Suppr超能文献

C8-辅酶A中α-CH→NH取代对配体与中链酰基辅酶A脱氢酶结合和解离动力学的影响。

Influence of alpha-CH-->NH substitution in C8-CoA on the kinetics of association and dissociation of ligands with medium chain acyl-CoA dehydrogenase.

作者信息

Peterson K M, Gopalan K V, Srivastava D K

机构信息

Department of Biochemistry and Molecular Biology, North Dakota State University, Fargo, North Dakota 58105, USA.

出版信息

Biochemistry. 2000 Oct 17;39(41):12659-70. doi: 10.1021/bi000733w.

Abstract

We previously reported that the kinetic profiles for the association and dissociation of functionally diverse C(8)-CoA-ligands, viz., octanoyl-CoA (substrate), octenoyl-CoA (product), and octynoyl-CoA (inactivator) with medium chain acyl-CoA dehydrogenase (MCAD), were essentially identical, suggesting that the protein conformational changes played an essential role during ligand binding and/or catalysis [Peterson, K. L., Sergienko, E. E., Wu, Y., Kumar, N. R., Strauss, A. W., Oleson, A. E., Muhonen, W. W., Shabb, J. B., and Srivastava, D. K. (1995) Biochemisry 34, 14942-14953]. To ascertain the structural basis of the above similarity, we investigated the kinetics of association and dissociation of alpha-CH-->NH-substituted C(8)-CoA, namely, 2-azaoctanoyl-CoA, with the recombinant form of human liver MCAD. The rapid-scanning and single wavelength stopped-flow data for the binding of 2-azaoctanoyl-CoA to MCAD revealed that the overall interaction proceeds via two steps. The first (fast) step involves the formation of an enzyme-ligand collision complex (with a dissociation constant of K(c)), followed by a slow isomerization step (with forward and reverse rate constants of k(f) and k(r), respectively) with concomitant changes in the electronic structure of the enzyme-bound FAD. Since the latter step involves a concurrent change in the enzyme's tryptophan fluorescence, it is suggested that the isomerization step is coupled to the changes in the protein conformation. Although the overall binding affinity (K(d)) of the enzyme-2-azaoctanoyl-CoA complex is similar to that of the enzyme-octenoyl-CoA complex, their microscopic equilibria within the collision and isomerized complexes show an opposite relationship. These results coupled with the isothermal titration microcalorimetric studies lead to the suggestion that the electrostatic interaction within the enzyme site phase modulates the microscopic steps, as well as their corresponding ground and transition states, during the course of the enzyme-ligand interaction.

摘要

我们之前报道过,功能多样的C(8)-辅酶A配体,即辛酰辅酶A(底物)、辛烯酰辅酶A(产物)和辛炔酰辅酶A(失活剂)与中链酰基辅酶A脱氢酶(MCAD)的缔合和解离动力学曲线基本相同,这表明蛋白质构象变化在配体结合和/或催化过程中起重要作用[彼得森,K.L.,塞尔吉延科,E.E.,吴,Y.,库马尔,N.R.,施特劳斯,A.W.,奥莱森,A.E.,穆霍宁,W.W.,沙布,J.B.,和斯里瓦斯塔瓦,D.K.(1995年)《生物化学》34卷,14942 - 14953页]。为了确定上述相似性的结构基础,我们研究了α-CH→NH取代的C(8)-辅酶A,即2-氮杂辛酰辅酶A与重组形式的人肝脏MCAD的缔合和解离动力学。2-氮杂辛酰辅酶A与MCAD结合的快速扫描和单波长停流数据表明,整体相互作用通过两个步骤进行。第一步(快速)涉及形成酶-配体碰撞复合物(解离常数为K(c)),随后是一个缓慢的异构化步骤(正向和反向速率常数分别为k(f)和k(r)),同时酶结合的黄素腺嘌呤二核苷酸(FAD)的电子结构发生变化。由于后一步涉及酶的色氨酸荧光的同时变化,因此表明异构化步骤与蛋白质构象的变化相关联。尽管酶-2-氮杂辛酰辅酶A复合物的整体结合亲和力(K(d))与酶-辛烯酰辅酶A复合物的相似,但它们在碰撞和异构化复合物中的微观平衡呈现相反的关系。这些结果与等温滴定量热研究相结合,表明酶位点相内的静电相互作用在酶-配体相互作用过程中调节微观步骤及其相应的基态和过渡态。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验