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Ligand-induced changes in the conformational stability and flexibility of glutamate dehydrogenase and their role in catalysis and regulation

机译:配体诱导的谷氨酸脱氢酶构象稳定性和柔性的变化及其在催化和调节中的作用

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摘要

Bovine glutamate dehydrogenase (GDH) is allosterically regulated and requires substrate-induced subunit interactions for maximum catalytic activity. Steady-state and presteady-state kinetics indicate that the rate-limiting step depends on the nature of the substrate and are likely associated with conformational fluctuations necessary for optimal hydride transfer. Deuterated glutamate shows a steady-state isotope effect but no effect on the presteady-state burst rate, demonstrating that conformational effects are rate limiting for hydride transfer while product release is overall rate limiting for glutamate. Guanidine hydrochloride unfolding, heat inactivation, and differential scanning calorimetry demonstrate the effects of alternative substrates, glutamate and norvaline, on conformational stability. Glutamate has little effect on overall stability, whereas norvaline markedly stabilizes the protein. Limited proteolysis demonstrates that glutamate had a variety of effects on local flexibility, whereas norvaline significantly decreased conformational fluctuations that allow protease cleavage. Dynamic light scattering suggests that norvaline stabilizes all interfaces in the hexamer, whereas glutamate had little effect on trimer–trimer interactions. The substrate glutamate exhibits negative cooperativity and complex allosteric regulation but has only minor effects on global GDH stability, while promoting certain local conformational fluctuations. In contrast, the substrate norvaline does not show negative cooperativity or allow allosteric regulation. Instead, norvaline significantly stabilizes the enzyme and markedly slows or prevents local conformational fluctuations that are likely to be important for cooperative effects and to determine the overall rate of hydride transfer. This suggests that homotropic allosteric regulation by the enzymatic substrate involves changes in both global stability and local flexibility of the protein.
机译:牛谷氨酸脱氢酶(GDH)具有变构调节作用,需要底物诱导的亚基相互作用才能发挥最大的催化活性。稳态和稳态动力学表明,限速步骤取决于底物的性质,可能与最佳氢化物转移所需的构象波动有关。氘代谷氨酸盐显示稳态同位素效应,但对前稳态爆裂速率没有影响,表明构象效应是氢化物转移的速率限制,而产物释放是谷氨酸的总体速率限制。盐酸胍的展开,热灭活和差示扫描量热法证明了备选底物谷氨酸和去甲缬氨酸对构象稳定性的影响。谷氨酸对整体稳定性几乎没有影响,而去甲缬氨酸则显着稳定该蛋白质。有限的蛋白水解作用表明,谷氨酸对局部柔韧性有多种影响,而正缬氨酸则显着降低了构象波动,从而允许蛋白酶裂解。动态光散射表明,正缬氨酸可稳定六聚体中的所有界面,而谷氨酸对三聚体-三聚体的相互作用几乎没有影响。底物谷氨酸盐显示负的协同作用和复杂的变构调节,但对整体GDH稳定性只有很小的影响,同时促进了某些局部构象波动。相反,底物正缬氨酸没有显示负的协同作用或允许变构调节。相反,正缬氨酸可显着稳定酶并显着减慢或防止局部构象波动,这可能对协同作用和确定氢化物转移的总体速率很重要。这表明酶底物的同构变构调节涉及蛋白质整体稳定性和局部柔性的变化。

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