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Mechanistic and Structural Analysis of Aminoglycoside N-Acetyltransferase AAC(6′)-Ib and Its Bifunctional Fluoroquinolone-Active AAC(6′)-Ib-cr Variant

机译:氨基糖苷N-乙酰转移酶AAC(6)-Ib及其双功能氟喹诺酮活性AAC(6-Ib-cr变异体)的机理和结构分析

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摘要

Enzymatic modification of aminoglycoside antibiotics mediated by regioselective aminoglycoside N-acetyltransferases is the predominant cause of bacterial resistance to aminoglycosides. A recently discovered bifunctional aminoglycoside acetyltransferase (AAC(6′)-Ib variant, AAC(6′)-Ib-cr) has been shown to catalyze the acetylation of fluoroquinolones as well as aminoglycosides. We have expressed and purified AAC(6′)-Ib-wt and its bifunctional variant AAC(6′)-Ib-cr in Escherichia coli and characterized their kinetic and chemical mechanism. Initial velocity and dead-end inhibition studies support an ordered sequential mechanism for the enzyme(s). The three-dimensional structure of AAC(6′)-Ib-wt was determined in various complexes with donor and acceptor ligands to resolutions greater than 2.2 Å. Observation of the direct, and optimally positioned, interaction between the 6′-NH2 and Asp115 suggests that Asp115 acts as a general base to accept a proton in the reaction. The structure of AAC(6′)-Ib-wt permits the construction of a molecular model of the interactions of fluoroquinolones with the AAC(6′)-Ib-cr variant. The model suggests that a major contribution to the fluoroquinolone acetylation activity comes from the Asp179Tyr mutation, where Tyr179 makes π-stacking interactions with the quinolone ring facilitating quinolone binding. The model also suggests that fluoroquinolones and aminoglycosides have different binding modes. On the basis of kinetic properties, the pH dependence of the kinetic parameters, and structural information, we propose an acid/base-assisted reaction catalyzed by AAC(6′)-Ib-wt and the AAC(6′)-Ib-cr variant involving a ternary complex.
机译:区域选择性氨基糖苷N-乙酰基转移酶介导的氨基糖苷抗生素的酶促修饰是细菌对氨基糖苷类耐药的主要原因。最近发现的一种双功能氨基糖苷乙酰基转移酶(AAC(6')-Ib变体,AAC(6')-Ib-cr)可催化氟喹诺酮类药物以及氨基糖苷类的乙酰化。我们已经在大肠杆菌中表达和纯化了AAC(6')-Ib-wt及其双功能变体AAC(6')-Ib-cr,并表征了它们的动力学和化学机理。初始速度和死端抑制研究支持酶的有序顺序机制。 AAC(6')-Ib-wt的三维结构是在具有供体和受体配体的各种络合物中测定的,其拆分度大于2.2Å。观察到6'-NH2与Asp115之间直接的且位置最佳的相互作用,这表明Asp115充当了反应中接受质子的一般碱。 AAC(6')-Ib-wt的结构允许建立氟喹诺酮类与AAC(6')-Ib-cr变体相互作用的分子模型。该模型表明,对氟喹诺酮乙酰化活性的主要贡献来自于Asp179Tyr突变,其中Tyr179与喹诺酮环进行π堆积相互作用,从而促进了喹诺酮的结合。该模型还表明氟喹诺酮类和氨基糖苷类具有不同的结合模式。基于动力学特性,动力学参数对pH的依赖性以及结构信息,我们提出了AAC(6')-Ib-wt和AAC(6')-Ib-cr催化的酸/碱辅助反应涉及三元复合体的变体。

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