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通用的荧光纳米金刚石内化进入细胞的转化方案。

Generally Applicable Transformation Protocols for Fluorescent Nanodiamond Internalization into Cells.

机构信息

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

European Research Institute for the Biology of Ageing, University of Groningen, University Medical Center Groningen, Antonius Deusinglaan 1, 9713 AW, Groningen, Netherlands.

出版信息

Sci Rep. 2017 Jul 19;7(1):5862. doi: 10.1038/s41598-017-06180-5.

Abstract

Fluorescent nanodiamonds (FNDs) are promising nanoprobes, owing to their stable and magnetosensitive fluorescence. Therefore they can probe properties as magnetic resonances, pressure, temperature or strain. The unprecedented sensitivity of diamond defects can detect the faint magnetic resonance of a single electron or even a few nuclear spins. However, these sensitivities are only achieved if the diamond probe is close to the molecules that need to be detected. In order to utilize its full potential for biological applications, the diamond particle has to enter the cell. Some model systems, like HeLa cells, readily ingest particles. However, most cells do not show this behavior. In this article we show for the first time generally applicable methods, which are able to transport fluorescent nanodiamonds into cells with a thick cell wall. Yeast cells, in particular Saccharomyces cerevisiae, are a favored model organism to study intracellular processes including aging on a cellular level. In order to introduce FNDs in these cells, we evaluated electrical transformation and conditions of chemical permeabilization for uptake efficiency and viability. 5% DMSO (dimethyl sulfoxide) in combination with optimized chemical transformation mix leads to high uptake efficiency in combination with low impact on cell biology. We have evaluated all steps in the procedure.

摘要

荧光纳米金刚石(FNDs)是一种很有前途的纳米探针,因为它们具有稳定和磁敏荧光。因此,它们可以探测磁共振、压力、温度或应变等特性。钻石缺陷的空前灵敏度可以检测到单个电子甚至少数核自旋的微弱磁共振。然而,如果要实现这些灵敏度,就必须将钻石探针靠近需要探测的分子。为了充分发挥其在生物应用中的潜力,金刚石颗粒必须进入细胞。一些模型系统,如 HeLa 细胞,很容易摄取颗粒。然而,大多数细胞并不表现出这种行为。在本文中,我们首次展示了一般适用的方法,这些方法能够将荧光纳米金刚石输送到具有厚细胞壁的细胞中。酵母细胞,特别是酿酒酵母,是研究包括衰老在内的细胞内过程的首选模式生物。为了将 FNDs 引入这些细胞,我们评估了电转化和化学渗透条件对摄取效率和细胞活力的影响。5%的 DMSO(二甲基亚砜)与优化的化学转化混合物结合使用,可以在不影响细胞生物学的情况下,实现高的摄取效率。我们已经评估了该过程的所有步骤。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db63/5517665/1915e352f0f8/41598_2017_6180_Fig1_HTML.jpg

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