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研究纳米颗粒在小鼠巨噬细胞溶酶体中共定位的方法中的陷阱。

Pitfalls in methods to study colocalization of nanoparticles in mouse macrophage lysosomes.

机构信息

Adolphe Merkle Institute, University of Fribourg, Fribourg, Switzerland.

International Iberian Nanotechnology Laboratory, Braga, Portugal.

出版信息

J Nanobiotechnology. 2022 Oct 29;20(1):464. doi: 10.1186/s12951-022-01670-9.

Abstract

BACKGROUND

In the field of nanoscience there is an increasing interest to follow dynamics of nanoparticles (NP) in cells with an emphasis on endo-lysosomal pathways and long-term NP fate. During our research on this topic, we encountered several pitfalls, which can bias the experimental outcome. We address some of these pitfalls and suggest possible solutions. The accuracy of fluorescence microscopy methods has an important role in obtaining insights into NP interactions with lysosomes at the single cell level including quantification of NP uptake in a specific cell type.

METHODS

Here we use J774A.1 cells as a model for professional phagocytes. We expose them to fluorescently-labelled amorphous silica NP with different sizes and quantify the colocalization of fluorescently-labelled NP with lysosomes over time. We focus on confocal laser scanning microscopy (CLSM) to obtain 3D spatial information and follow live cell imaging to study NP colocalization with lysosomes.

RESULTS

We evaluate different experimental parameters that can bias the colocalization coefficients (i.e., Pearson's and Manders'), such as the interference of phenol red in the cell culture medium with the fluorescence intensity and image post-processing (effect of spatial resolution, optical slice thickness, pixel saturation and bit depth). Additionally, we determine the correlation coefficients for NP entering the lysosomes under four different experimental set-ups. First, we found out that not only Pearson's, but also Manders' correlation coefficient should be considered in lysosome-NP colocalization studies; second, there is a difference in NP colocalization when using NP of different sizes and fluorescence dyes and last, the correlation coefficients might change depending on live-cell and fixed-cell imaging set-up.

CONCLUSIONS

The results summarize detailed steps and recommendations for the experimental design, staining, sample preparation and imaging to improve the reproducibility of colocalization studies between the NP and lysosomes.

摘要

背景

在纳米科学领域,人们越来越关注纳米粒子(NP)在细胞内的动力学,重点是内体-溶酶体途径和 NP 的长期命运。在我们对这个主题的研究中,我们遇到了几个陷阱,这些陷阱可能会影响实验结果。我们解决了其中的一些陷阱,并提出了可能的解决方案。荧光显微镜方法的准确性在获得有关 NP 与溶酶体相互作用的深入了解方面起着重要作用,包括定量特定细胞类型中 NP 的摄取。

方法

在这里,我们使用 J774A.1 细胞作为专业吞噬细胞的模型。我们将其暴露于不同大小的荧光标记无定形二氧化硅 NP 中,并随时间定量荧光标记 NP 与溶酶体的共定位。我们专注于共聚焦激光扫描显微镜(CLSM)以获得 3D 空间信息,并进行活细胞成像以研究 NP 与溶酶体的共定位。

结果

我们评估了可能会影响共定位系数(即 Pearson 和 Manders')的不同实验参数,例如细胞培养基中的酚红对荧光强度的干扰以及图像后处理(空间分辨率、光学切片厚度、像素饱和和位深度的影响)。此外,我们确定了在四种不同实验设置下 NP 进入溶酶体的相关系数。首先,我们发现不仅应该考虑 Pearson,还应该考虑 Manders'相关系数用于溶酶体-NP 共定位研究;其次,当使用不同大小和荧光染料的 NP 时,NP 的共定位存在差异,最后,相关系数可能会根据活细胞和固定细胞成像设置而变化。

结论

这些结果总结了实验设计、染色、样品制备和成像的详细步骤和建议,以提高 NP 与溶酶体之间共定位研究的可重复性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/83d5/9618187/a98fe7fd8591/12951_2022_1670_Fig1_HTML.jpg

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