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统计代谢建模揭示协同抗菌相互作用。

Statistical metamodeling for revealing synergistic antimicrobial interactions.

机构信息

Department of Aerospace and Mechanical Engineering, University of Arizona, Tucson, Arizona, USA.

出版信息

PLoS One. 2010 Nov 11;5(11):e15472. doi: 10.1371/journal.pone.0015472.

Abstract

Many bacterial pathogens are becoming drug resistant faster than we can develop new antimicrobials. To address this threat in public health, a metamodel antimicrobial cocktail optimization (MACO) scheme is demonstrated for rapid screening of potent antibiotic cocktails using uropathogenic clinical isolates as model systems. With the MACO scheme, only 18 parallel trials were required to determine a potent antimicrobial cocktail out of hundreds of possible combinations. In particular, trimethoprim and gentamicin were identified to work synergistically for inhibiting the bacterial growth. Sensitivity analysis indicated gentamicin functions as a synergist for trimethoprim, and reduces its minimum inhibitory concentration for 40-fold. Validation study also confirmed that the trimethoprim-gentamicin synergistic cocktail effectively inhibited the growths of multiple strains of uropathogenic clinical isolates. With its effectiveness and simplicity, the MACO scheme possesses the potential to serve as a generic platform for identifying synergistic antimicrobial cocktails toward management of bacterial infection in the future.

摘要

许多细菌病原体对药物的耐药性发展速度快于我们开发新的抗菌药物的速度。为了应对这一公共卫生威胁,本研究展示了一种针对临床泌尿道分离株的元模型抗菌鸡尾酒优化 (MACO) 方案,用于快速筛选有效的抗菌鸡尾酒。利用 MACO 方案,仅需进行 18 次平行试验即可确定数百种可能组合中的有效抗菌鸡尾酒。具体而言,发现甲氧苄啶和庆大霉素协同抑制细菌生长。敏感性分析表明庆大霉素对甲氧苄啶起协同作用,使其最低抑菌浓度降低 40 倍。验证研究还证实,甲氧苄啶-庆大霉素协同鸡尾酒可有效抑制多种临床泌尿道分离株的生长。由于其有效性和简单性,MACO 方案有可能成为未来用于管理细菌感染的协同抗菌鸡尾酒的通用平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc3d/2988685/1e400bdb7d85/pone.0015472.g001.jpg

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