Vosoughi Pegah, Naghib Seyed Morteza, Kangarshahi Babak Mikaeeli, Mozafari M R
Nanotechnology Department, School of Advanced Technologies, Iran University of Science and Technology (IUST), Tehran 1684613114, Iran.
Nanotechnology Department, School of Advanced Technologies, Iran University of Science and Technology (IUST), Tehran 1684613114, Iran.
Int J Biol Macromol. 2025 Mar;295:139532. doi: 10.1016/j.ijbiomac.2025.139532. Epub 2025 Jan 5.
Nanotechnology involves the utilization of materials with exceptional properties at the nanoscale. Over the past few years, nanotechnologies have demonstrated significant potential in improving human health, particularly in medical treatments. The self-assembly characteristic of RNA is a highly effective method for designing and constructing nanostructures using a combination of biological, chemical, and physical techniques from different fields. There is great potential for the application of RNA nanotechnology in therapeutics. This review explores various nano-based drug delivery systems and their unique features through the impressive progress of the RNA field and their significant therapeutic promises due to their unique performance in the COVID-19 pandemic. However, a significant hurdle in fully harnessing the power of RNA drugs lies in effectively delivering RNA to precise organs and tissues, a critical factor for achieving therapeutic effectiveness, minimizing side effects, and optimizing treatment outcomes. There have been many efforts to pursue targeting, but the clinical translation of RNA drugs has been hindered by the lack of clear guidelines and shared understanding. A comprehensive understanding of various principles is essential to develop vaccines using nucleic acids and nanomedicine successfully. These include mechanisms of immune responses, functions of nucleic acids, nanotechnology, and vaccinations. Regarding this matter, the aim of this review is to revisit the fundamental principles of the immune system's function, vaccination, nanotechnology, and drug delivery in relation to the creation and manufacturing of vaccines utilizing nanotechnology and nucleic acids. RNA drugs have demonstrated significant potential in treating a wide range of diseases in both clinical and preclinical research. One of the reasons is their capacity to regulate gene expression and manage protein production efficiently. Different methods, like modifying chemicals, connecting ligands, and utilizing nanotechnology, have been essential in enabling the effective use of RNA-based treatments in medical environments. The article reviews stimuli-responsive nanotechnologies for RNA delivery and their potential in RNA medicines. It emphasizes the notable benefits of these technologies in improving the effectiveness of RNA and targeting specific cells and organs. This review offers a comprehensive analysis of different RNA drugs and how they work to produce therapeutic benefits. Recent progress in using RNA-based drugs, especially mRNA treatments, has shown that targeted delivery methods work well in medical treatments.
纳米技术涉及利用在纳米尺度具有特殊性质的材料。在过去几年中,纳米技术在改善人类健康,特别是在医学治疗方面已展现出巨大潜力。RNA的自组装特性是一种利用来自不同领域的生物学、化学和物理技术相结合来设计和构建纳米结构的高效方法。RNA纳米技术在治疗学中的应用潜力巨大。本综述通过RNA领域令人瞩目的进展以及它们在新冠疫情中因其独特性能而具有的重大治疗前景,探讨了各种基于纳米的药物递送系统及其独特特征。然而,充分发挥RNA药物的功效面临的一个重大障碍在于如何有效地将RNA递送至精确的器官和组织,这是实现治疗效果、最小化副作用以及优化治疗结果的关键因素。尽管在靶向递送方面已经做出了许多努力,但由于缺乏明确的指导方针和共识,RNA药物的临床转化受到了阻碍。全面理解各种原理对于成功开发核酸疫苗和纳米药物至关重要。这些原理包括免疫反应机制、核酸功能、纳米技术和疫苗接种。关于这一点,本综述的目的是重新审视免疫系统功能、疫苗接种、纳米技术以及药物递送的基本原理,这些原理与利用纳米技术和核酸制备疫苗的过程相关。RNA药物在临床和临床前研究中已显示出在治疗多种疾病方面的巨大潜力。其中一个原因是它们能够有效调节基因表达并控制蛋白质生成。不同的方法,如化学修饰、连接配体和利用纳米技术,对于在医学环境中有效应用基于RNA的治疗方法至关重要。本文综述了用于RNA递送的刺激响应性纳米技术及其在RNA药物中的潜力。它强调了这些技术在提高RNA有效性以及靶向特定细胞和器官方面的显著优势。本综述对不同的RNA药物及其产生治疗益处的作用方式进行了全面分析。基于RNA的药物,尤其是mRNA治疗方法的最新进展表明,靶向递送方法在医学治疗中效果良好。