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A Rational Engineering Strategy for Designing Protein A-Binding Camelid Single-Domain Antibodies

机译:设计蛋白A结合骆驼状单域抗体的合理工程策略

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摘要

Staphylococcal protein A (>SpA) and streptococcal protein G (>SpG) affinity chromatography are the gold standards for purifying monoclonal antibodies (>mAbs) in therapeutic applications. However, camelid VHH single-domain Abs (>sdAbs or >V>H>Hs) are not bound by SpG and only sporadically bound by SpA. Currently, VHHs require affinity tag-based purification, which limits their therapeutic potential and adds considerable complexity and cost to their production. Here we describe a simple and rapid mutagenesis-based approach designed to confer SpA binding upon a priori non-SpA-binding VHHs. We show that SpA binding of VHHs is determined primarily by the same set of residues as in human mAbs, albeit with an unexpected degree of tolerance to substitutions at certain core and non-core positions and some limited dependence on at least one residue outside the SpA interface, and that SpA binding could be successfully introduced into five VHHs against three different targets with no adverse effects on expression yield or antigen binding. Next-generation sequencing of llama, alpaca and dromedary VHH repertoires suggested that species differences in SpA binding may result from frequency variation in specific deleterious polymorphisms, especially Ile57. Thus, the SpA binding phenotype of camelid VHHs can be easily modulated to take advantage of tag-less purification techniques, although the frequency with which this is required may depend on the source species.
机译:葡萄球菌蛋白A(> SpA )和链球菌蛋白G(> SpG )亲和色谱是在治疗应用中纯化单克隆抗体(> mAbs )的金标准。 。但是,骆驼科动物VHH单域抗体(> sdAbs 或> V > H > Hs )不受SpG约束,仅零星受SpA约束。当前,VHH需要基于亲和标签的纯化,这限制了它们的治疗潜力,并增加了其生产的复杂性和成本。在这里,我们描述了一种简单且快速的基于诱变的方法,旨在将SpA绑定赋予先验的非SpA绑定VHH。我们显示,VHHs的SpA结合主要由与人类mAb中相同的残基组决定,尽管对某些核心和非核心位置的取代具有出乎意料的耐受性,并且对SpA外部的至少一个残基有一定的依赖性界面,并且可以成功地将SpA结合引入针对三个不同靶标的五个VHH中,而对表达产量或抗原结合没有不利影响。美洲驼,羊驼和单峰骆驼VHH的下一代测序表明,SpA结合的物种差异可能是特定有害多态性(尤其是Ile57)的频率变化引起的。因此,骆驼VHH的SpA结合表型可以很容易地调节以利用无标签纯化技术,尽管所需的频率可能取决于来源物种。

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