纳米粒子在治疗传染病和癌症、牙科应用和组织再生中的应用:综述

Ali Sobhani-Nasab, H. Banafshe, Amir Atapour, M. Khaksary Mahabady, Maryam Akbari, A. Daraei, Y. Mansoori, Amin Moradi Hasan-Abad
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摘要

纳米技术作为一个研究领域的兴起可以追溯到 20 世纪 80 年代,当时人工生产、控制和观察纳米级物质的方法已经变得可行。最近的技术进步使我们能够将研究范围扩展到纳米尺度,这为直接针对生物分子相互作用提供了无与伦比的机会。由于这些发展,出现了一种能够克服阻碍传统药理学方法进步的障碍的智能纳米结构。四十年后的今天,生物技术和纳米技术的逐步融合正在疾病检测、治疗和监控领域以及尚未解决的医学难题方面掀起一场革命。尽管该领域的大部分研究仍局限于实验室,但纳米技术在治疗、疫苗、药品和诊断设备方面的初步应用现已获得商业化和临床实践的认可。本期杂志概述了纳米医学战略在缓解抗生素耐药性、诊断和治疗癌症、解决神经退行性疾病以及包括牙科和结核病治疗在内的一系列应用方面取得的最新进展。目前的调查还仔细研究了精密智能纳米结构材料在再生医学等应用领域的部署,以及靶向和持续释放药物和治疗干预措施的管理。上述概念展示了在免疫疗法领域取得革命性进步的潜力,因为它引入了利用植入疫苗技术持续调节和增强免疫功能的方法。在努力实现纳米医学干预优势的同时,必须不断加强对纳米毒理学研究和纳米药物安全性监管的重视。这一举措对于实现目前触手可及的医学进步至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The use of nanoparticles in the treatment of infectious diseases and cancer, dental applications and tissue regeneration: a review
The emergence of nanotechnology as a field of study can be traced back to the 1980s, at which point the means to artificially produce, control, and observe matter on a nanometer level was made viable. Recent advancements in technology have enabled us to extend our reach to the nanoscale, which has presented an unparalleled opportunity to directly target biomolecular interactions. As a result of these developments, there is a drive to arise intelligent nanostructures capable of overcoming the obstacles that have impeded the progress of conventional pharmacological methodologies. After four decades, the gradual amalgamation of bio- and nanotechnologies is initiating a revolution in the realm of disease detection, treatment, and monitoring, as well as unsolved medical predicaments. Although a significant portion of research in the field is still confined to laboratories, the initial application of nanotechnology as treatments, vaccines, pharmaceuticals, and diagnostic equipment has now obtained endorsement for commercialization and clinical practice. The current issue presents an overview of the latest progress in nanomedical strategies towards alleviating antibiotic resistance, diagnosing and treating cancer, addressing neurodegenerative disorders, and an array of applications, encompassing dentistry and tuberculosis treatment. The current investigation also scrutinizes the deployment of sophisticated smart nanostructured materials in fields of application such as regenerative medicine, as well as the management of targeted and sustained release of pharmaceuticals and therapeutic interventions. The aforementioned concept exhibits the potential for revolutionary advancements within the field of immunotherapy, as it introduces the utilization of implanted vaccine technology to consistently regulate and augment immune functions. Concurrently with the endeavor to attain the advantages of nanomedical intervention, it is essential to enhance the unceasing emphasis on nanotoxicological research and the regulation of nanomedications' safety. This initiative is crucial in achieving the advancement in medicine that currently lies within our reach.
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