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载银聚乙烯吡咯烷酮纳米粒子-生物相关条件下空间稳定的胶体、化学和生物学后果。

Polyvinyl-Pyrrolidone-Coated Silver Nanoparticles-The Colloidal, Chemical, and Biological Consequences of Steric Stabilization under Biorelevant Conditions.

机构信息

Department of Applied and Environmental Chemistry, Faculty of Science and Informatics, University of Szeged, H-6720 Szeged, Hungary.

Department of Biochemistry and Molecular Biology, Faculty of Science and Informatics, University of Szeged, H-6726 Szeged, Hungary.

出版信息

Int J Mol Sci. 2021 Aug 12;22(16):8673. doi: 10.3390/ijms22168673.

Abstract

(1) Background: Several properties of silver nanoparticles (AgNPs), such as cytotoxic, anticancer, and antimicrobial activities, have been subjects of intense research; however, important aspects such as nanoparticle aggregation are generally neglected, although a decline in colloidal stability leads to a loss of the desired biological activities. Colloidal stability is affected by pH, ionic strength, or a plethora of biomolecules that interact with AgNPs under biorelevant conditions. (2) Methods: As only a few studies have focused on the relationship between aggregation behavior and the biological properties of AgNPs, here, we have systematically evaluated this issue by completing a thorough analysis of sterically (via polyvinyl-pyrrolidone (PVP)) stabilized AgNPs that were subjected to different circumstances. We assessed ultraviolet-visible light absorption, dynamic light scattering, zeta potential measurements, in vitro cell viability, and microdilution assays to screen both colloidal stability as well as bioactivity. (3) Results: The results revealed that although PVP provided outstanding biorelevant colloidal stability, the chemical stability of AgNPs could not be maintained completely with this capping material. (4) Conclusion: These unexpected findings led to the realization that stabilizing materials have more profound importance in association with biorelevant applications of nanomaterials than just being simple colloidal stabilizers.

摘要

(1) 背景:银纳米粒子(AgNPs)具有细胞毒性、抗癌和抗菌等多种特性,这已成为研究热点;然而,纳米粒子聚集等重要方面通常被忽视,尽管胶体稳定性下降会导致所需生物活性丧失。胶体稳定性受 pH 值、离子强度或与 AgNPs 在生物相关条件下相互作用的大量生物分子的影响。(2) 方法:由于只有少数研究集中在聚集行为与 AgNPs 生物特性之间的关系上,因此,我们通过对不同情况下受空间位阻稳定(通过聚乙烯吡咯烷酮(PVP))稳定的 AgNPs 进行全面分析,系统地评估了这个问题。我们评估了紫外-可见吸收、动态光散射、zeta 电位测量、体外细胞活力和微量稀释测定,以筛选胶体稳定性和生物活性。(3) 结果:结果表明,尽管 PVP 提供了出色的生物相关胶体稳定性,但这种封端材料并不能完全保持 AgNPs 的化学稳定性。(4) 结论:这些意外的发现使我们意识到,稳定材料在与纳米材料的生物相关应用相关联时,比仅仅作为简单的胶体稳定剂具有更深远的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1bb8/8395525/d51a9410089e/ijms-22-08673-g001.jpg

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