首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular Dynamics Simulations of Heart-type Fatty Acid Binding Protein in Apo and Holo Forms, and Hydration Structure Analyses in the Binding Cavity
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Molecular Dynamics Simulations of Heart-type Fatty Acid Binding Protein in Apo and Holo Forms, and Hydration Structure Analyses in the Binding Cavity

机译:Apo和Holo形式的心脏型脂肪酸结合蛋白的分子动力学模拟以及结合腔中的水合结构分析

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摘要

Intracellular lipid binding proteins (iLBPs) share distinctive features: a rigid protein structure composed of a beta-barrel and an a-helix cap, and a large internalized water cluster. Although X-ray crystallographic studies have elucidated the three-dimensional structures of iLBPs, the protein dynamics and the role of the large water cluster in protein function remain unknown. In the present study, we performed molecular dynamics (MD) simulations on human heart-type fatty acid binding protein (FABP3), a typical iLBP that is highly expressed in heart and skeletal muscles, and showed that an altered mode of protein dynamics and rearrangement of the internal water cluster are key elements of ligand binding. Using simulations without a ligand at 310 K, we first demonstrated that FABP3 adopts a wide-open conformation, achieved by a combination of two modes of dynamics: portal opening by a domain motion of the a-helices and gap opening by cleavage of the hydrogen-bond network between beta D and beta E strands. In contrast, stearic acid-bound FABP3 mainly adopted a closed form, stabilized by the H-bond network inside the binding cavity, which latches the gap, and by proteinligand hydrophobic interactions. The wide-open apo FABP3 represents a biologically important conformation relevant to ligand loading.
机译:细胞内脂质结合蛋白(iLBP)具有独特的特征:由β-桶和a-螺旋帽组成的刚性蛋白质结构,以及较大的内在水簇。尽管X射线晶体学研究已经阐明了iLBP的三维结构,但蛋白质动力学和大水团簇在蛋白质功能中的作用仍然未知。在本研究中,我们对人心脏型脂肪酸结合蛋白(FABP3)(一种在心脏和骨骼肌中高度表达的典型iLBP)进行了分子动力学(MD)模拟,并显示了蛋白质动力学和重排模式的改变内部水簇的组成是配体结合的关键要素。使用在310 K时没有配体的模拟,我们首先证明FABP3采取了全开构象,这是通过两种动力学模式的组合来实现的:通过a螺旋的畴运动产生的门户开放和通过氢的裂解形成的缝隙开放βD和βE链之间的键网络。相比之下,硬脂酸结合的FABP3主要采用封闭形式,通过结合腔内部的H键网络来稳定间隙并通过蛋白质配体和疏水相互作用来稳定。敞开的载脂蛋白FABP3代表与配体装载有关的生物学重要构象。

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