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逐像素荧光自荧光校正的 FRET 在荧光显微镜中提高了具有空间变化的荧光自荧光比信号的样品的准确性。

Pixel-by-pixel autofluorescence corrected FRET in fluorescence microscopy improves accuracy for samples with spatially varied autofluorescence to signal ratio.

机构信息

Department of Biophysics and Cell Biology, Faculty of Medicine, University of Debrecen, Egyetem tér 1, Debrecen, 4032, Hungary.

ELKH-DE Cell Biology and Signaling Research Group, Faculty of Medicine, University of Debrecen, Egyetem tér 1, Debrecen, 4032, Hungary.

出版信息

Sci Rep. 2023 Feb 20;13(1):2934. doi: 10.1038/s41598-023-30098-w.

Abstract

The actual interaction between signaling species in cellular processes is often more important than their expression levels. Förster resonance energy transfer (FRET) is a popular tool for studying molecular interactions, since it is highly sensitive to proximity in the range of 2-10 nm. Spectral spillover-corrected quantitative (3-cube) FRET is a cost effective and versatile approach, which can be applied in flow cytometry and various modalities of fluorescence microscopy, but may be hampered by varying levels of autofluorescence. Here, we have implemented pixel-by-pixel autofluorescence correction in microscopy FRET measurements, exploiting cell-free calibration standards void of autofluorescence that allow the correct determination of all spectral spillover factors. We also present an ImageJ/Fiji plugin for interactive analysis of single images as well as automatic creation of quantitative FRET efficiency maps from large image sets. For validation, we used bead and cell based FRET models covering a range of signal to autofluorescence ratios and FRET efficiencies and compared the approach with conventional average autofluorescence/background correction. Pixel-by-pixel autofluorescence correction proved to be superior in the accuracy of results, particularly for samples with spatially varying autofluorescence and low fluorescence to autofluorescence ratios, the latter often being the case for physiological expression levels.

摘要

细胞过程中信号物种的实际相互作用通常比它们的表达水平更为重要。Förster 共振能量转移(FRET)是研究分子相互作用的常用工具,因为它对 2-10nm 范围内的接近度非常敏感。光谱溢出校正的定量(3 立方)FRET 是一种具有成本效益和多功能的方法,可应用于流式细胞术和各种荧光显微镜模式,但可能会受到自发荧光变化水平的影响。在这里,我们在显微镜 FRET 测量中实现了逐像素的自发荧光校正,利用无自发荧光的细胞外校准标准,可以正确确定所有光谱溢出因子。我们还介绍了一个用于交互式分析单个图像以及从大型图像集自动创建定量 FRET 效率图的 ImageJ/Fiji 插件。为了验证,我们使用了涵盖信号与自发荧光比和 FRET 效率范围的珠状和基于细胞的 FRET 模型,并将该方法与传统的平均自发荧光/背景校正进行了比较。逐像素的自发荧光校正证明在结果的准确性方面更优越,特别是对于具有空间变化的自发荧光和低荧光与自发荧光比的样本,后者通常是生理表达水平的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f55f/9941493/9e5e356a9145/41598_2023_30098_Fig1_HTML.jpg

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