Institute of Toxicology and Genetics, Karlsruhe Institute of Technology, Campus North, Hermann-von-Helmholtz-Platz 1, D-76344, Eggenstein-Leopoldshafen, Germany.
School of Food Safety, College of Nutrition, Taipei Medical University, Taipei, Taiwan.
Small. 2019 Mar;15(10):e1805400. doi: 10.1002/smll.201805400. Epub 2019 Feb 5.
Here, amorphous silica nanoparticles (NPs), one of the most abundant nanomaterials, are used as an example to illustrate the utmost importance of surface coverage by functional groups which critically determines biocompatibility. Silica NPs are functionalized with increasing amounts of amino groups, and the number of surface exposed groups is quantified and characterized by detailed NMR and fluorescamine binding studies. Subsequent biocompatibility studies in the absence of serum demonstrate that, irrespective of surface modification, both plain and amine-modified silica NPs trigger cell death in RAW 264.7 macrophages. The in vitro results can be confirmed in vivo and are predictive for the inflammatory potential in murine lungs. In the presence of serum proteins, on the other hand, a replacement of only 10% of surface-active silanol groups by amines is sufficient to suppress cytotoxicity, emphasizing the relevance of exposure conditions. Mechanistic investigations identify a key role of lysosomal injury for cytotoxicity only in the presence, but not in the absence, of serum proteins. In conclusion, this work shows the critical need to rigorously characterize the surface coverage of NPs by their constituent functional groups, as well as the impact of serum, to reliably establish quantitative nanostructure activity relationships and develop safe nanomaterials.
这里,以无定形二氧化硅纳米颗粒(NPs)为例来说明表面官能团覆盖率的重要性,它对生物相容性起着关键作用。通过增加氨基数量对二氧化硅 NPs 进行功能化,通过详细的 NMR 和荧光胺结合研究对表面暴露的官能团数量进行定量和表征。随后在没有血清的情况下进行的生物相容性研究表明,无论表面修饰如何,普通和氨基修饰的二氧化硅 NPs 都会触发 RAW 264.7 巨噬细胞死亡。体外结果可以在体内得到证实,并可预测在小鼠肺部的炎症潜力。另一方面,在存在血清蛋白的情况下,只需用胺取代 10%的表面活性硅醇基团就足以抑制细胞毒性,这强调了暴露条件的相关性。机制研究表明,溶酶体损伤对于细胞毒性的关键作用仅在存在血清蛋白的情况下,而不存在血清蛋白的情况下则没有。总之,这项工作表明,严格表征 NPs 由其组成官能团的表面覆盖率以及血清的影响的必要性,以可靠地建立定量纳米结构-活性关系并开发安全的纳米材料。