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Design strategies to address the effect of hydrophobic epitope on stability and in vitro assembly of modular virus‐like particle

机译:解决疏水表位对模块化病毒样颗粒的稳定性和体外组装的影响的设计策略

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摘要

Virus‐like particles (VLPs) and capsomere subunits have shown promising potential as safe and effective vaccine candidates. They can serve as platforms for the display of foreign epitopes on their surfaces in a modular architecture. Depending on the physicochemical properties of the antigenic modules, modularization may affect the expression, solubility and stability of capsomeres, and VLP assembly. In this study, three module designs of a rotavirus hydrophobic peptide (RV10) were synthesized using synthetic biology. Among the three synthetic modules, modularization of the murine polyomavirus VP1 with a single copy of RV10 flanked by long linkers and charged residues resulted in the expression of stable modular capsomeres. Further employing the approach of module titration of RV10 modules on each capsomere via Escherichia coli co‐expression of unmodified VP1 and modular VP1‐RV10 successfully translated purified modular capomeres into modular VLPs when assembled in vitro. Our results demonstrate that tailoring the physicochemical properties of modules to enhance modular capsomeres stability is achievable through synthetic biology designs. Combined with module titration strategy to avoid steric hindrance to intercapsomere interactions, this allows bioprocessing of bacterially produced in vitro assembled modular VLPs.
机译:病毒样颗粒(VLP)和Capsomere亚基已显示出有望成为安全有效的候选疫苗的潜力。它们可以用作以模块化体系结构在其表面上显示异源表位的平台。取决于抗原模块的物理化学性质,模块化可能会影响capsomeres的表达,溶解性和稳定性以及VLP组装。在这项研究中,使用合成生物学方法合成了轮状病毒疏水肽(RV10)的三个模块设计。在这三个合成模块中,鼠多瘤病毒VP1的模块化带有一个单拷贝的RV10,两侧是长连接子和带电荷的残基,导致了稳定的模块化帽粒的表达。通过大肠杆菌在未修饰的VP1和模块化VP1-RV10上共表达,进一步采用每个滴定体上的RV10模块的模块滴定方法,在体外组装时成功地将纯化的模块化Capomeres转化为模块化VLP。我们的结果表明,通过合成生物学设计可实现调整模块的理化特性以增强模块帽泡体的稳定性。与模块滴定策略相结合,可避免空间障碍对帽间相互作用的影响,这允许对细菌产生的体外组装的模块化VLP进行生物处理。

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