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蛋白质-纳米颗粒相互作用控制着聚合物纳米凝胶的界面行为:空气/水界面处蛋白质冠形成的研究。

Protein-Nanoparticle Interactions Govern the Interfacial Behavior of Polymeric Nanogels: Study of Protein Corona Formation at the Air/Water Interface.

机构信息

Department of Chemistry, SPCS, Queen Mary University of London, London E1 4NS, UK.

CNC-Center for Neuroscience and Cell Biology, University of Coimbra, UC, Biotech Parque Tecnológico de Cantanhede, 3060-197 Coimbra, Portugal.

出版信息

Int J Mol Sci. 2023 Feb 1;24(3):2810. doi: 10.3390/ijms24032810.

Abstract

Biomedical applications of nanoparticles require a fundamental understanding of their interactions and behavior with biological interfaces. Protein corona formation can alter the morphology and properties of nanomaterials, and knowledge of the interfacial behavior of the complexes, using in situ analytical techniques, will impact the development of nanocarriers to maximize uptake and permeability at cellular interfaces. In this study we evaluate the interactions of acrylamide-based nanogels, with neutral, positive, and negative charges, with serum-abundant proteins albumin, fibrinogen, and immunoglobulin G. The formation of a protein corona complex between positively charged nanoparticles and albumin is characterized by dynamic light scattering, circular dichroism, and surface tensiometry; we use neutron reflectometry to resolve the complex structure at the air/water interface and demonstrate the effect of increased protein concentration on the interface. Surface tensiometry data suggest that the structure of the proteins can impact the interfacial properties of the complex formed. These results contribute to the understanding of the factors that influence the bio-nano interface, which will help to design nanomaterials with improved properties for applications in drug delivery.

摘要

纳米粒子在生物医学方面的应用需要深入了解它们与生物界面的相互作用和行为。蛋白质冠的形成可以改变纳米材料的形态和性质,而使用原位分析技术了解复合物的界面行为,将影响纳米载体的发展,以最大限度地提高细胞界面的摄取和通透性。在这项研究中,我们评估了带正电荷、负电荷和中性电荷的丙烯酰胺基纳米凝胶与血清中丰富的蛋白质白蛋白、纤维蛋白原和免疫球蛋白 G 的相互作用。通过动态光散射、圆二色性和表面张力计来表征带正电荷的纳米粒子与白蛋白之间形成的蛋白质冠复合物;我们使用中子反射技术在空气/水界面上解析复合物的结构,并证明了蛋白质浓度增加对界面的影响。表面张力计数据表明,蛋白质的结构可以影响形成的复合物的界面性质。这些结果有助于理解影响生物-纳米界面的因素,这将有助于设计具有改进性能的纳米材料,用于药物输送等应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3b9/9917661/95a8fc71b28e/ijms-24-02810-sch001.jpg

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