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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Effects of ligand binding on the dynamics of rice nonspecific lipid transfer protein 1: a model from molecular simulations.
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Effects of ligand binding on the dynamics of rice nonspecific lipid transfer protein 1: a model from molecular simulations.

机译:配体结合对水稻非特异性脂质转移蛋白1动力学的影响:分子模拟模型。

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Plant nonspecific lipid transfer proteins (nsLTPs) are small, basic proteins constituted mainly of alpha-helices and stabilized by four conserved disulfide bridges. They are characterized by the presence of a tunnel-like hydrophobic cavity, capable of transferring various lipid molecules between lipid bilayers in vitro. In this study, molecular dynamics (MD) simulations were performed at room temperature to investigate the effects of lipid binding on the dynamic properties of rice nsLTP1. Rice nsLTP1, either in the free form or complexed with one or two lipids was subjected to MD simulations. The C-terminal loop was very flexible both before and after lipid binding, as revealed by calculating the root-mean-square fluctuation. After lipid binding, the flexibility of some residues that were not in direct contact with lipid molecules increased significantly, indicating an increase of entropy in the region distal from the binding site. Essential dynamics analysis revealed clear differences in motion between unliganded and liganded rice nsLTP1s. In the free form of rice nsLTP1, loop1 exhibited the largest directional motion. This specific essential motion mode diminished after binding one or two lipid molecules. To verify the origin of the essential motion observed in the free form of rice nsLTP1, we performed multiple sequence alignments to probe the intrinsic motion encoded in the primary sequence. We found that the amino acid sequence of loop1 is highly conserved among plant nsLTP1s, thus revealing its functional importance during evolution. Furthermore, the sequence of loop1 is composed mainly of amino acids with short side chains. In this study, we show that MD simulations, together with essential dynamics analysis, can be used to determine structural and dynamic differences of rice nsLTP1 upon lipid binding.
机译:植物非特异性脂质转移蛋白(nsLTPs)是小的碱性蛋白,主要由α-螺旋组成,并由四个保守的二硫键稳定。它们的特征在于存在隧道状疏水腔,其能够在体外脂质双层之间转移各种脂质分子。在这项研究中,在室温下进行了分子动力学(MD)模拟,以研究脂质结合对水稻nsLTP1动力学特性的影响。将游离形式或与一种或两种脂质复合的水稻nsLTP1进行MD模拟。通过计算均方根波动可以看出,C端环在脂质结合之前和之后都非常灵活。脂质结合后,一些未与脂质分子直接接触的残基的柔韧性显着提高,表明远离结合位点的区域的熵增加。基本动力学分析显示,未配体和配体水稻nsLTP1s在运动上存在明显差异。在游离形式的水稻nsLTP1中,loop1表现出最大的方向运动。结合一个或两个脂质分子后,这种特定的基本运动模式减弱。为了验证以游离形式的水稻nsLTP1观察到的基本运动的起源,我们进行了多个序列比对,以探查编码在主要序列中的内在运动。我们发现loop1的氨基酸序列在植物nsLTP1s中高度保守,从而揭示了其在进化过程中的功能重要性。此外,loop1的序列主要由具有短侧链的氨基酸组成。在这项研究中,我们表明MD模拟以及必要的动力学分析可用于确定脂质结合后nsLTP1的结构和动力学差异。

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