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PECAn, a pipeline for image processing and statistical analysis of complex mosaic 3D tissues

Authors :
Eugenia Piddini
Paul F. Langton
Michael E. Baumgartner
Mastrogiannopoulos A
Logeay R
Publication Year :
2021
Publisher :
Cold Spring Harbor Laboratory, 2021.

Abstract

Investigating organ biology requires sophisticated methodologies to induce genetically distinct clones within a tissue. Microscopic analysis of such samples produces information-rich 3D images. However, the 3D nature and spatial anisotropy of clones makes sample analysis challenging and slow and limits the amount of information that can be extracted manually. Here we have developed a pipeline for image processing and statistical data analysis which automatically extracts sophisticated parameters from complex multi-genotype 3D images. The pipeline includes data handling, machine-learning-enabled segmentation, multivariant statistical analysis, and graph generation. This enables researchers to run rigorous analyses on images and videos at scale and in a fraction of the time, without requiring programming skills. We demonstrate the power of this pipeline by applying it to the study of Minute cell competition. We find an unappreciated sexual dimorphism in Minute competition and identify, by statistical regression analysis, tissue parameters that model and predict competitive death.

Details

Database :
OpenAIRE
Accession number :
edsair.doi...........2152e551140fd910fb86cbd7c61ecb76
Full Text :
https://doi.org/10.1101/2021.07.06.451317