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Molecular Origin of the Stability Difference in Four Shark IgNAR Constant Domains

机译:四个鲨鱼IgNAR恒定域中稳定性差异的分子起源

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摘要

Improving the stability of antibodies for manufacture and shelf life is one of the main focuses of antibody engineering. One stabilization strategy is to perform specific mutations in human antibodies based on highly stable antibodies in other species. To identify the key residues for mutagenesis, it is necessary to understand the roles of these residues in stabilizing the antibody. Here, we use molecular dynamics simulations to study the molecular origin of the four shark immunoglobulin new antigen receptors constant domains (C1–C4). According to the unfolding pathways and the conformational free energy surfaces in 8 M urea at 380 K, the C2 domain is the most stable, followed by C4, C1, and C3, which agrees with the experimental findings. The C1 and C3 domains follow a common unfolding pathway in which the unfolding starts from the edge strands, particularly strand , and then gradually progresses to the inner strands. Detailed structural analysis of the C2 domain reveals a “sandwich-like” R339-E322-R341 salt-bridge cluster on strand , which grants ultrahigh stability to the C2 domain. We further design two sets of mutations by mutating E322 to alanine or setting all atomic charges in E322 to zero to break the salt-bridge cluster in the C2 domain, which confirms the importance of the salt bridges in stability. In the C4 domain, the D80-K104 salt bridge on strand also strengthens the stability. On the other hand, in the C1 and C3 domains, there is no salt bridge on strand In addition to the salt bridges, the overall hydrophobicity score of the hydrophobic core is also positively correlated with the domain stability. Our findings provide a detailed microscopic picture of the molecular origin of the four shark immunoglobulin new antigen receptors constant domains that not only explains the differences in their structural stability but also provides important insights into future antibody design.
机译:改善抗体的生产稳定性和保质期是抗体工程的主要重点之一。一种稳定化策略是基于其他物种中高度稳定的抗体在人抗体中执行特定突变。为了鉴定诱变的关键残基,有必要了解这些残基在稳定抗体中的作用。在这里,我们使用分子动力学模拟研究了四个鲨鱼免疫球蛋白新抗原受体恒定域(C1-C4)的分子起源。根据380 K下8 M尿素的展开途径和构象自由能表面,C2域最稳定,其次是C4,C1和C3,与实验结果一致。 C1和C3结构域遵循共同的展开路径,其中展开从边缘链(尤其是链)开始,然后逐渐进行到内部链。对C2域的详细结构分析显示,在链上有一个“三明治”式R339-E322-R341盐桥簇,为C2域赋予了超高稳定性。我们通过将E322突变为丙氨酸或将E322中的所有原子电荷设置为零来破坏C2域中的盐桥簇,进一步设计了两组突变,这证实了盐桥在稳定性中的重要性。在C4域中,链上的D80-K104盐桥也增强了稳定性。另一方面,在C1和C3结构域中,链上没有盐桥。除了盐桥之外,疏水核心的总疏水性分数也与结构域稳定性成正相关。我们的发现为四个鲨鱼免疫球蛋白新抗原受体恒定域的分子起源提供了详细的微观图像,这不仅解释了其结构稳定性的差异,而且为将来的抗体设计提供了重要的见识。

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