Schwarz B, Uchida M, Douglas T
Indiana University, Bloomington, IN, United States.
Indiana University, Bloomington, IN, United States.
Adv Virus Res. 2017;97:1-60. doi: 10.1016/bs.aivir.2016.09.002. Epub 2016 Nov 8.
Within biology, molecules are arranged in hierarchical structures that coordinate and control the many processes that allow for complex organisms to exist. Proteins and other functional macromolecules are often studied outside their natural nanostructural context because it remains difficult to create controlled arrangements of proteins at this size scale. Viruses are elegantly simple nanosystems that exist at the interface of living organisms and nonliving biological machines. Studied and viewed primarily as pathogens to be combatted, viruses have emerged as models of structural efficiency at the nanoscale and have spurred the development of biomimetic nanoparticle systems. Virus-like particles (VLPs) are noninfectious protein cages derived from viruses or other cage-forming systems. VLPs provide incredibly regular scaffolds for building at the nanoscale. Composed of self-assembling protein subunits, VLPs provide both a model for studying materials' assembly at the nanoscale and useful building blocks for materials design. The robustness and degree of understanding of many VLP structures allow for the ready use of these systems as versatile nanoparticle platforms for the conjugation of active molecules or as scaffolds for the structural organization of chemical processes. Lastly the prevalence of viruses in all domains of life has led to unique activities of VLPs in biological systems most notably the immune system. Here we discuss recent efforts to apply VLPs in a wide variety of applications with the aim of highlighting how the common structural elements of VLPs have led to their emergence as paradigms for the understanding and design of biological nanomaterials.
在生物学领域,分子被排列成层次结构,这些结构协调并控制着众多使复杂生物体得以存在的过程。蛋白质和其他功能性大分子通常在其天然纳米结构背景之外进行研究,因为在此尺寸尺度上创建蛋白质的可控排列仍然很困难。病毒是极为简单的纳米系统,存在于生物体与非生物生物机器的界面。病毒主要被当作需要对抗的病原体进行研究和看待,如今已成为纳米级结构效率的模型,并推动了仿生纳米粒子系统的发展。病毒样颗粒(VLP)是源自病毒或其他笼状形成系统的无感染性蛋白质笼。VLP为纳米级构建提供了极其规则的支架。由自组装蛋白质亚基组成的VLP,既为研究纳米级材料的组装提供了模型,也为材料设计提供了有用的构建模块。许多VLP结构的稳健性和理解程度,使得这些系统能够 readily 用作活性分子缀合的通用纳米粒子平台,或用作化学过程结构组织的支架。最后,病毒在生命所有领域的普遍存在,导致VLP在生物系统中具有独特活性,最显著的是在免疫系统中。在此,我们讨论了最近将VLP应用于各种应用的努力,目的是突出VLP的共同结构元素如何使其成为理解和设计生物纳米材料的范例。 (注:“readily”此处翻译存疑,可能需结合上下文进一步准确理解其含义来优化翻译)