Segos Ioannis, Van Eeckhoven Jens, Greig Alan, Redd Michael, Thrasivoulou Christopher, Conradt Barbara
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引用次数: 0
摘要
超分辨率(SR)三维渲染技术可对细胞内结构进行出色的定量分析,但该技术在很大程度上仅限于固定或体外样本。在此,我们开发了一种方法,对线粒体在优雅类幼虫胚后发育过程中进行 SR 实时成像。我们的工作流程包括使用聚苯乙烯纳米吸附剂对动物进行无药物机械固定,这种方法以前从未用于体内 SR 成像。基于移动物体的对齐和基于全局阈值的图像分割,我们的方法实现了单个线粒体的高效三维重建。我们首次证明,荧光强度的频率分布不受光漂白的影响,而且仅靠全局阈值就能定量比较线粒体的时间序列。我们的复合方法大大改进了对线粒体在胚后发育过程中的生物结构和过程的研究。此外,图像分割不需要事先对荧光显微镜中的一个基本问题--光漂白进行任何校正,这一发现将对定量研究任何生物系统中细胞器和其他细胞内区室动态的实验策略产生影响。
Impact of photobleaching on quantitative, spatio-temporal, super-resolution imaging of mitochondria in live C. elegans larvae
Super-resolution (SR) 3D rendering allows superior quantitative analysis of intracellular structures but has largely been limited to fixed or ex vivo samples. Here we developed a method to perform SR live imaging of mitochondria during post-embryonic development of C. elegans larvae. Our workflow includes the drug-free mechanical immobilisation of animals using polystyrene nanobeads, which has previously not been used for in vivo SR imaging. Based on the alignment of moving objects and global threshold-based image segmentation, our method enables an efficient 3D reconstruction of individual mitochondria. We demonstrate for the first time that the frequency distribution of fluorescence intensities is not affected by photobleaching, and that global thresholding alone enables the quantitative comparison of mitochondria along timeseries. Our composite approach significantly improves the study of biological structures and processes in SR during C. elegans post-embryonic development. Furthermore, the discovery that image segmentation does not require any prior correction against photobleaching, a fundamental problem in fluorescence microscopy, will impact experimental strategies aimed at quantitatively studying the dynamics of organelles and other intracellular compartments in any biological system.