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用于药物递送和靶向的海藻酸钠纳米颗粒。

Alginate Nanoparticles for Drug Delivery and Targeting.

机构信息

Universidade Tiradentes (Unit), Av. Murilo Dantas, 300, Farolandia, Aracaju-SE, CEP 49.032-490, Brazil.

Instituto de Tecnologia e Pesquisa, Laboratório de Nanotecnologia e Nanomedicina (LNMed) Av. Murilo Dantas, 300, Aracaju - SE, CEP 49.032-490, Brazil.

出版信息

Curr Pharm Des. 2019;25(11):1312-1334. doi: 10.2174/1381612825666190425163424.

Abstract

Nanotechnology refers to the control, manipulation, study and manufacture of structures and devices at the nanometer size range. The small size, customized surface, improved solubility and multi-functionality of nanoparticles will continue to create new biomedical applications, as nanoparticles allow to dominate stability, solubility and bioavailability, as well controlled release of drugs. The type of a nanoparticle, and its related chemical, physical and morphological properties influence its interaction with living cells, as well as determine the route of clearance and possible toxic effects. This field requires cross-disciplinary research and gives opportunities to design and develop multifunctional devices, which allow the diagnosis and treatment of devastating diseases. Over the past few decades, biodegradable polymers have been studied for the fabrication of drug delivery systems. There was extensive development of biodegradable polymeric nanoparticles for drug delivery and tissue engineering, in view of their applications in controlling the release of drugs, stabilizing labile molecules from degradation and site-specific drug targeting. The primary aim is to reduce dosing frequency and prolong the therapeutic outcomes. For this purpose, inert excipients should be selected, being biopolymers, e.g. sodium alginate, commonly used in controlled drug delivery. Nanoparticles composed of alginate (known as anionic polysaccharide widely distributed in the cell walls of brown algae which, when in contact with water, forms a viscous gum) have emerged as one of the most extensively characterized biomaterials used for drug delivery and targeting a set of administration routes. Their advantages include not only the versatile physicochemical properties, which allow chemical modifications for site-specific targeting but also their biocompatibility and biodegradation profiles, as well as mucoadhesiveness. Furthermore, mechanical strength, gelation, and cell affinity can be modulated by combining alginate nanoparticles with other polymers, surface tailoring using specific targeting moieties and by chemical or physical cross-linking. However, for every physicochemical modification in the macromolecule/ nanoparticles, a new toxicological profile may be obtained. In this paper, the different aspects related to the use of alginate nanoparticles for drug delivery and targeting have been revised, as well as how their toxicological profile will determine the therapeutic outcome of the drug delivery system.

摘要

纳米技术是指在纳米尺寸范围内对结构和器件进行控制、操纵、研究和制造。纳米粒子的小尺寸、定制表面、提高的溶解度和多功能性将继续创造新的生物医学应用,因为纳米粒子能够控制药物的稳定性、溶解度和生物利用度以及控制释放。纳米粒子的类型及其相关的化学、物理和形态特性会影响其与活细胞的相互作用,并决定清除途径和可能的毒性作用。这个领域需要跨学科的研究,并为设计和开发多功能设备提供机会,从而实现对毁灭性疾病的诊断和治疗。在过去的几十年中,人们一直在研究可生物降解聚合物来制备药物输送系统。由于可生物降解聚合物纳米粒子在药物输送和组织工程中的应用,人们对其进行了广泛的研究,这些应用包括控制药物释放、稳定易降解的分子和靶向特定部位的药物。主要目的是减少给药频率并延长治疗效果。为此,应选择惰性赋形剂,即生物聚合物,例如海藻酸钠,常用于控制药物释放。由海藻酸钠(一种广泛分布于褐藻细胞壁中的阴离子多糖,与水接触时会形成粘性胶)组成的纳米粒子已成为用于药物输送和靶向一系列给药途径的最广泛表征的生物材料之一。它们的优点不仅包括多功能的物理化学性质,允许进行针对特定部位的化学修饰,还包括其生物相容性和生物降解特性以及粘膜粘附性。此外,通过与其他聚合物结合、使用特定靶向基团进行表面修饰以及通过化学或物理交联来调节海藻酸钠纳米粒子的机械强度、凝胶化和细胞亲和力。然而,在大分子/纳米粒子的每一次物理化学修饰中,都可能获得新的毒理学特征。本文综述了海藻酸钠纳米粒子在药物输送和靶向中的不同应用方面,以及它们的毒理学特征如何决定药物输送系统的治疗效果。

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