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荧光纳米金刚石探针与细胞介质的相互作用。

The interaction of fluorescent nanodiamond probes with cellular media.

机构信息

Department of Biomedical Engineering Antonius Deusinglaan 1, University Medical Center Groningen, Groningen University, 9713 AW Groningen, Netherlands.

出版信息

Mikrochim Acta. 2017;184(4):1001-1009. doi: 10.1007/s00604-017-2086-6. Epub 2017 Jan 27.

Abstract

Fluorescent nanodiamonds (FNDs) are promising tools to image cells, bioanalytes and physical quantities such as temperature, pressure, and electric or magnetic fields with nanometer resolution. To exploit their potential for intracellular applications, the FNDs have to be brought into contact with cell culture media. The interactions between the medium and the diamonds crucially influence sensitivity as well as the ability to enter cells. The authors demonstrate that certain proteins and salts spontaneously adhere to the FNDs and may cause aggregation. This is a first investigation on the fundamental questions on how (a) FNDs interact with the medium, and (b) which proteins and salts are being attracted. A differentiation between strongly binding and weakly binding proteins is made. Not all proteins participate in the formation of FND aggregates. Surprisingly, some main components in the medium seem to play no role in aggregation. Simple strategies to prevent aggregation are discussed. These include adding the proteins, which are naturally present in the cell culture to the diamonds first and then inserting them in the full medium. Graphical abstractSchematic of the interaction of nanodiamonds with cell culture medium. Certain proteins and salts adhere to the diamond surface and lead to aggregation or to formation of a protein corona.

摘要

荧光纳米金刚石(FNDs)是一种很有前途的工具,可用于以纳米分辨率对细胞、生物分析物以及温度、压力、电场和磁场等物理量进行成像。为了开发其在细胞内应用的潜力,必须将 FNDs 与细胞培养基接触。介质与金刚石之间的相互作用对灵敏度以及进入细胞的能力有至关重要的影响。作者证明某些蛋白质和盐会自发地附着在 FNDs 上并可能导致聚集。这是首次对以下基本问题进行的研究:(a) FNDs 如何与介质相互作用,以及 (b) 哪些蛋白质和盐被吸引。区分了强结合蛋白和弱结合蛋白。并非所有蛋白质都参与 FND 聚集体的形成。令人惊讶的是,介质中的一些主要成分似乎在聚集过程中不起作用。讨论了防止聚集的简单策略。这些策略包括先将天然存在于细胞培养基中的蛋白质添加到钻石上,然后再将其插入完全培养基中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/456c/5346409/69e1acd8b034/604_2017_2086_Figa_HTML.jpg

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