首页> 外文期刊>Proteins: Structure, Function, and Genetics >Multi-constraint computational design suggests that native sequences of germline antibody H3 loops are nearly optimal for conformational flexibility.
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Multi-constraint computational design suggests that native sequences of germline antibody H3 loops are nearly optimal for conformational flexibility.

机译:多约束计算设计表明,种系抗体H3环的天然序列对于构象灵活性几乎是最佳的。

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摘要

The limited size of the germline antibody repertoire has to recognize a far larger number of potential antigens. The ability of a single antibody to bind multiple ligands due to conformational flexibility in the antigen-binding site can significantly enlarge the repertoire. Among the six complementarity determining regions (CDRs) that generally comprise the binding site, the CDR H3 loop is particularly variable. Computational protein design studies showed that predicted low energy sequences compatible with a given backbone structure often have considerable similarity to the corresponding native sequences of naturally occurring proteins, indicating that native protein sequences are close to optimal for their structures. Here, we take a step forward to determine whether conformational flexibility, believed to play a key functional role in germline antibodies, is also central in shaping their native sequence. In particular, we use a multi-constraint computational design strategy, along with the Rosetta scoring function, to propose that the native sequences of CDR H3 loops from germline antibodies are nearly optimal for conformational flexibility. Moreover, we find that antibody maturation may lead to sequences with a higher degree of optimization for a single conformation, while disfavoring sequences that are intrinsically flexible. In addition, this computational strategy allows us to predict mutations in the CDR H3 loop to stabilize the antigen-bound conformation, a computational mimic of affinity maturation, that may increase antigen binding affinity by preorganizing the antigen binding loop. In vivo affinity maturation data are consistent with our predictions. The method described here can be useful to design antibodies with higher selectivity and affinity by reducing conformational diversity.
机译:种系抗体库的有限大小必须识别出大量潜在抗原。由于抗原结合位点的构象柔性,单个抗体结合多个配体的能力可以显着扩大库。在通常包含结合位点的六个互补决定区(CDR)中,CDR H3环尤其可变。计算蛋白质设计研究表明,与给定骨架结构兼容的预测低能序列通常与天然存在的蛋白质的相应天然序列具有相当大的相似性,这表明天然蛋白质序列对其结构而言接近最佳状态。在这里,我们向前迈出了一步,确定在种系抗体中起关键功能作用的构象柔性是否在塑造其天然序列中也很重要。特别是,我们使用多约束计算设计策略以及Rosetta评分功能,提出来自种系抗体的CDR H3环的天然序列对于构象灵活性几乎是最佳的。此外,我们发现抗体成熟可能导致具有针对单个构象的更高优化程度的序列,同时不利于本质上灵活的序列。另外,这种计算策略使我们能够预测CDR H3环中的突变以稳定抗原结合的构象,这是亲和力成熟的一种计算模拟,可以通过预先组织抗原结合环来增加抗原结合亲和力。体内亲和力成熟数据与我们的预测一致。通过减少构象多样性,此处描述的方法可用于设计具有更高选择性和亲和力的抗体。

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