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A Spring-loaded Release Mechanism Regulates Domain Movement and Catalysis in Phosphoglycerate Kinase*

机译:弹簧加载释放机制调节磷酸甘油酸激酶中的域移动和催化*

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摘要

Phosphoglycerate kinase (PGK) is the enzyme responsible for the first ATP-generating step of glycolysis and has been implicated extensively in oncogenesis and its development. Solution small angle x-ray scattering (SAXS) data, in combination with crystal structures of the enzyme in complex with substrate and product analogues, reveal a new conformation for the resting state of the enzyme and demonstrate the role of substrate binding in the preparation of the enzyme for domain closure. Comparison of the x-ray scattering curves of the enzyme in different states with crystal structures has allowed the complete reaction cycle to be resolved both structurally and temporally. The enzyme appears to spend most of its time in a fully open conformation with short periods of closure and catalysis, thereby allowing the rapid diffusion of substrates and products in and out of the binding sites. Analysis of the open apoenzyme structure, defined through deformable elastic network refinement against the SAXS data, suggests that interactions in a mostly buried hydrophobic region may favor the open conformation. This patch is exposed on domain closure, making the open conformation more thermodynamically stable. Ionic interactions act to maintain the closed conformation to allow catalysis. The short time PGK spends in the closed conformation and its strong tendency to rest in an open conformation imply a spring-loaded release mechanism to regulate domain movement, catalysis, and efficient product release.
机译:磷酸甘油酸激酶(PGK)是负责糖酵解的第一个ATP产生步骤的酶,并且已广泛参与肿瘤发生及其发展。溶液小角度X射线散射(SAXS)数据,结合酶的晶体结构与底物和产物类似物形成复合物,揭示了酶的静止状态的新构象,并证明了底物结合在酶的制备中的作用。域封闭酶。通过比较酶在不同状态下的X射线散射曲线与晶体结构,可以在结构上和时间上解析完整的反应周期。该酶大部分时间都处于完全开放的构象中,并具有短时间的封闭和催化作用,从而使底物和产物迅速扩散入结合位点和从结合位点迅速扩散出来。通过对SAXS数据通过可变形的弹性网络细化定义的开放性脱辅酶结构分析表明,在大部分被掩埋的疏水区域中的相互作用可能有利于开放性构象。该补丁在域闭合时暴露,从而使开放构象在热力学上更稳定。离子相互作用起到维持封闭构象的作用,从而可以催化。 PGK短时间停留在闭合构象中,其强烈倾向停留在开放构象中,这意味着弹簧加载的释放机制可调节区域移动,催化和有效的产物释放。

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