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活细菌中的Förster 共振能量转移测量用于 BamA 与 BamD 的相互作用研究和抑制剂鉴定。

Förster Resonance Energy Transfer Measurements in Living Bacteria for Interaction Studies of BamA with BamD and Inhibitor Identification.

机构信息

University of Münster, Institute of Pharmaceutical and Medicinal Chemistry, Pharmacampus, 48149 Münster, Germany.

出版信息

Cells. 2024 Nov 8;13(22):1858. doi: 10.3390/cells13221858.

Abstract

The β-barrel assembly machinery (BAM) is a multimeric protein complex responsible for the folding of outer membrane proteins in gram-negative bacteria. It is essential for cell survival and outer membrane integrity. Therefore, it is of impact in the context of antibiotic resistance and can serve as a target for the development of new antibiotics. The interaction between two of its subunits, BamA and BamD, is essential for its function. Here, a FRET-based assay to quantify the affinity between these two proteins in living bacterial cells is presented. The method was applied to identify two interaction hotspots at the binding interface. BamD was identified to significantly contribute to the binding between both proteins through hydrophobic interactions and hydrogen bonding. Additionally, two salt bridges formed between BamD, BamD, and BamA contributed substantially to the binding of BamA to BamD as well. Two peptides (RFIRLN and VAEYYTER) that mimic the amino acid sequence of BamD around the identified hotspots were shown to inhibit the interaction between BamA and BamD in a dose-dependent manner in the upper micromolar range. These two peptides can potentially act as antibiotic enhancers. This shows that the BamA-BamD interaction site can be addressed for the design of protein-protein interaction inhibitors. Additionally, the method, as presented in this study, can be used for further functional studies on interactions within the BAM complex.

摘要

β-桶状膜装配机器(BAM)是一种负责折叠革兰氏阴性菌外膜蛋白的多亚基蛋白复合物。它对细胞存活和外膜完整性至关重要。因此,它在抗生素耐药性方面具有重要意义,并可以作为开发新抗生素的靶标。其两个亚基 BamA 和 BamD 之间的相互作用对于其功能至关重要。在这里,提出了一种基于 FRET 的测定法,用于在活细菌细胞中定量测定这两种蛋白质之间的亲和力。该方法用于鉴定结合界面上的两个相互作用热点。BamD 通过疏水相互作用和氢键显著有助于两种蛋白质之间的结合。此外,BamD 之间形成的两个盐桥以及 BamA 与 BamD 之间形成的两个盐桥,对 BamA 与 BamD 的结合也有很大贡献。两个模拟 BamD 周围鉴定出的热点的氨基酸序列的肽(RFIRLN 和 VAEYYTER)以剂量依赖性方式在微摩尔范围内显示出抑制 BamA 和 BamD 之间相互作用的能力。这两种肽可能具有作为抗生素增强剂的潜力。这表明可以针对 BamA-BamD 相互作用位点设计蛋白质-蛋白质相互作用抑制剂。此外,本研究中提出的方法可用于 BAM 复合物内相互作用的进一步功能研究。

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