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Ihuan Gunawan1,2, Felix V Kohane1, Moumitha Dey1

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This study introduces the Extensible Immunofluorescence (ExIF) framework, enabling deep learning to virtually label unlimited molecular markers from standard 4-plex imaging. This approach enhances single-cell analysis and quantitative insights into complex biological processes like epithelial-mesenchymal transition.

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Area of Science:

  • Single-cell biology
  • Biotechnology
  • Computational biology

Background:

  • Standard immunofluorescence imaging is limited to ~4 molecular markers per cell.
  • Dissecting complex cellular biology requires higher multiplexity.
  • Existing multiplexed labeling methods have limited uptake.

Purpose of the Study:

  • To introduce the Extensible Immunofluorescence (ExIF) framework.
  • To enable theoretically unlimited marker multiplexity from standard 4-plex immunofluorescence.
  • To facilitate integrated analyses of complex cell biology.

Main Methods:

  • Developed a generative deep learning-based virtual labeling approach.
  • Designed easily produced 4-plex immunofluorescence panels.
  • Transformed 4-plex data into a unified dataset with high marker plexity.

Main Results:

  • Exemplified ExIF through interrogation of the epithelial-mesenchymal transition (EMT).
  • Achieved significant improvements in downstream quantitative analyses.
  • Enabled classification of cell phenotypes, manifold learning of heterogeneity, and pseudotemporal inference of marker dynamics.

Conclusions:

  • ExIF empowers life scientists to quantitatively interrogate complex, multimolecular single-cell processes.
  • The framework approaches the performance of limited-uptake multiplexed labeling methods.
  • Introduced data integration concepts from omics to microscopy for enhanced biological insights.