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一种抑制脂多糖转运蛋白LptA和LptC相互作用的小分子的鉴定。

Identification of a Small Molecule That Inhibits the Interaction of LPS Transporters LptA and LptC.

作者信息

Dai Xiaowei, Yuan Min, Lu Yu, Zhu Xiaohong, Liu Chao, Zheng Yifan, Si Shuyi, Yuan Lijie, Zhang Jing, Li Yan

机构信息

Key Laboratory of Antimicrobial Agents, Institute of Medicinal Biotechnology, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100050, China.

Hebei Key Laboratory for Chronic Diseases, Tangshan Key Laboratory for Preclinical and Basic Research on Chronic Diseases, School of Basic Medical Sciences, North China University of Science and Technology, Tangshan 063210, China.

出版信息

Antibiotics (Basel). 2022 Oct 10;11(10):1385. doi: 10.3390/antibiotics11101385.

Abstract

The need for novel antibiotics has become imperative with the increasing prevalence of antibiotic resistance in Gram-negative bacteria in clinics. Acting as a permeability barrier, lipopolysaccharide (LPS) protects Gram-negative bacteria against drugs. LPS is synthesized in cells and transported to the outer membrane (OM) via seven lipopolysaccharide transport (Lpt) proteins (LptA-LptG). Of these seven Lpt proteins, LptC interacts with LptA to transfer LPS from the inner membrane (IM) to the OM, and assembly is aided by LptD/LptE. This interaction among the Lpt proteins is important for the biosynthesis of LPS; therefore, the Lpt proteins, which are significant in the assembly process of LPS, can be a potential target for new antibiotics. In this study, a yeast two-hybrid (Y2H) system was used to screen compounds that could block LPS transport by inhibiting LptA/LptC interaction, which finally disrupts the biosynthesis of the OM. We selected the compound IMB-0042 for this study. Our results suggest that IMB-0042 disrupts LptA/LptC interaction by binding to both LptA and LptC. cells, when treated with IMB-0042, showed filament morphology, impaired OM integrity, and an accumulation of LPS in the periplasm. IMB-0042 inhibited the growth of Gram-negative bacteria and showed synergistic sensitization to other antibiotics, with low cytotoxicity. Thus, we successfully identified a potential antibacterial agent by using a Y2H system, which blocks the transport of LPS by targeting LptA/LptC interaction in .

摘要

随着临床上革兰氏阴性菌抗生素耐药性的日益普遍,新型抗生素的需求变得至关重要。脂多糖(LPS)作为一种通透性屏障,保护革兰氏阴性菌免受药物侵害。LPS在细胞内合成,并通过七种脂多糖转运(Lpt)蛋白(LptA-LptG)转运到外膜(OM)。在这七种Lpt蛋白中,LptC与LptA相互作用,将LPS从内膜(IM)转移到OM,LptD/LptE则辅助组装。Lpt蛋白之间的这种相互作用对LPS的生物合成很重要;因此,在LPS组装过程中起重要作用的Lpt蛋白可能成为新型抗生素的潜在靶点。在本研究中,使用酵母双杂交(Y2H)系统筛选能够通过抑制LptA/LptC相互作用来阻断LPS转运的化合物,最终破坏OM的生物合成。我们选择化合物IMB-0042进行本研究。我们的结果表明,IMB-0042通过与LptA和LptC结合来破坏LptA/LptC相互作用。用IMB-0042处理的细胞呈现丝状形态,OM完整性受损,LPS在周质中积累。IMB-0042抑制革兰氏阴性菌的生长,并对其他抗生素表现出协同致敏作用,细胞毒性低。因此,我们通过使用Y2H系统成功鉴定出一种潜在的抗菌剂,它通过靶向LptA/LptC相互作用来阻断LPS的转运。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b46a/9598311/ef7be36273f4/antibiotics-11-01385-g001.jpg

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