Smart Hybrid Materials Laboratory (SHMs), Advanced Membranes and Porous Materials Center, King Abdullah University of Science and Technology, Thuwal, 23955, Saudi Arabia.
Adv Mater. 2017 Mar;29(9). doi: 10.1002/adma.201604634. Epub 2017 Jan 13.
The biorelated degradability and clearance of siliceous nanomaterials have been questioned worldwide, since they are crucial prerequisites for the successful translation in clinics. Typically, the degradability and biocompatibility of mesoporous silica nanoparticles (MSNs) have been an ongoing discussion in research circles. The reason for such a concern is that approved pharmaceutical products must not accumulate in the human body, to prevent severe and unpredictable side-effects. Here, the biorelated degradability and clearance of silicon and silica nanoparticles (NPs) are comprehensively summarized. The influence of the size, morphology, surface area, pore size, and surface functional groups, to name a few, on the degradability of silicon and silica NPs is described. The noncovalent organic doping of silica and the covalent incorporation of either hydrolytically stable or redox- and enzymatically cleavable silsesquioxanes is then described for organosilica, bridged silsesquioxane (BS), and periodic mesoporous organosilica (PMO) NPs. Inorganically doped silica particles such as calcium-, iron-, manganese-, and zirconium-doped NPs, also have radically different hydrolytic stabilities. To conclude, the degradability and clearance timelines of various siliceous nanomaterials are compared and it is highlighted that researchers can select a specific nanomaterial in this large family according to the targeted applications and the required clearance kinetics.
硅基纳米材料的生物相关降解性和清除率已在全球范围内受到质疑,因为它们是成功转化为临床应用的关键前提。通常,介孔硅纳米颗粒(MSNs)的降解性和生物相容性一直是研究界讨论的热点。之所以会有这样的担忧,是因为已批准的药物产品不能在人体内积聚,以防止严重和不可预测的副作用。本文全面总结了硅基和硅基纳米颗粒(NPs)的生物相关降解性和清除率。描述了尺寸、形态、表面积、孔径和表面官能团等因素对硅和二氧化硅 NPs 降解性的影响。然后描述了硅和二氧化硅的非共价有机掺杂,以及水解稳定或氧化还原和酶切可裂解的硅倍半氧烷的共价掺入,用于有机硅、桥联硅倍半氧烷(BS)和周期性介孔有机硅(PMO)NPs。此外,像钙、铁、锰和锆掺杂 NPs 等无机掺杂的二氧化硅颗粒,也具有截然不同的水解稳定性。总之,对各种硅基纳米材料的降解性和清除时间进行了比较,并强调研究人员可以根据目标应用和所需的清除动力学,从这个大家族中选择特定的纳米材料。