School of Chemical Engineering, Yeungnam University, 280 Daehak-Ro, Gyeongsan, Gyeongbuk 38541, Republic of Korea. Department of Nano, Medical & Polymer Materials, College of Engineering, Yeungnam University, 280 Daehak-Ro, Gyeongsan, Gyeongbuk 38541, Republic of Korea.
Bioinspir Biomim. 2017 May 19;12(3):031001. doi: 10.1088/1748-3190/aa6bfd.
Viral nanotechnology is revolutionizing the biomimetic and bioinspired synthesis of novel nanomaterials. Bottom-up nanofabrication by self-assembly of individual molecular components of elongated viral nanoparticles (VNPs) and virus-like particles (VLPs) has resulted in the production of superior materials and structures in the nano(bio)technological fields. Viral capsids are attractive materials, because of their symmetry, monodispersity, and polyvalency. Helical VNPs/VLPs are unique prefabricated nanoscaffolds with large surface area to volume ratios and high aspect ratios, and enable the construction of exquisite supramolecular nanostructures. This review discusses the genetic and chemical modifications of outer, inner, and interface surfaces of a viral protein cage that will almost certainly lead to the development of superior next-generation targeted drug delivery and imaging systems, biosensors, energy storage and optoelectronic devices, therapeutics, and catalysts.
病毒纳米技术正在彻底改变新型纳米材料的仿生合成。通过自组装拉长的病毒纳米颗粒(VNPs)和类病毒颗粒(VLPs)的单个分子组件的自下而上的纳米制造,导致了纳米(生物)技术领域中更优异的材料和结构的产生。病毒衣壳是一种有吸引力的材料,因为它们具有对称性、单分散性和多价性。螺旋形 VNPs/VLPs 是独特的预制纳米支架,具有较大的表面积与体积比和较高的纵横比,并能够构建精致的超分子纳米结构。本文综述了病毒蛋白笼外表面、内表面和界面的遗传和化学修饰,这几乎肯定会导致下一代靶向药物输送和成像系统、生物传感器、能量存储和光电设备、治疗剂和催化剂的开发。
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