Yan Dan, Wei Yan-Quan, Guo Hui-Chen, Sun Shi-Qi
State Key Laboratory of Veterinary Etiological Biology and Key Laboratory of Animal Virology of Ministry of Agriculture, Lanzhou Veterinary Research Institute, Chinese Academy of Agricultural Sciences, Xujiaping 1, Lanzhou, Gansu, 730046, China.
Appl Microbiol Biotechnol. 2015 Dec;99(24):10415-32. doi: 10.1007/s00253-015-7000-8. Epub 2015 Oct 10.
Virus-like particles (VLPs) can be spontaneously self-assembled by viral structural proteins under appropriate conditions in vitro while excluding the genetic material and potential replication probability. In addition, VLPs possess several features including can be rapidly produced in large quantities through existing expression systems, highly resembling native viruses in terms of conformation and appearance, and displaying repeated cluster of epitopes. Their capsids can be modified via genetic insertion or chemical conjugation which facilitating the multivalent display of a homologous or heterogeneous epitope antigen. Therefore, VLPs are considered as a safe and effective candidate of prophylactic and therapeutic vaccines. VLPs, with a diameter of approximately 20 to 150 nm, also have the characteristics of nanometer materials, such as large surface area, surface-accessible amino acids with reactive moieties (e.g., lysine and glutamic acid residues), inerratic spatial structure, and good biocompatibility. Therefore, assembled VLPs have great potential as a delivery system for specifically carrying a variety of materials. This review summarized recent researches on VLP development as vaccines and biological vehicles, which demonstrated the advantages and potential of VLPs in disease control and prevention and diagnosis. Then, the prospect of VLP biology application in the future is discussed as well.
病毒样颗粒(VLPs)可在体外适当条件下由病毒结构蛋白自发自组装而成,同时排除遗传物质和潜在的复制可能性。此外,VLPs具有多种特性,包括可通过现有表达系统大量快速生产、在构象和外观上与天然病毒高度相似以及展示重复的表位簇。其衣壳可通过基因插入或化学偶联进行修饰,这有助于同源或异源表位抗原的多价展示。因此,VLPs被认为是预防性和治疗性疫苗的安全有效候选物。直径约为20至150纳米的VLPs还具有纳米材料的特性,如大表面积、带有反应性基团的表面可及氨基酸(如赖氨酸和谷氨酸残基)、稳定的空间结构以及良好的生物相容性。因此,组装好的VLPs作为特异性携带各种物质的递送系统具有巨大潜力。本文综述了VLPs作为疫苗和生物载体的最新研究进展,展示了VLPs在疾病控制、预防和诊断方面的优势和潜力。同时,也讨论了VLPs生物学应用在未来的前景。