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Joint representation and visualization of derailed cell states with Decipher.

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Genome biology 2025 Vol.26(1) p. 219
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Nazaret A, Fan JL, Lavallée VP, Burdziak C, Cornish AE, Kiseliovas V

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Biological insights often depend on comparing conditions such as disease and health.

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APA Nazaret A, Fan JL, et al. (2025). Joint representation and visualization of derailed cell states with Decipher.. Genome biology, 26(1), 219. https://doi.org/10.1186/s13059-025-03682-8
MLA Nazaret A, et al.. "Joint representation and visualization of derailed cell states with Decipher.." Genome biology, vol. 26, no. 1, 2025, pp. 219.
PMID 40702544 ↗

Abstract

Biological insights often depend on comparing conditions such as disease and health. Yet, we lack effective computational tools for integrating single-cell genomics data across conditions or characterizing transitions from normal to deviant cell states. Here, we present Decipher, a deep generative model that characterizes derailed cell-state trajectories. Decipher jointly models and visualizes gene expression and cell state from normal and perturbed single-cell RNA-seq data, revealing shared and disrupted dynamics. We demonstrate its superior performance across diverse contexts, including in pancreatitis with oncogene mutation, acute myeloid leukemia, and gastric cancer.

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