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Updated: Aug 5, 2026

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Cell-Specific Paired Interrogation of the Mouse Ovarian Epigenome and Transcriptome
Published on: February 24, 2023
Cell type-specific dissection of cell death programs during ovarian aging
Ruizhe Wang1, Di Wu2, Sheng Li3
1Department of Gynecology, The First Affiliated Hospital of China Medical University, No. 155 Nanjing North Street, Heping District, Shenyang 110001, Liaoning Province, P.R. China.
Briefings in Bioinformatics
|July 30, 2026
Summary
DeepMCD accurately deconvolves cell types and cell death fractions from bulk RNA-seq data, revealing age-associated changes in ovarian aging and potential biomarkers for fibrosis.
Area of Science:
- Computational biology
- Genomics
- Bioinformatics
Background:
- Bulk transcriptomics analysis often conflates cell identity with physiological state, hindering the study of complex processes like ovarian aging.
- Accurate deconvolution of cell-type proportions and cell death fractions is crucial for understanding microenvironmental dynamics.
Purpose of the Study:
- To develop DeepMCD, a deep learning framework for simultaneous deconvolution of cell-type proportions and programmed cell death (PCD) fractions from bulk RNA-seq data.
- To leverage cellular context for improved PCD prediction and to analyze ovarian aging.
Main Methods:
- DeepMCD utilizes an end-to-end multi-task deep learning framework with a Transformer-based cross-task attention mechanism.
- It maps high-dimensional expression profiles into a shared latent space and employs adaptive uncertainty-weighting for balanced optimization.
- The framework was benchmarked against state-of-the-art algorithms and applied to mouse ovarian aging data.
Main Results:
- DeepMCD significantly outperforms existing single-task algorithms in deconvolution accuracy.
- Analysis of mouse ovarian aging revealed an age-associated increase in inflammatory and lytic death modalities, with pyroptosis linked to macrophage enrichment.
- DeepMCD-derived PCD fractions showed strong correlations with ovarian fibrosis-related genes.
Conclusions:
- DeepMCD provides a robust and scalable computational tool for decoding bulk RNA-seq data, enabling cell-type-specific analysis of programmed cell death.
- The identified signatures may serve as cost-effective digital biomarkers for ovarian fibrosis and reproductive senescence.
- The study highlights the importance of cell-type context in functional death states.
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