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Crystal Structures and Kinetics of Monofunctional Proline Dehydrogenase Provide Insight into Substrate Recognition and Conformational Changes Associated With Flavin Reduction and Product Release

机译:单官能脯氨酸的晶体结构和动力学 脱氢酶提供对基质识别和基质的洞察 与黄素减少相关的构象变化 产品发布

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摘要

Proline dehydrogenase catalyzes the FAD-dependent oxidation of proline to Δ1- pyrroline-5- carboxylate, which is the first step of proline catabolism. Here, we report the structures of proline dehydrogenase from Deinococcus radiodurans in the oxidized state complexed with the proline analog L-tetrahydrofuroic acid and in the reduced state with the proline site vacant. The analog binds against the si face of the FAD isoalloxazine and is protected from bulk solvent by the α8 helix and the β1-α1 loop. The FAD ribityl chain adopts two conformations in the E-S complex, which is unprecedented for flavoenzymes. One of the conformations is novel for the PRODH superfamily and may contribute to the low substrate affinity of Deinococcus PRODH. Reduction of the crystalline enzyme-inhibitor complex causes profound structural changes, including 20° butterfly bending of the isoalloxazine, crankshaft rotation of the ribityl, shifting of α8 by 1.7 Å, reconfiguration of the β1-α1 loop, and rupture of the Arg291-Glu64 ion pair. These changes dramatically open the active site to facilitate product release and allow electron acceptors access to the reduced flavin. The structures suggest that the ion pair, which is conserved in the PRODH superfamily, functions as the active site gate. Mutagenesis of Glu64 to Ala decreases catalytic efficiency 27-fold, which demonstrates the importance of the gate. Mutation of Gly63 decreases efficiency 140-fold, which suggests that flexibility of the β1-α1 loop is essential for optimal catalysis. The large conformational changes that are required to form the E-S complex suggest that conformational selection plays a role in substrate recognition.
机译:脯氨酸脱氢酶催化FAD依赖的脯氨酸氧化为Δ1-吡咯啉-5-羧酸盐,这是脯氨酸分解代谢的第一步。在这里,我们报道了来自Deinococcus radiodurans脯氨酸脱氢酶的结构,该脯氨酸与脯氨酸类似物L-四氢糠酸复合处于氧化态,而脯氨酸位点空缺处于还原态。该类似物与FAD异恶嗪的表面结合,并通过α8螺旋和β1-α1环保护免受大量溶剂的侵害。 FAD核糖链在E-S复合物中采用两个构象,这对于黄素酶而言是前所未有的。该构象之一对于PRODH超家族而言是新颖的,并且可能有助于Deinococcus PRODH的低底物亲和力。结晶酶-抑制剂复合物的还原引起深刻的结构变化,包括异四恶嗪的20°蝶形弯曲,核仁的曲轴旋转,α8位移1.7Å,β1-α1环的重新构型以及Arg291-Glu64的断裂离子对。这些变化极大地打开了活性位点,促进了产品释放,并​​使电子受体能够接触到还原的黄素。结构表明,在PRODH超家族中保守的离子对起着活性位点的作用。 Glu64突变为Ala可使催化效率降低27倍,这证明了门的重要性。 Gly63的突变使效率降低了140倍,这表明β1-α1环的柔性对于最佳催化至关重要。形成E-S复合物所需的大构象变化表明构象选择在底物识别中起作用。

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