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可生物降解的二氧化硅基纳米颗粒:溶解动力学与选择性键断裂

Biodegradable Silica-Based Nanoparticles: Dissolution Kinetics and Selective Bond Cleavage.

作者信息

Croissant Jonas G, Brinker C Jeffrey

机构信息

Chemical and Biological Engineering, University of New Mexico, Albuquerque, NM, United States; Center for Micro-Engineered Materials, Advanced Materials Laboratory, University of New Mexico, Albuquerque, NM, United States.

Chemical and Biological Engineering, University of New Mexico, Albuquerque, NM, United States; Center for Micro-Engineered Materials, Advanced Materials Laboratory, University of New Mexico, Albuquerque, NM, United States.

出版信息

Enzymes. 2018;43:181-214. doi: 10.1016/bs.enz.2018.07.008. Epub 2018 Sep 13.

Abstract

Silica-based nanomaterials are extensively used in industrial applications and academic biomedical research, thus properly assessing their toxicity and biodegradability is essential for their safe and effective formulation and use. Unfortunately, there is often a lot of confusion in the literature with respect to the toxicity and biodegradability of silica since various studies have yielded contradictory results. In this contribution, we first endeavor to underscore that the simplistic model of silica should be discarded in favor of a more realistic model recognizing that all silicas are not created equal and should thus be considered in the plural as silicas and silica hybrids, which indeed hold various biocompatibility and biodegradability profiles. We then demonstrated that all silicas are-as displayed in Nature-degradable in water by dissolution, as governed by the laws of kinetics. Lastly, we explore the vast potential of tuning the degradability of silica by materials design using various silica hybrids for redox-, pH-, enzymatic-, and biochelation-mediated lysis mechanisms.

摘要

基于二氧化硅的纳米材料广泛应用于工业领域和学术生物医学研究,因此,正确评估其毒性和生物降解性对于其安全有效的配方设计和使用至关重要。不幸的是,由于各种研究得出了相互矛盾的结果,文献中关于二氧化硅的毒性和生物降解性常常存在很多混淆。在本论文中,我们首先强调应摒弃简单化的二氧化硅模型,转而采用更现实的模型,即认识到并非所有二氧化硅都是相同的,因此应将其视为复数形式的二氧化硅和二氧化硅杂化物,它们确实具有各种生物相容性和生物降解性特征。然后我们证明,正如在自然界中所显示的那样,所有二氧化硅都可通过溶解在水中降解,这受动力学定律支配。最后,我们探索了通过材料设计,利用各种二氧化硅杂化物实现氧化还原、pH、酶和生物螯合介导的裂解机制来调节二氧化硅降解性的巨大潜力。

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