Gunawan Cindy, Lim May, Marquis Christopher P, Amal Rose
ARC Centre of Excellence for Functional Nanomaterials, School of Chemical Engineering, The University of New South Wales, Sydney, NSW 2052, Australia.
J Mater Chem B. 2014 Apr 21;2(15):2060-2083. doi: 10.1039/c3tb21526a. Epub 2014 Mar 5.
Upon contact with plasma or other protein-containing biological fluids, the surface of nanoparticles is immediately decorated with proteins forming a biologically active protein corona. The biological fates and functions of nanoparticles are determined by physiological responses toward these nanoparticle-protein corona complexes as the effective biological unit of nanoparticles. In this article, we review representative studies on the effects of particle physicochemical characteristics along with the protein profiles in the biological medium on the formation of protein corona and importantly, how the dynamic nature and protein fingerprints of the formed corona govern the biological responses toward nanoparticles. The biological effects arising from the presence of protein corona can be both beneficial and unfavourable to the biomedical applications of nanoparticles. The protein corona-cell interactions open up the feasibility of targeted delivery and cell-specific uptake of therapeutic nanoparticles and in other circumstances, engineering of nanoparticles as adjuvants for vaccine development as well as mitigation of the unintentional cytotoxic effects of nanoparticles. On the other hand, the protein corona-cell interactions could induce rapid clearance of nanoparticles from in vivo circulation as well as activating unwanted inflammatory responses. Taken together, the knowledge on the formation and biological effects of protein corona enables tailored tuning of the physicochemical characteristics of nanoparticles, unique to their intended biological activity.
纳米颗粒表面一旦与血浆或其他含蛋白质的生物流体接触,会立即被蛋白质包裹,形成具有生物活性的蛋白质冠层。纳米颗粒的生物学命运和功能取决于对这些纳米颗粒-蛋白质冠层复合物的生理反应,这些复合物是纳米颗粒的有效生物学单元。在本文中,我们综述了具有代表性的研究,这些研究涉及颗粒的物理化学特性以及生物介质中的蛋白质谱对蛋白质冠层形成的影响,重要的是,所形成冠层的动态性质和蛋白质指纹图谱如何决定对纳米颗粒的生物学反应。蛋白质冠层的存在所产生的生物学效应对于纳米颗粒的生物医学应用可能既有益也不利。蛋白质冠层与细胞的相互作用为治疗性纳米颗粒的靶向递送和细胞特异性摄取提供了可行性,在其他情况下,还为将纳米颗粒设计为疫苗开发的佐剂以及减轻纳米颗粒的意外细胞毒性作用提供了可行性。另一方面,蛋白质冠层与细胞的相互作用可能会导致纳米颗粒从体内循环中快速清除,并引发不必要的炎症反应。综上所述,关于蛋白质冠层的形成及其生物学效应的知识能够根据纳米颗粒预期的生物学活性对其物理化学特性进行定制调节。
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