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RNA 作为橡胶状阴离子聚合材料在纳米技术和纳米医学中的热稳定性、可调性和坚韧特性-具有不可检测毒性的特定癌症靶向。

Thermostability, Tunability, and Tenacity of RNA as Rubbery Anionic Polymeric Materials in Nanotechnology and Nanomedicine-Specific Cancer Targeting with Undetectable Toxicity.

机构信息

Center for RNA Nanobiotechnology and Nanomedicine, College of Pharmacy, Dorothy M. Davis Heart and Lung Research Institute, James Comprehensive Cancer Center, College of Medicine, The Ohio State University, Columbus, Ohio 43210, United States.

Department of Cancer Biology and Genetics, The Ohio State University Comprehensive Cancer Center, College of Medicine, Center for RNA Biology, The Ohio State University, Columbus, Ohio 43210, United States.

出版信息

Chem Rev. 2021 Jul 14;121(13):7398-7467. doi: 10.1021/acs.chemrev.1c00009. Epub 2021 May 26.

Abstract

RNA nanotechnology is the bottom-up self-assembly of nanometer-scale architectures, resembling LEGOs, composed mainly of RNA. The ideal building material should be (1) versatile and controllable in shape and stoichiometry, (2) spontaneously self-assemble, and (3) thermodynamically, chemically, and enzymatically stable with a long shelf life. RNA building blocks exhibit each of the above. RNA is a polynucleic acid, making it a polymer, and its negative-charge prevents nonspecific binding to negatively charged cell membranes. The thermostability makes it suitable for logic gates, resistive memory, sensor set-ups, and NEM devices. RNA can be designed and manipulated with a level of simplicity of DNA while displaying versatile structure and enzyme activity of proteins. RNA can fold into single-stranded loops or bulges to serve as mounting dovetails for intermolecular or domain interactions without external linking dowels. RNA nanoparticles display rubber- and amoeba-like properties and are stretchable and shrinkable through multiple repeats, leading to enhanced tumor targeting and fast renal excretion to reduce toxicities. It was predicted in 2014 that RNA would be the third milestone in pharmaceutical drug development. The recent approval of several RNA drugs and COVID-19 mRNA vaccines by FDA suggests that this milestone is being realized. Here, we review the unique properties of RNA nanotechnology, summarize its recent advancements, describe its distinct attributes inside or outside the body and discuss potential applications in nanotechnology, medicine, and material science.

摘要

RNA 纳米技术是纳米级结构的自下而上的自组装,类似于乐高积木,主要由 RNA 组成。理想的建筑材料应该具有以下特点:(1) 形状和化学计量比具有多功能性和可控性;(2) 能够自发地自组装;(3) 在热力学、化学和酶学上稳定,具有长的保质期。RNA 构建模块具有上述所有特点。RNA 是一种多核苷酸,使其成为一种聚合物,其负电荷可防止其与带负电荷的细胞膜非特异性结合。其热稳定性使其适用于逻辑门、电阻式存储器、传感器设置和 NEM 设备。RNA 可以像 DNA 一样进行设计和操作,同时具有蛋白质的多功能结构和酶活性。RNA 可以折叠成单链环或凸起,作为分子间或结构域相互作用的安装榫头,而无需外部连接销。RNA 纳米颗粒表现出橡胶和变形虫样的特性,可以通过多次重复拉伸和收缩,从而增强肿瘤靶向性和快速肾脏排泄,以降低毒性。2014 年有人预测,RNA 将成为药物开发的第三个里程碑。最近,FDA 批准了几种 RNA 药物和 COVID-19 mRNA 疫苗,这表明这一里程碑正在实现。在这里,我们回顾了 RNA 纳米技术的独特性质,总结了其最新进展,描述了其在体内和体外的独特属性,并讨论了其在纳米技术、医学和材料科学中的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7844/8312718/bad2173dc0c8/nihms-1722412-f0002.jpg

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