Suppr超能文献

Na⁺-葡萄糖通过兔肠道SGLT1蛋白共转运的动力学机制。

Kinetic mechanism of Na+ -glucose cotransport through the rabbit intestinal SGLT1 protein.

作者信息

Berteloot A

机构信息

Groupe de Recherche en Transport Membranaire, Département de Physiologie, Faculté de Médecine, Université de Montréal, CP 6128, Succursale Centre-Ville, Montréal, Quebec H3C 3J7, Canada.

出版信息

J Membr Biol. 2003 Mar 15;192(2):89-100. doi: 10.1007/s00232-002-1066-9.

Abstract

No consensus has yet been reached regarding the order of substrate addition to the high-affinity Na+ -D-glucose cotransporter (SGLT1). This problem was addressed by computer-assisted derivation of the steady-state velocity equations characterizing the eight-state Na+:Na+:substrate (NNS) and Na+:substrate:Na+ (NSN) mechanisms of cotransport. A notable difference was found in their denominator expressions and used to device a new strategy aimed at model discrimination in which the initial rate data are recorded at fixed S and analyzed relative to the N dependence of transport using a Hill equation. According to this protocol, the values of the Hill coefficient (n(H)) should be finite at all S (1.0 < n(H) < or =2.0) or decrease down to a limit value of 1.0 at high S in the case of the NNS and NSN models, respectively. These key experiments were performed in rabbit intestinal brush border membrane vesicles and demonstrated that a Hill equation with n(H) = 2.0 best describes the steady-state kinetics of Na+ -glucose cotransport at all S. We therefore propose a kinetic mechanism whereby Na+ binding should occur with very strong cooperativity within a rapid equilibrium segment of the transport cycle and be followed by a slow isomerization step before glucose addition.

摘要

关于向高亲和力钠-葡萄糖共转运体(SGLT1)添加底物的顺序,目前尚未达成共识。通过计算机辅助推导描述共转运的八态钠:钠:底物(NNS)和钠:底物:钠(NSN)机制的稳态速度方程,解决了这个问题。在它们的分母表达式中发现了一个显著差异,并用于设计一种新的模型判别策略,即在固定底物浓度(S)下记录初始速率数据,并使用希尔方程分析相对于转运对钠浓度(N)的依赖性。根据该方案,在NNS和NSN模型中,希尔系数(n(H))的值在所有底物浓度下都应为有限值(1.0 < n(H) ≤ 2.0),或者在高底物浓度下分别降至极限值1.0。这些关键实验在兔小肠刷状缘膜囊泡中进行,结果表明n(H) = 2.0的希尔方程最能描述所有底物浓度下钠-葡萄糖共转运的稳态动力学。因此,我们提出一种动力学机制,即钠的结合应在转运循环的快速平衡阶段以非常强的协同作用发生,然后在添加葡萄糖之前进行缓慢的异构化步骤。

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