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Structures of the PutA peripheral membrane flavoenzyme reveal a dynamic substrate-channeling tunnel and the quinone-binding site

机译:puta外周膜的结构 flavoenzyme揭示了一种动态的底物通道 隧道和醌结合位点

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摘要

Proline utilization A (PutA) proteins are bifunctional peripheral membrane flavoenzymes that catalyze the oxidation of L-proline to L-glutamate by the sequential activities of proline dehydrogenase and aldehyde dehydrogenase domains. Located at the inner membrane of Gram-negative bacteria, PutAs play a major role in energy metabolism by coupling the oxidation of proline imported from the environment to the reduction of membrane-associated quinones. Here, we report seven crystal structures of the 1,004- residue PutA from Geobacter sulfurreducens, along with determination of the protein oligomeric state by small-angle X-ray scattering and kinetic characterization of substrate channeling and quinone reduction. The structures reveal an elaborate and dynamic tunnel system featuring a 75-Å-long tunnel that links the two active sites and six smaller tunnels that connect the main tunnel to the bulk medium. The locations of these tunnels and their responses to ligand binding and flavin reduction suggest hypotheses about how proline, water, and quinones enter the tunnel system and where L-glutamate exits. Kinetic measurements show that glutamate production from proline occurs without a lag phase, consistent with substrate channeling and implying that the observed tunnel is functionally relevant. Furthermore, the structure of reduced PutA complexed with menadione bisulfite reveals the elusive quinone-binding site. The benzoquinone binds within 4.0 Å of the flavin si face, consistent with direct electron transfer. The location of the quinone site implies that the concave surface of the PutA dimer approaches the membrane. Altogether, these results provide insight into how PutAs couple proline oxidation to quinone reduction.
机译:脯氨酸利用A(PutA)蛋白是双功能的外周膜黄素酶,通过脯氨酸脱氢酶和醛脱氢酶域的顺序活性,催化L-脯氨酸氧化为L-谷氨酸。 PutAs位于革兰氏阴性细菌的内膜上,它通过将从环境中导入的脯氨酸的氧化与膜相关醌的还原偶联来在能量代谢中发挥重要作用。在这里,我们报告了来自Geobacter sulphreducens的1,004-残基PutA的七个晶体结构,以及通过小角度X射线散射和底物通道化和醌还原的动力学表征确定了蛋白质的低聚状态。这些结构揭示了一个精致而动态的隧道系统,其特征是长75的隧道将两个活动站点连接起来,而六个较小的隧道则将主隧道与散装介质连接起来。这些通道的位置及其对配体结合和黄素还原的反应提出了有关脯氨酸,水和醌如何进入通道系统以及L-谷氨酸从何处退出的假说。动力学测量表明脯氨酸的谷氨酸生产没有滞后阶段,这与底物通道一致并且暗示所观察到的通道在功能上是相关的。此外,还原的PutA与甲萘醌亚硫酸氢盐复合的结构揭示了难以捉摸的醌结合位点。苯醌在黄素表面的4.0Å范围内结合,与直接电子转移一致。醌位点的位置意味着PutA二聚体的凹面接近膜。总而言之,这些结果提供了对PutAs如何将脯氨酸氧化与醌还原结合的见解。

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