Department of Nanostructured Materials, Leibniz-Institut fur Polymerforschung Dresden, Dresden, Germany.
Physical Chemistry of Polymer Materials, Technische Universität Dresden, D-01062 Dresden, Germany.
Curr Med Chem. 2018;25(35):4553-4586. doi: 10.2174/0929867325666180601101859.
Within the last two decades, the field of nanomedicine has not developed as successfully as has widely been hoped for. The main reason for this is the immense complexity of the biological systems, including the physico-chemical properties of the biological fluids as well as the biochemistry and the physiology of living systems. The nanoparticles' physicochemical properties are also highly important. These differ profoundly from those of freshly synthesized particles when applied in biological/living systems as recent research in this field reveals. The physico-chemical properties of nanoparticles are predefined by their structural and functional design (core and coating material) and are highly affected by their interaction with the environment (temperature, pH, salt, proteins, cells). Since the coating material is the first part of the particle to come in contact with the environment, it does not only provide biocompatibility, but also defines the behavior (e.g. colloidal stability) and the fate (degradation, excretion, accumulation) of nanoparticles in the living systems. Hence, the coating matters, particularly for a nanoparticle system for biomedical applications, which has to fulfill its task in the complex environment of biological fluids, cells and organisms. In this review, we evaluate the performance of different coating materials for nanoparticles concerning their ability to provide colloidal stability in biological media and living systems.
在过去的二十年中,纳米医学领域的发展并没有像人们广泛期望的那样成功。主要原因是生物系统的复杂性,包括生物流体的物理化学性质以及生物系统的生物化学和生理学。纳米粒子的物理化学性质也非常重要。正如该领域的最新研究表明,当这些纳米粒子应用于生物/活体系统时,它们的物理化学性质与刚合成的粒子有很大的不同。纳米粒子的物理化学性质由其结构和功能设计(核心和涂层材料)预先确定,并受其与环境的相互作用(温度、pH 值、盐、蛋白质、细胞)的强烈影响。由于涂层材料是粒子与环境接触的第一部分,它不仅提供了生物相容性,还定义了纳米粒子在活体系统中的行为(例如胶体稳定性)和命运(降解、排泄、积累)。因此,涂层材料很重要,特别是对于用于生物医学应用的纳米粒子系统,它必须在生物流体、细胞和生物体的复杂环境中完成其任务。在这篇综述中,我们评估了不同涂层材料在提供生物介质和活体系统中胶体稳定性方面的性能。