College of Science and Engineering, Flinders University, Bedford Park, SA 5042, Australia.
J Antimicrob Chemother. 2023 Jun 1;78(6):1522-1531. doi: 10.1093/jac/dkad121.
To elucidate the importance of a region in QacA predicted to be important in antimicrobial substrate recognition.
A total of 38 amino acid residues within or flanking putative transmembrane helix segment (TMS) 12 of QacA were individually replaced with cysteine using site-directed mutagenesis. The impact of these mutations on protein expression, drug resistance, transport activity and interaction with sulphhydryl-binding compounds was determined.
Accessibility analysis of cysteine-substituted mutants identified the extents of TMS 12, which allowed for refinement of the QacA topology model. Mutation of Gly-361, Gly-379 and Ser-387 in QacA resulted in reduced resistance to at least one bivalent substrate. Interaction with sulphhydryl-binding compounds in efflux and binding assays demonstrated the role of Gly-361 and Ser-387 in the binding and transport pathway of specific substrates. The highly conserved residue Gly-379 was found to be important for the transport of bivalent substrates, commensurate with the role of glycine residues in helical flexibility and interhelical interactions.
TMS 12 and its external flanking loop is required for the structural and functional integrity of QacA and contains amino acids directly involved in the interaction with substrates.
阐明预测对抗菌底物识别很重要的 QacA 中一个区域的重要性。
使用定点突变技术,将 QacA 中或其侧翼的假定跨膜螺旋段(TMS)12 内的 38 个氨基酸残基分别突变为半胱氨酸。这些突变对蛋白质表达、耐药性、转运活性以及与巯基结合化合物相互作用的影响。
半胱氨酸取代突变体的可及性分析确定了 TMS 12 的范围,从而改进了 QacA 拓扑模型。QacA 中甘氨酸-361、甘氨酸-379 和丝氨酸-387 的突变导致至少一种二价底物的耐药性降低。在流出和结合测定中与巯基结合化合物的相互作用表明甘氨酸-361 和丝氨酸-387 在特定底物的结合和转运途径中起作用。高度保守的残基甘氨酸-379 被发现对二价底物的转运很重要,这与甘氨酸残基在螺旋灵活性和螺旋间相互作用中的作用一致。
TMS 12 及其外部侧翼环是 QacA 结构和功能完整性所必需的,包含直接参与与底物相互作用的氨基酸。