UTBIORAD-FARM, ENEA. Via Anguillarese 301, 00123 - S. Maria di Galeria, Roma, Italy.
Curr Med Chem. 2013;20(28):3471-87. doi: 10.2174/09298673113209990035.
In recent years there has been an outburst of interest regarding the employment of nanoparticles for biomedical applications. Among the different types, such as metallic, organic, biological and hybrid systems, virus based nanoparticles have become a popular field of research. Viruses are able to form organized structures by molecular self assembly of repetitive building blocks, which implies non covalent interactions of protein monomers to form the quaternary structure of viral capsids. Plant virus based systems, in particular, are among the most advanced and exploited for their potential use as bioinspired structured nanomaterials and nanovectors. Plant viruses have a size particularly suitable for nanoscale applications and can offer several advantages. In fact, they are structurally uniform, robust, biodegradable and easy to produce. Moreover, many are the examples regarding functionalization of plant virus based nanoparticles by means of modification of their external surface and by loading cargo molecules into their internal cavity. This plasticity in terms of nanoparticles engineering is the ground on which multivalency, payload containment and targeted delivery can be fully exploited. This review aims primarily to summarize the most important plant virus based nanoparticles systems through their recent applications in biomedicine, such as epitope display for vaccine development and targeted delivery for diagnosis or therapy. In addition, their production in the most commonly used plant propagation and expression systems will be also reviewed.
近年来,人们对纳米粒子在生物医学应用中的应用产生了浓厚的兴趣。在不同类型的纳米粒子中,如金属、有机、生物和混合系统,基于病毒的纳米粒子已成为研究的热门领域。病毒能够通过分子自组装形成有组织的结构,这意味着蛋白质单体的非共价相互作用形成病毒衣壳的四级结构。植物病毒系统,特别是其中的一些,是最先进的,并被广泛用于作为仿生结构纳米材料和纳米载体。植物病毒的大小特别适合纳米级应用,并且具有多个优点。事实上,它们结构均匀、稳定、可生物降解且易于生产。此外,有许多关于通过修饰其外表面和将货物分子装入内部腔室来对植物病毒纳米粒子进行功能化的例子。这种纳米粒子工程方面的可塑性是充分利用多价性、有效负载容纳和靶向传递的基础。本文主要综述了基于植物病毒的纳米粒子系统的最新应用,如疫苗开发的表位展示和诊断或治疗的靶向传递等生物医学领域的应用。此外,还将综述它们在最常用的植物繁殖和表达系统中的生产情况。