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利用酵母 L-A 病毒衣壳在体内组装嵌合 VLPs,作为疫苗开发和外源蛋白表达的平台。

Exploiting the yeast L-A viral capsid for the in vivo assembly of chimeric VLPs as platform in vaccine development and foreign protein expression.

机构信息

Angewandte Molekularbiologie, Universität des Saarlandes, Saarbrücken, Germany.

出版信息

PLoS One. 2007 May 2;2(5):e415. doi: 10.1371/journal.pone.0000415.

Abstract

A novel expression system based on engineered variants of the yeast (Saccharomyces cerevisiae) dsRNA virus L-A was developed allowing the in vivo assembly of chimeric virus-like particles (VLPs) as a unique platform for a wide range of applications. We show that polypeptides fused to the viral capsid protein Gag self-assemble into isometric VLP chimeras carrying their cargo inside the capsid, thereby not only effectively preventing proteolytic degradation in the host cell cytosol, but also allowing the expression of a per se cytotoxic protein. Carboxyterminal extension of Gag by T cell epitopes from human cytomegalovirus pp65 resulted in the formation of hybrid VLPs that strongly activated antigen-specific CD8(+) memory T cells ex vivo. Besides being a carrier for polypeptides inducing antigen-specific immune responses in vivo, VLP chimeras were also shown to be effective in the expression and purification of (i) a heterologous model protein (GFP), (ii) a per se toxic protein (K28 alpha-subunit), and (iii) a particle-associated and fully recyclable biotechnologically relevant enzyme (esterase A). Thus, yeast viral Gag represents a unique platform for the in vivo assembly of chimeric VLPs, equally attractive and useful in vaccine development and recombinant protein production.

摘要

我们开发了一种基于酵母(酿酒酵母)dsRNA 病毒 L-A 的工程变体的新型表达系统,该系统允许体内组装嵌合病毒样颗粒(VLPs),作为广泛应用的独特平台。我们表明,融合到病毒衣壳蛋白 Gag 的多肽会自我组装成等规 VLP 嵌合体,将其货物携带在衣壳内,从而不仅有效地防止了在宿主细胞胞质溶胶中的蛋白水解降解,还允许表达本身具有细胞毒性的蛋白。Gag 的羧基末端通过人巨细胞病毒 pp65 的 T 细胞表位延伸,导致形成强烈激活体外抗原特异性 CD8(+)记忆 T 细胞的杂交 VLP。除了作为在体内诱导抗原特异性免疫应答的多肽载体外,嵌合 VLP 还被证明在表达和纯化(i)异源模型蛋白(GFP),(ii)本身有毒的蛋白(K28 α-亚基)和(iii)与颗粒相关且完全可回收的生物技术相关酶(酯酶 A)方面非常有效。因此,酵母病毒 Gag 代表了体内组装嵌合 VLP 的独特平台,在疫苗开发和重组蛋白生产中同样具有吸引力和实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f47c/1853235/084eaf43e146/pone.0000415.g001.jpg

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