Department of Pharmaceutical Science, College of Clinical Pharmacy, King Faisal University, Al-Ahsa 31982, Saudi Arabia.
Department of Pharmaceutics, Vidya Siri College of Pharmacy, Bangalore 560035, India.
Ther Deliv. 2021 Apr;12(4):325-336. doi: 10.4155/tde-2020-0116. Epub 2021 Mar 24.
Multifunctional nanoparticles have been identified as a promising drug-delivery system for sustainable drug release. The structural and size tunability and disease-targeting ability of nanoparticles have made them more suitable for multiple drug loading and delivery, thereby enhancing therapeutic results through synergistic effects. Nanoparticulate carriers with specific features such as target specificity and stimuli-responsiveness enable selective drug delivery with lower potential side effects. In this review we have classified the recently published articles on polymeric and inorganic nanoparticle-mediated drug delivery into three different categories based on functionality and discussed their efficiency for drug delivery and their therapeutic outcomes in preclinical models. Most of the drug-loaded nanodelivery systems discussed have demonstrated negligible or very low systemic toxicity throughout the experimental period in animal models compared with free drug administration. In addition, some challenges associated with the translation of nanoparticle-based drug carrier responses to clinical application are highlighted.
多功能纳米颗粒已被确定为一种有前途的药物输送系统,可实现可持续的药物释放。纳米颗粒的结构和尺寸可调性以及针对疾病的靶向能力使它们更适合多种药物的负载和输送,从而通过协同作用增强治疗效果。具有靶向特异性和刺激响应性等特定特征的纳米颗粒载体能够实现选择性药物输送,降低潜在的副作用。在这篇综述中,我们根据功能将最近发表的关于聚合物和无机纳米颗粒介导的药物输送的文章分为三类,并讨论了它们在药物输送方面的效率及其在临床前模型中的治疗效果。与游离药物给药相比,讨论的大多数载药纳米递药系统在动物模型中的整个实验期间都表现出可忽略的或非常低的全身毒性。此外,还强调了将基于纳米颗粒的药物载体反应转化为临床应用所面临的一些挑战。