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突破壁垒:通过全基因组研究探索伯胺在促进大肠杆菌外膜穿透和氨苄青霉素生长抑制中的作用。

Breaching the Barrier: Genome-Wide Investigation into the Role of a Primary Amine in Promoting E. coli Outer-Membrane Passage and Growth Inhibition by Ampicillin.

机构信息

College of Engineering, Science and Environment, University of Newcastle, Callaghan, New South Wales, Australia.

ARC Centre of Excellence in Synthetic Biology, Macquarie Universitygrid.1004.5, Macquarie Park, New South Wales, Australia.

出版信息

Microbiol Spectr. 2022 Dec 21;10(6):e0359322. doi: 10.1128/spectrum.03593-22. Epub 2022 Nov 21.

Abstract

Gram-negative bacteria are problematic for antibiotic development due to the low permeability of their cell envelopes. To rationally design new antibiotics capable of breaching this barrier, more information is required about the specific components of the cell envelope that prevent the passage of compounds with different physiochemical properties. Ampicillin and benzylpenicillin are β-lactam antibiotics with identical chemical structures except for a clever synthetic addition of a primary amine group in ampicillin, which promotes its accumulation in Gram-negatives. Previous work showed that ampicillin is better able to pass through the outer membrane porin OmpF in Escherichia coli compared to benzylpenicillin. It is not known, however, how the primary amine may affect interaction with other cell envelope components. This study applied TraDIS to identify genes that affect E. coli fitness in the presence of equivalent subinhibitory concentrations of ampicillin and benzylpenicillin, with a focus on the cell envelope. Insertions that compromised the outer membrane, particularly the lipopolysaccharide layer, were found to decrease fitness under benzylpenicillin exposure, but had less effect on fitness under ampicillin treatment. These results align with expectations if benzylpenicillin is poorly able to pass through porins. Disruption of genes encoding the AcrAB-TolC efflux system were detrimental to survival under both antibiotics, but particularly ampicillin. Indeed, insertions in these genes and regulators of expression were differentially selected under ampicillin treatment to a greater extent than insertions in . These results suggest that maintaining ampicillin efflux may be more significant to E. coli survival than full inhibition of OmpF-mediated uptake. Due to the growing antibiotic resistance crisis, there is a critical need to develop new antibiotics, particularly compounds capable of targeting high-priority antibiotic-resistant Gram-negative pathogens. In order to develop new compounds capable of overcoming resistance a greater understanding of how Gram-negative bacteria are able to prevent the uptake and accumulation of many antibiotics is required. This study used a novel genome wide approach to investigate the significance of a primary amine group as a chemical feature that promotes the uptake and accumulation of compounds in the Gram-negative model organism Escherichia coli. The results support previous biochemical observations that the primary amine promotes passage through the outer membrane porin OmpF, but also highlight active efflux as a major resistance factor.

摘要

革兰氏阴性菌的细胞外膜通透性低,这给抗生素的开发带来了问题。为了合理设计能够突破这一障碍的新型抗生素,我们需要更多地了解阻止具有不同理化性质的化合物通过的细胞外膜的具体组成部分。氨苄青霉素和苯唑西林是β-内酰胺类抗生素,它们的化学结构完全相同,只是氨苄青霉素在苯唑西林的基础上巧妙地添加了一个伯胺基团,从而促进了它在革兰氏阴性菌中的积累。以前的工作表明,与苯唑西林相比,氨苄青霉素能够更好地通过大肠杆菌的外膜孔蛋白 OmpF。然而,目前尚不清楚伯胺基团如何影响与其他细胞外膜成分的相互作用。本研究应用 TraDIS 来鉴定在亚抑菌浓度的氨苄青霉素和苯唑西林存在下影响大肠杆菌适应性的基因,重点是细胞外膜。发现破坏外膜(特别是脂多糖层)的插入物会降低在苯唑西林暴露下的适应性,但在氨苄青霉素处理下对适应性的影响较小。如果苯唑西林不能很好地通过孔蛋白,这些结果是符合预期的。破坏编码 AcrAB-TolC 外排系统的基因对两种抗生素的存活都有害,但对氨苄青霉素的影响尤其大。事实上,与 相比,这些基因和表达调节剂的插入在氨苄青霉素处理下受到了更大程度的选择,而在 中则没有。这些结果表明,维持氨苄青霉素外排对大肠杆菌的生存可能比完全抑制 OmpF 介导的摄取更为重要。由于抗生素耐药性危机日益严重,迫切需要开发新的抗生素,特别是能够针对高优先级抗生素耐药性革兰氏阴性病原体的化合物。为了开发能够克服耐药性的新型化合物,我们需要更好地了解革兰氏阴性菌如何防止许多抗生素的摄取和积累。本研究使用一种新的全基因组方法来研究伯胺基团作为一种化学特征,它可以促进革兰氏阴性模式生物大肠杆菌中化合物的摄取和积累。结果支持了以前的生化观察结果,即伯胺基团促进了通过外膜孔蛋白 OmpF 的转运,但也强调了主动外排是一个主要的耐药因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf5f/9769794/1ffd56122619/spectrum.03593-22-f001.jpg

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