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  4. Deep learning approach for quantification of organelles and misfolded polypeptide delivery within degradative compartments
 
research article

Deep learning approach for quantification of organelles and misfolded polypeptide delivery within degradative compartments

Morone, Diego
•
Marazza, Alessandro
•
Bergmann, Timothy J.
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July 1, 2020
Molecular Biology Of The Cell

Endolysosomal compartments maintain cellular fitness by clearing dysfunctional organelles and proteins from cells. Modulation of their activity offers therapeutic opportunities. Quantification of cargo delivery to and/or accumulation within endolysosomes is instrumental for characterizing lysosome-driven pathways at the molecular level and monitoring consequences of genetic or environmental modifications. Here we introduce LysoQuant, a deep learning approach for segmentation and classification of fluorescence images capturing cargo delivery within endolysosomes for clearance. LysoQuant is trained for unbiased and rapid recognition with human-level accuracy, and the pipeline informs on a series of quantitative parameters such as endolysosome number, size, shape, position within cells, and occupancy, which report on activity of lysosome-driven pathways. In our selected examples, LysoQuant successfully determines the magnitude of mechanistically distinct catabolic pathways that ensure lysosomal clearance of a model organelle, the endoplasmic reticulum, and of a model protein, polymerogenic ATZ. It does so with accuracy and velocity compatible with those of high-throughput analyses.

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Type
research article
DOI
10.1091/mbc.E20-04-0269
Web of Science ID

WOS:000550146200006

Author(s)
Morone, Diego
Marazza, Alessandro
Bergmann, Timothy J.
Molinari, Maurizio  
Date Issued

2020-07-01

Published in
Molecular Biology Of The Cell
Volume

31

Issue

14

Start page

1512

End page

1524

Subjects

Cell Biology

•

endoplasmic-reticulum turnover

•

alpha-1-antitrypsin deficiency

•

subcellular structures

•

autophagy

•

segmentation

•

cirrhosis

Note

Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0).

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GHI  
Available on Infoscience
August 30, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/170503
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