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Image-based analysis of living mammalian cells using label-free 3D refractive index maps reveals new organelle dynamics and dry mass flux

Authors :
Mathieu Frechin
Christopher Claude Giuseppe Tremblay
Patrick A. Sandoz
Gisou van der Goot
Source :
PLoS Biology, PLoS Biology, Vol 17, Iss 12, p e3000553 (2019)
Publication Year :
2019
Publisher :
Public Library of Science (PLoS), 2019.

Abstract

Holo-tomographic microscopy (HTM) is a label-free microscopy method reporting the fine changes of a cell’s refractive indices (RIs) in three dimensions at high spatial and temporal resolution. By combining HTM with epifluorescence, we demonstrate that mammalian cellular organelles such as lipid droplets (LDs) and mitochondria show specific RI 3D patterns. To go further, we developed a computer-vision strategy using FIJI, CellProfiler3 (CP3), and custom code that allows us to use the fine images obtained by HTM in quantitative approaches. We could observe the shape and dry mass dynamics of LDs, endocytic structures, and entire cells’ division that have so far, to the best of our knowledge, been out of reach. We finally took advantage of the capacity of HTM to capture the motion of many organelles at the same time to report a multiorganelle spinning phenomenon and study its dynamic properties using pattern matching and homography analysis. This work demonstrates that HTM gives access to an uncharted field of biological dynamics and describes a unique set of simple computer-vision strategies that can be broadly used to quantify HTM images.<br />A combination of holo-tomographic microscopy and computer vision allows the label-free observation of novel shape and dry mass dynamics of mammalian organelles such as lipid droplets and the investigation of complex organellar motion using pattern matching and homography analysis.

Details

ISSN :
15457885
Volume :
17
Database :
OpenAIRE
Journal :
PLOS Biology
Accession number :
edsair.doi.dedup.....07b661ecfce7786413dcfb8128ce94f3
Full Text :
https://doi.org/10.1371/journal.pbio.3000553