体 MIC 的不同抗生素可以导致引起耐药的基因拷贝数增加的耐药亚群的快速富集。在培养物中增加基因拷贝数的细菌的建模和生长速率测量以及通过微流控芯片中的单细胞显微镜观察表明,基因扩增的适应性成本及其内在不稳定性导致它们在没有选择的情况下迅速丢失。使用常见的抗生素药敏试验,我们证明该试验严重低估了临床分离株中异质性耐药的发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb50/8099907/317aba58799a/42003_2021_2052_Fig1_HTML.jpg

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