Havelikar Ujwal, Ghorpade Kabirdas B, Kumar Amit, Patel Akhilesh, Singh Manisha, Banjare Nagma, Gupta Prem N
Department of Pharmaceutics, NIMS Institute of Pharmacy, NIMS University Rajasthan, Jaipur, 303121, India.
Pharmacology Division, CSIR-Indian Institute of Integrative Medicine, Canal Road, Jammu, 180001, India.
Discov Nano. 2024 Oct 4;19(1):165. doi: 10.1186/s11671-024-04118-1.
Nanomedicine has the potential to transform healthcare by offering targeted therapies, precise diagnostics, and enhanced drug delivery systems. The National Institutes of Health has coined the term "nanomedicine" to describe the use of nanotechnology in biological system monitoring, control, diagnosis, and treatment. Nanomedicine continues to receive increasing interest for the rationalized delivery of therapeutics and pharmaceutical agents to achieve the required response while reducing its side effects. However, as nanotechnology continues to advance, concerns about its potential toxicological effects have also grown. This review explores the current state of nanomedicine, focusing on the types of nanoparticles used and their associated properties that contribute to nanotoxicity. It examines the mechanisms through which nanoparticles exert toxicity, encompassing various cellular and molecular interactions. Furthermore, it discusses the assessment methods employed to evaluate nanotoxicity, encompassing in-vitro and in-vivo models, as well as emerging techniques. The review also addresses the regulatory issues surrounding nanotoxicology, highlighting the challenges in developing standardized guidelines and ensuring the secure translation of nanomedicine into clinical settings. It also explores into the challenges and ethical issues associated with nanotoxicology, as understanding the safety profile of nanoparticles is essential for their effective translation into therapeutic applications.
纳米医学有潜力通过提供靶向治疗、精准诊断和先进的药物递送系统来变革医疗保健。美国国立卫生研究院创造了“纳米医学”一词,用以描述纳米技术在生物系统监测、控制、诊断和治疗中的应用。纳米医学因能合理递送治疗药物和药剂以实现所需疗效并减少副作用而持续受到越来越多的关注。然而,随着纳米技术不断进步,人们对其潜在毒理学效应的担忧也与日俱增。本综述探讨了纳米医学的现状,重点关注所使用的纳米颗粒类型及其与纳米毒性相关的特性。它研究了纳米颗粒产生毒性的机制,包括各种细胞和分子相互作用。此外,它讨论了用于评估纳米毒性的评估方法,包括体外和体内模型以及新兴技术。该综述还阐述了围绕纳米毒理学的监管问题,强调了制定标准化指南以及确保纳米医学安全转化为临床应用方面的挑战。它还探讨了与纳米毒理学相关的挑战和伦理问题,因为了解纳米颗粒的安全性概况对于其有效转化为治疗应用至关重要。