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Camelid-derived heavy-chain nanobody against Clostridium botulinum neurotoxin E in Pichia pastoris

机译:骆驼科巴斯德毕赤酵母中来源于肉毒梭菌神经毒素E的重链纳米抗体。

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Botulinum neurotoxins (BoNTs) result in severe and often fatal disease, botulism. Common remedial measures such as equine antitoxin and human botulism immunoglobulin in turn are problematic and time-consuming. Therefore, diagnosis and therapy of BoNTs are vital. The variable domain of heavy-chain antibodies (VHH) has unique features, such as the ability to identify and bind specifically to target epitopes and ease of production in bacteria and yeast. The Pichia pastoris is suitable for expression of recombinant antibody fragments. Disulfide bond formation and correct folds of protein with a high yield are some of the advantages of this eukaryotic host. In this study, we have expressed and purified the camelid VHH against BoNT/E in P. pastoris. The final yield of P. pastoris-expressed antibody was estimated to be 16 mg/l, which is higher than that expressed by Escherichia coli. The nanobody expressed in P. pastoris neutralized 4LD(50) of the BoNT/E upon i.p. injection in 25% of mice. The nanobody expressed in E. coli extended the mice's survival to 1.5-fold compared to the control. This experiment indicated that the quality of expressed protein in the yeast is superior to that of the bacterial expression. Favorable protein folding by P. pastoris seems to play a role in its better toxin-binding property.
机译:肉毒杆菌神经毒素(BoNT)会导致严重的致命疾病(肉毒中毒)。常见的补救措施(例如马抗毒素和人类肉毒杆菌中毒免疫球蛋白)又成问题且耗时。因此,BoNT的诊断和治疗至关重要。重链抗体(VHH)的可变域具有独特的功能,例如能够识别并特异性结合目标表位,并易于在细菌和酵母中生产。巴斯德毕赤酵母适于表达重组抗体片段。二硫键的形成和蛋白质正确折叠的高产率是该真核宿主的一些优点。在这项研究中,我们已经表达并纯化了针对巴斯德毕赤酵母中BoNT / E的骆驼科VHH。巴斯德毕赤酵母表达的抗体的最终产量估计为16 mg / l,高于大肠杆菌表达的抗体。巴斯德毕赤酵母中表达的纳米抗体在i.p.时中和了BoNT / E的4LD(50)。注射25%的小鼠。与对照相比,在大肠杆菌中表达的纳米抗体将小鼠的生存期延长了1.5倍。该实验表明酵母中表达的蛋白质的质量优于细菌表达的蛋白质。巴斯德毕赤酵母的有利蛋白质折叠似乎在其更好的毒素结合特性中起作用。

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