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铜绿假单胞菌对小分子通透性的特性空间图谱。

Property space mapping of Pseudomonas aeruginosa permeability to small molecules.

机构信息

Department of Chemistry and Biochemistry, University of Oklahoma, 101 Stephenson Parkway, Norman, OK, 73019, USA.

Graduate School of Genome Science and Technology, University of Tennessee, Knoxville, TN, 37996, USA.

出版信息

Sci Rep. 2022 May 17;12(1):8220. doi: 10.1038/s41598-022-12376-1.

Abstract

Two membrane cell envelopes act as selective permeability barriers in Gram-negative bacteria, protecting cells against antibiotics and other small molecules. Significant efforts are being directed toward understanding how small molecules permeate these barriers. In this study, we developed an approach to analyze the permeation of compounds into Gram-negative bacteria and applied it to Pseudomonas aeruginosa, an important human pathogen notorious for resistance to multiple antibiotics. The approach uses mass spectrometric measurements of accumulation of a library of structurally diverse compounds in four isogenic strains of P. aeruginosa with varied permeability barriers. We further developed a machine learning algorithm that generates a deterministic classification model with minimal synonymity between the descriptors. This model predicted good permeators into P. aeruginosa with an accuracy of 89% and precision above 58%. The good permeators are broadly distributed in the property space and can be mapped to six distinct regions representing diverse chemical scaffolds. We posit that this approach can be used for more detailed mapping of the property space and for rational design of compounds with high Gram-negative permeability.

摘要

两层细胞膜作为革兰氏阴性菌的选择性渗透屏障,保护细胞免受抗生素和其他小分子的侵害。目前正在进行大量研究,以了解小分子如何渗透这些屏障。在这项研究中,我们开发了一种分析化合物渗透进入革兰氏阴性菌的方法,并将其应用于铜绿假单胞菌,这是一种对多种抗生素具有耐药性的重要人类病原体。该方法使用质谱测量在具有不同渗透屏障的四种同基因铜绿假单胞菌菌株中积累的化合物文库。我们进一步开发了一种机器学习算法,该算法生成了一个具有最小描述符相似性的确定性分类模型。该模型预测了对铜绿假单胞菌具有良好渗透性的化合物,准确率为 89%,精度高于 58%。良好的渗透剂在性质空间中广泛分布,可以映射到代表不同化学支架的六个不同区域。我们假设这种方法可以用于更详细地绘制性质空间,并合理设计具有高革兰氏阴性渗透性的化合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0d9/9114115/4fbbb1b58f3c/41598_2022_12376_Fig1_HTML.jpg

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