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Mechanism and energy landscape of domain swapping in the B1 domain of protein G.

机译:蛋白G的B1结构域中结构域交换的机制和能量态势。

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摘要

Three-dimensional domain swapping has emerged as a ubiquitous process for homo-oligomer formation in many unrelated proteins, but the molecular mechanism of this process is still poorly understood. Here we present a mechanism for the swapping reaction in the B1 domain of the immunoglobulin G binding protein from group G of Streptococcus (GB1). This is a particularly attractive system for investigating the swapping process, as the swapped dimer formed by the quadruple mutant (L5V/F30V/Y33F/A34F) of GB1 was recently shown to exist in equilibrium with a monomer-like conformation over time scales of minutes. According to our mechanism, swapping in GB1 starts from the C-terminus of the polypeptide chain and progresses by exchanging an increasing portion of the chains until a stable conformational state is reached. This exchange process does not involve unfolding. Rather, the conformational changes of individual monomers and their association are tightly coupled to minimize solvent exposure and maximize the total number of native contacts at all times, thereby closely approximating the minimum energy path of the reaction. Using detailed atomic descriptions, we compute the complete free-energy profiles of the exchange reaction for the GB1 quadruple mutant that forms swapped dimers and for the wild-type protein, which is monomeric. In both GB1 forms, intermediates sample a surprisingly wide range of nearly isoenergetic association modes and hinge conformations, indicating that the exchange reaction is a non-specific process akin to encounter complex formation where the amino acid sequence plays a marginal role. The main role of the mutations in the swapping process is to destabilize the GB1 monomer state, while stabilizing the swapped dimer conformation, with non-native intersubunit interactions, fostered by mutant side chains, contributing significantly to this stabilization. Our findings are rationalized in terms of a generic swapping mechanism that involves the association of activated molecular species, and itis argued that a similar mechanism may apply to swapping in other protein systems.
机译:三维结构域交换已成为在许多无关蛋白中形成同源寡聚物的普遍过程,但对该过程的分子机制仍知之甚少。在这里,我们介绍了来自链球菌(GB1)G组的免疫球蛋白G结合蛋白的B1结构域中交换反应的机制。这是一个研究交换过程的特别吸引人的系统,因为最近证明了由GB1的四重突变体(L5V / F30V / Y33F / A34F)形成的交换二聚体在几分钟的时间范围内与单体样构象平衡存在。 。根据我们的机制,GB1中的交换从多肽链的C端开始,并通过交换链的增加部分进行直至达到稳定的构象状态,从而进行交换。此交换过程不涉及展开。而是,各个单体的构象变化及其缔合紧密耦合,以使溶剂暴露最小化,并始终使天然接触的总数最大化,从而紧密接近反应的最小能量路径。使用详细的原子描述,我们为形成交换的二聚体的GB1四重突变体和单体的野生型蛋白计算了交换反应的完整自由能谱。在这两种GB1形式中,中间体均采样了范围广泛的近等能量的缔合模式和铰链构象,这表明交换反应是一个非特异性过程,类似于遇到复杂形成的过程,其中氨基酸序列发挥着重要作用。突变在交换过程中的主要作用是稳定GB1单体状态,同时稳定交换的二聚体构象,并具有由突变侧链促进的非天然亚基间相互作用,从而大大促进了这种稳定。我们的发现在涉及交换的活化分子种类的通用交换机制方面是合理的,并且艾迪斯认为类似的机制可能适用于其他蛋白质系统中的交换。

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