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The Molecular Mechanism of Domain Swapping of the C-Terminal Domain of the SARS-Coronavirus Main Protease

机译:SARS-CORONAVIRUS主蛋白酶的C末端结构域的结构域交换的分子机制

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摘要

In three-dimensional domain swapping, two protein monomers exchange a part of their structures to form an intertwined homodimer, whose subunits resemble the monomer. Several viral proteins domain swap to increase their structural complexity or functional avidity. The main protease (Mpro) of the severe acute respiratory syndrome (SARS) coronavirus proteolyzes viral polyproteins and has been a target for anti-SARS drug design. Domain swapping in the α-helical C-terminal domain of Mpro (MproC) locks Mpro into a hyperactive octameric form that is hypothesized to promote the early stages of viral replication. However, in the absence of a complete molecular understanding of the mechanism of domain swapping, investigations into the biological relevance of this octameric Mpro have stalled. Isolated MproC can exist as a monomer or a domain-swapped dimer. Here, we investigate the mechanism of domain swapping of MproC using coarse-grained structure-based models and molecular dynamics simulations. Our simulations recapitulate several experimental features of MproC folding. Further, we find that a contact between a tryptophan in the MproC domain-swapping hinge and an arginine elsewhere forms early during folding, modulates the folding route, and promotes domain swapping to the native structure. An examination of the sequence and the structure of the tryptophan containing hinge loop shows that it has a propensity to form multiple secondary structures and contacts, indicating that it could be stabilized into either the monomer- or dimer-promoting conformations by mutations or ligand binding. Finally, because all residues in the tryptophan loop are identical in SARS-CoV and SARS-CoV-2, mutations that modulate domain swapping may provide insights into the role of octameric Mpro in the early-stage viral replication of both viruses.
机译:在三维结构域交换中,两种蛋白质单体交换其结构的一部分以形成杂交的同型二聚体,其亚基类似于单体。几种病毒蛋白畴互换以增加其结构复杂性或功能性亲经。严重急性呼吸综合征(SARS)冠状病毒蛋白水解病毒多蛋白的主要蛋白酶(MPRO),是抗SARS药物设计的靶标。 MPRO(MPROC)α-Helical C末端结构域的域交换锁定MPRO成具有假设以促进病毒复制的早期阶段的多活性八大半导体形式。然而,在没有对结构域交换机制的完全分子理解的情况下,对该八大体MPRO的生物学相关性进行了停滞。孤立的MPROC可以作为单体或畴换二聚体存在。在这里,我们研究MPROC使用基于粗粒结构的模型和分子动力学模拟的域交换的机制。我们的仿真重新提出了MPROC折叠的几个实验特征。此外,我们发现MPROC域交换铰链中的色氨酸与其他地方的精氨酸之间的接触在折叠期间,调制折叠路线,并促使域交换到天然结构。对含量铰链环的序列和结构的检查表明,它具有形成多个二级结构和触点的倾向,表明它可以通过突变或配体结合稳定成单体或二聚体促进构象。最后,因为色氨酸环路中的所有残留量在SARS-COV和SARS-COV-2中相同,所以调节域交换的突变可以在两种病毒的早期病毒复制中提供八倍体MPRO的角色。

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