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Mapping the Emergent Spatial Organization of Mammalian Cells using Micropatterns and Quantitative Imaging
Published on: April 30, 2019
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A deep generative model of 3D single-cell organization.
Rory M Donovan-Maiye1, Jackson M Brown1, Caleb K Chan1
1Allen Institute for Cell Science, Seattle, Washington, United States of America.
Plos Computational Biology
|January 18, 2022
Summary
We developed a new computational framework using stacked conditional beta-variational autoencoders to model 3D cell images. This approach accurately predicts subcellular structure locations and quantifies variations, aiding drug discovery research.
Area of Science:
- Computational Biology
- Biophysics
- Image Analysis
Background:
- Accurate modeling of subcellular structures is crucial for understanding cell biology.
- Existing methods often struggle with 3D, multi-channel fluorescent image data and diverse structures.
Purpose of the Study:
- To introduce a flexible, end-to-end integrative modeling framework for 3D single-cell multi-channel fluorescent image data.
- To enable prediction of subcellular structure localization and quantification of spatial variations.
Main Methods:
- Utilized stacked conditional beta-variational autoencoders (β-VAEs) to learn latent representations of cell morphology and subcellular structure localization.
- Developed a model adaptable to various subcellular structures, sparsity levels, and reconstruction fidelities.
- Trained the model on 3D cell image data and explored design trade-offs in 2D.
Main Results:
- The trained model successfully predicts plausible locations of imaged structures in cells.
- The framework quantifies variations in subcellular structure locations by generating plausible instantiations.
- Demonstrated applicability to new data, including a drug perturbation screen, showing distinct latent representations for drugged vs. unperturbed cells.
Conclusions:
- The proposed framework offers a powerful tool for integrative modeling of complex 3D cell image data.
- The model's ability to predict and quantify subcellular structures has implications for high-throughput screening and drug discovery.
- Latent space analysis reveals expected on-target effects of drug perturbations on cellular structures.
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