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人回肠胆汁酸结合蛋白功能障碍突变的多时间尺度动态分析。

Multiple Timescale Dynamic Analysis of Functionally-Impairing Mutations in Human Ileal Bile Acid-Binding Protein.

机构信息

NMR Research Laboratory, Centre for Structural Science, Research Centre for Natural Sciences, 2 Magyar Tudósok Körútja, H-1117 Budapest, Hungary.

ELTE NAP Neuroimmunology Research Group, Department of Biochemistry, Institute of Biology, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/C, H-1117 Budapest, Hungary.

出版信息

Int J Mol Sci. 2022 Sep 26;23(19):11346. doi: 10.3390/ijms231911346.

Abstract

Human ileal bile acid-binding protein (hI-BABP) has a key role in the enterohepatic circulation of bile salts. Its two internal binding sites exhibit positive cooperativity accompanied by a site-selectivity of glycocholate (GCA) and glycochenodeoxycholate (GCDA), the two most abundant bile salts in humans. To improve our understanding of the role of dynamics in ligand binding, we introduced functionally impairing single-residue mutations at two key regions of the protein and subjected the mutants to NMR relaxation analysis and MD simulations. According to our results, mutation in both the vicinity of the C/D (Q51A) and the G/H (Q99A) turns results in a redistribution of motional freedom in hI-BABP. Mutation Q51A, deteriorating the site-selectivity of GCA and GCDA, results in the channeling of ms fluctuations into faster motions in the binding pocket hampering the realization of key side chain interactions. Mutation Q99A, abolishing positive binding cooperativity for GCDA, leaves ms motions in the C-terminal half unchanged but by decoupling D from a dynamic cluster of the N-terminal half displays an increased flexibility in the vicinity of site 1. MD simulations of the variants indicate structural differences in the portal region and mutation-induced changes in dynamics, which depend on the protonation state of histidines. A dynamic coupling between the EFGH portal, the C/D-region, and the helical cap is evidenced highlighting the interplay of structural and dynamic effects in bile salt recognition in hI-BABP.

摘要

人肠碱性胆汁酸结合蛋白(hI-BABP)在胆汁盐的肠肝循环中起着关键作用。其两个内部结合位点表现出正协同性,并伴有甘氨胆酸(GCA)和甘氨鹅脱氧胆酸(GCDA)的位点选择性,这两种胆汁盐是人体内最丰富的两种。为了更好地理解动力学在配体结合中的作用,我们在蛋白质的两个关键区域引入了功能上有缺陷的单残基突变,并对突变体进行了 NMR 弛豫分析和 MD 模拟。根据我们的结果,在 C/D(Q51A)和 G/H(Q99A)附近的突变导致 hI-BABP 中运动自由度的重新分布。突变 Q51A 恶化了 GCA 和 GCDA 的位点选择性,导致 ms 波动进入结合口袋中的更快运动,从而阻碍了关键侧链相互作用的实现。突变 Q99A 消除了 GCDA 的正结合协同性,使 C 末端一半的 ms 运动保持不变,但通过将 D 与 N 末端一半的动态簇解耦,在 1 号位点附近显示出更大的灵活性。变体的 MD 模拟表明在门户区域存在结构差异和突变诱导的动力学变化,这取决于组氨酸的质子化状态。EFGH 门户、C/D 区域和螺旋盖之间的动态耦合得到了证明,突出了结构和动力学效应对 hI-BABP 中胆汁盐识别的相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01a1/9569817/9a9fb5d057a5/ijms-23-11346-g001.jpg

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