HHQ生物合成的分子基础:分子动力学模拟、酶动力学和表面等离子体共振研究。

Q1 Biochemistry, Genetics and Molecular Biology BMC Biophysics Pub Date : 2013-08-01 DOI:10.1186/2046-1682-6-10
Anke Steinbach, Christine K Maurer, Elisabeth Weidel, Claudia Henn, Christian Brengel, Rolf W Hartmann, Matthias Negri
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引用次数: 10

摘要

背景:PQS (PseudomonasQuinolone Signal)及其前体HHQ是铜绿假单胞菌群体感应系统的信号分子。它们通过与诱导毒力因子产生和生物膜形成的受体PqsR结合,阐明了它们在哺乳动物致病性中的作用。酶PqsD催化HHQ的生物合成。结果:酶动力学分析和表面等离子体共振(SPR)生物传感器实验确定了生物合成的机制和底物顺序。通过比较分析,确定了与PqsD功能相关的结构域。建立了一个动力学循环,并用分子动力学(MD)模拟研究了PqsD动力学的分子基础。轨迹分析、口袋体积测量、结合能估计和分解确保了对底物蒽酰辅酶a和β-酮癸酸的结合模式的深入了解。结论:酶动力学和SPR实验提示以ACoA为第一底物的PqsD的乒乓机制。不同PqsD复合物的轨迹分析证明了配体依赖的诱导配合运动影响了修饰的ACoA漏斗进入二级通道的暴露。形成一个隧道网络,其中Ser317通过结合两种底物发挥重要作用。导致S317F突变体失活的诱变实验证实了该残基的重要性。确定了β-酮癸酸的两种结合模式,具有不同的催化机制偏好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Molecular basis of HHQ biosynthesis: molecular dynamics simulations, enzyme kinetic and surface plasmon resonance studies.

Background: PQS (PseudomonasQuinolone Signal) and its precursor HHQ are signal molecules of the P. aeruginosa quorum sensing system. They explicate their role in mammalian pathogenicity by binding to the receptor PqsR that induces virulence factor production and biofilm formation. The enzyme PqsD catalyses the biosynthesis of HHQ.

Results: Enzyme kinetic analysis and surface plasmon resonance (SPR) biosensor experiments were used to determine mechanism and substrate order of the biosynthesis. Comparative analysis led to the identification of domains involved in functionality of PqsD. A kinetic cycle was set up and molecular dynamics (MD) simulations were used to study the molecular bases of the kinetics of PqsD. Trajectory analysis, pocket volume measurements, binding energy estimations and decompositions ensured insights into the binding mode of the substrates anthraniloyl-CoA and β-ketodecanoic acid.

Conclusions: Enzyme kinetics and SPR experiments hint at a ping-pong mechanism for PqsD with ACoA as first substrate. Trajectory analysis of different PqsD complexes evidenced ligand-dependent induced-fit motions affecting the modified ACoA funnel access to the exposure of a secondary channel. A tunnel-network is formed in which Ser317 plays an important role by binding to both substrates. Mutagenesis experiments resulting in the inactive S317F mutant confirmed the importance of this residue. Two binding modes for β-ketodecanoic acid were identified with distinct catalytic mechanism preferences.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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