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通过修饰表面特性来增强纳米医学的治疗潜力。

Enhancing the Therapeutic Potential of Nanomedicines by Modifying Surface Characteristics.

机构信息

Department of Pharmaceutical Sciences, Maharshi Dayanand University, Rohtak 124001, India.

Discipline of Pharmacy, Graduate School of Health, University of Technology Sydney, Ultimo, NSW 2007, Australia.

出版信息

Curr Drug Deliv. 2023;20(8):1031-1036. doi: 10.2174/1567201819666220508175434.

Abstract

Nanomedicines have been used over time because of their significant impact on human health care for the prevention, early detection, diagnosis, treatment, and follow-up of a wide range of illnesses. Nanomedicines must be adequately characterized in order to develop well-defined nanomedicines with therapeutic value. The surface charge of nanomedicines plays an important role to determine how they interact with biological components where the zeta potential is a useful tool for describing the chemical composition of particle surfaces, such as functional groups, adsorption/desorption, and so on. The main goal of this review is to present an overview of the impact of nanomedicines' surface charges on absorption, distribution, metabolism, and in vivo drug release, for example negatively charged nanoparticles diffuse well through mucus for mucosal drug delivery, whereas positively charged nanoparticles are preferred for transvascular transport, tumor penetration, and cellular absorption. In this review, we also highlight how to improve nanomedicines' therapeutic potential by altering their surface characteristics with the help of various polymers. Future research should be focused on enhancing the therapeutic efficiency of nanomedicines by changing their surface properties, as well as conducting in-depth mechanistic studies by changing the surface properties of nanomedicines for the efficient treatment of diseases with low or no nanomedicine toxicity.

摘要

纳米药物因其在预防、早期发现、诊断、治疗和跟踪广泛疾病方面对人类医疗保健的重大影响而被长期应用。为了开发具有治疗价值的明确纳米药物,必须对纳米药物进行充分的特征描述。纳米药物的表面电荷在决定它们如何与生物成分相互作用方面起着重要作用,其中 zeta 电位是描述颗粒表面化学组成的有用工具,如官能团、吸附/解吸等。本综述的主要目的是概述纳米药物表面电荷对吸收、分布、代谢和体内药物释放的影响,例如带负电荷的纳米颗粒可以很好地通过粘液扩散进行粘膜药物递送,而带正电荷的纳米颗粒则更适合跨血管转运、肿瘤渗透和细胞吸收。在这篇综述中,我们还强调了如何通过使用各种聚合物来改变其表面特性来提高纳米药物的治疗潜力。未来的研究应集中于通过改变表面特性来提高纳米药物的治疗效率,并通过改变纳米药物的表面特性来进行深入的机制研究,以有效治疗低毒性或无毒性的疾病。

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