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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Role of the amino acid sequence in domain swapping of the B1 domain of protein G.
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Role of the amino acid sequence in domain swapping of the B1 domain of protein G.

机译:氨基酸序列在蛋白G B1结构域的结构域交换中的作用。

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摘要

Substitution of four amino acid residues (L5V,F30V, Y33F,A34F) in the B1 domain of the immunoglobulin G binding protein (GB1) leads to the formation of a swapped dimer, shown to be in equilibrium with a native-like monomeric state of the protein (Byeon et al., J Mol Biol 2003;333:141-152). In this study, we employ protein design calculations and molecular dynamics simulations to investigate the role of these substitutions in fostering the swapping reaction. DESIGNER, a fully automatic procedure for computing the amino acid sequences likely to stabilize a given backbone structure is used to investigate the effect of the four substitutions on the stability of the wild type native monomeric conformation. Results indicate that at least three of these substitutions (L5V,F30V, A34F) have a destabilizing effect. The L5V forms destabilizing interactions with surrounding residues, whereas F30V causes local strain due to unfavorable interactions with its own backbone. A dual role in the swapping reaction is played by A34F. It destabilizes the monomer conformation while stabilizing the swapped dimer. Our calculations find an energetically favorable conformation for the 34F side chain in the core of the monomer, but only at the expense of forcing the wild type W43 side chain into a highly strained rotamer, and forming unfavorable interactions with both W43 and V54. Although detailed calculations could not be performed on the swapped dimer, due to the lower accuracy of the model, analysis revealed that the 34F side chain from both subunits are tightly packed against each other in the dimer core, suggesting that their replacement by the smaller Ala, as in the wild type, would be highly destabilizing through the creation of a large internal cavity possibly accompanied by a substantial conformational change. Analysis of room temperature molecular dynamics (MD) simulations of the wild type and the modeled quadruple mutant structures reveals that the latter structure fluctuates more than its wild type counterpart. In addition, its C-terminal beta-hairpin, which is exchanged in the swapping reaction, undergoes a conformation change, which pushes it further away from the remainder of the protein. Simulations at higher temperature (450 K) show that the quadruple mutant unfolds earlier and more completely than the wild type following a sequence of events that is compatible with the description of the highly fluctuating monomeric state of this mutant observed by NMR. Our findings thus support the notion that domain swapping in GB1 is fostered by three main factors: a decrease in stability and increased flexibility of the monomer conformation, concomitant with stabilization of the swapped dimer conformation through new interactions that have no counterparts in the monomer.
机译:免疫球蛋白G结合蛋白(GB1)的B1结构域中的四个氨基酸残基(L5V,F30V,Y33F,A34F)取代导致形成交换的二聚体,该二聚体与天然类似的单体状态处于平衡状态。蛋白(Byeon等,J Mol Biol 2003; 333:141-152)。在这项研究中,我们采用蛋白质设计计算和分子动力学模拟来研究这些取代在促进交换反应中的作用。 DESIGNER是一种用于计算可能稳定给定骨架结构的氨基酸序列的全自动程序,用于研究这四个取代对野生型天然单体构象稳定性的影响。结果表明这些取代中的至少三个(L5V,F30V,A34F)具有去稳定作用。 L5V与周围残基形成不稳定的相互作用,而F30V由于与其自身骨架的不利相互作用而引起局部应变。 A34F在交换反应中起着双重作用。它使单体构象不稳定,同时使交换的二聚体稳定。我们的计算发现了在单体核心中34F侧链在能量上有利的构象,但仅以迫使野生型W43侧链成为高度拉紧的旋转异构体,并与W43和V54形成不利的相互作用为代价。尽管无法对交换后的二聚体进行详细计算,但由于模型的准确性较低,分析显示,两个亚基的34F侧链在二聚体核中彼此紧密堆积,表明它们被较小的Ala取代像野生型一样,通过形成大的内部空腔可能会带来极大的不稳定,该内部空腔可能伴随着实质的构象变化。对野生型和建模的四重突变体结构的室温分子动力学(MD)模拟的分析表明,后者的结构波动大于野生型对应物。另外,在交换反应中被交换的其C端β-发夹结构发生构象变化,这使其进一步远离蛋白质的其余部分。在较高温度(450 K)下的模拟表明,在经历一系列与NMR观察到的高度波动的单体状态相符的事件之后,该四重突变体比野生型更早,更彻底地展开。因此,我们的发现支持以下观念,即GB1中的域交换是由三个主要因素促进的:单体构象的稳定性降低和灵活性增加,以及通过单体中没有对应物的新的相互作用使交换的二聚体构象稳定。

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