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Enzymatic functionalization of a nanobody using protein insertion technology

机译:使用蛋白质插入技术对纳米抗体进行酶促功能化

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Antibody-based products constitute one of the most attractive biological molecules for diagnostic, medical imagery and therapeutic purposes with very few side effects. Their development has become a major priority of biotech and pharmaceutical industries. Recently, a growing number of modified antibody-based products have emerged including fragments, multi-specific and conjugate antibodies. In this study, using protein engineering, we have functionalized the anti-hen egg-white lysozyme (HEWL) camelid VHH antibody fragment (cAb-Lys3), by insertion into a solvent-exposed loop of the Bacillus licheniformis beta-lactamase BlaP. We showed that the generated hybrid protein conserved its enzymatic activity while the displayed nanobody retains its ability to inhibit HEWL with a nanomolar affinity range. Then, we successfully implemented the functionalized cAb-Lys3 in enzyme-linked immunosorbent assay, potentiometric biosensor and drug screening assays. The hybrid protein was also expressed on the surface of phage particles and, in this context, was able to interact specifically with HEWL while the beta-lactamase activity was used to monitor phage interactions. Finally, using thrombin-cleavage sites surrounding the permissive insertion site in the beta-lactamase, we reported an expression system in which the nanobody can be easily separated from its carrier protein. Altogether, our study shows that insertion into the BlaP beta-lactamase constitutes a suitable technology to functionalize nanobodies and allows the creation of versatile tools that can be used in innovative biotechnological assays.
机译:基于抗体的产品构成了用于诊断,医学影像和治疗目的的最具吸引力的生物分子之一,几乎没有副作用。它们的发展已成为生物技术和制药工业的首要任务。最近,出现了越来越多的基于修饰抗体的产品,包括片段抗体,多特异性抗体和偶联抗体。在这项研究中,我们使用蛋白质工程技术,通过将地衣芽孢杆菌β-内酰胺酶BlaP暴露在溶剂暴露的环中,功能化了抗鸡卵清溶菌酶(HEWL)骆驼科动物VHH抗体片段(cAb-Lys3)。我们表明,生成的杂合蛋白保留了其酶活性,而展示的纳米抗体保留了其以纳摩尔亲和力范围抑制HEWL的能力。然后,我们在酶联免疫吸附测定,电位生物传感器和药物筛选测定中成功实施了功能化的cAb-Lys3。杂合蛋白也表达在噬菌体颗粒的表面上,在这种情况下,能够与HEWL特异性相互作用,而β-内酰胺酶活性可用于监测噬菌体的相互作用。最后,我们使用β-内酰胺酶中允许插入位点周围的凝血酶切割位点,报道了一种表达系统,其中纳米抗体可轻松与其载体蛋白分离。总而言之,我们的研究表明,将BlaPβ-内酰胺酶插入是使纳米抗体功能化的合适技术,并允许创建可用于创新生物技术分析的多功能工具。

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