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Icosahedral plant viral nanoparticles - bioinspired synthesis of nanomaterials/nanostructures

机译:ICOSAHEDRAL植物病毒纳米粒子 - 生物悬浮合成纳米材料/纳米结构

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摘要

AbstractViral nanotechnology utilizes virus nanoparticles (VNPs) and virus-like nanoparticles (VLPs) of plant viruses as highly versatile platforms for materials synthesis and molecular entrapment that can be used in the nanotechnological fields, such as in next-generation nanoelectronics, nanocatalysis, biosensing and optics, and biomedical applications, such as for targeting, therapeutic delivery, and non-invasive in vivo imaging with high specificity and selectivity. In particular, plant virus capsids provide biotemplates for the production of novel nanostructured materials with organic/inorganic moieties incorporated in a very precise and controlled manner. Interestingly, capsid proteins of spherical plant viruses can self-assemble into well-organized icosahedral three-dimensional (3D) nanoscale multivalent architectures with high monodispersity and structural symmetry. Using viral genetic and protein engineering of icosahedral viruses with a variety of sizes, the interior, exterior and the interfaces between coat protein (CP) subunits can be manipulated to fabricate materials with a wide range of desirable properties allowing for biomineralization, encapsulation, infusion, controlled self-assembly, and multivalent ligand display of nanoparticles or molecules for varied applications. In this review, we discuss the various functional nanomaterials/nanostructures developed using the VNPs and VLPs of different icosahedral plant viruses and their nano(bio)technological and nanomedical applications.Graphical abstractDisplay OmittedHighlights?Viral nanotechnology is a versatile platform for the synthesis of nanomaterials.?Icosahedral plant viruses are roughly spherical in morphology.?VNPs and VLPs are exploited for nano(bio)technological applications.?Interesting repertoire of safe nanomaterials/nanostructures are derived.]]>
机译:<![cdata [ 抽象 病毒纳米技术利用植物病毒的病毒纳米粒子(VNP)和病毒样纳米颗粒(VLP)作为高度通用平台对于可用于纳米技术领域的材料合成和分子熵,例如在下一代纳米电子,纳米催化剂,生物传感和光学中,以及生物医学应用,例如用于靶向,治疗递送和具有高的体内成像中的非侵入性特异性和选择性。特别地,植物病毒衣壳提供了用于生产新型纳米结构材料的生物预期,其具有以非常精确和受控的方式掺入的有机/无机部分。有趣的是,球形植物病毒的衣壳蛋白可以自组装成具有高单反叠性和结构对称的良好组织的ICOSAHRAL三维(3D)纳米级多价架构。可以用各种尺寸,内部,外部和涂层蛋白质(CP)亚基之间的icosaheDral病毒的病毒遗传和蛋白质工程,以便操纵具有宽范围种所需性能的材料,允许生物丙原化,包封,输注,受控的自组装,以及用于各种应用的纳米颗粒或分子的多价配体显示。在该综述中,我们讨论了使用不同icosahral植物病毒的VNP和VLP和它们的纳米(Bio)技术和纳米医疗应用产生的各种功能纳米材料/纳米结构。 图形摘要 显示省略 突出显示 病毒纳米技术是一种多功能平台,用于合成纳米材料。 icosaheDral植物病毒在形态学中大致球形。 VNPS和VLP被利用纳米(BIO)技术应用。 推导出有趣的安全纳米材料/纳米结构。 ]]>

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