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Integrating pathway knowledge with deep neural networks to reduce the dimensionality in single-cell RNA-seq data.

Pelin GundogduCarlos LouceraInmaculada Alamo-AlvarezJoaquín DopazoIsabel Nepomuceno
Published in: BioData mining (2022)
Here we demonstrate how the integration of pathways, which convey fundamental information on functional relationships between genes, with DNNs, that provide an excellent classification framework, results in an excellent alternative to learn a biologically meaningful representation of scRNA-seq data. In addition, the introduction of prior biological knowledge in the DNN reduces the size of the network architecture. Comparative results demonstrate a superior performance of this approach with respect to other similar approaches. As an additional advantage, the use of pathways within the DNN structure enables easy interpretability of the results by connecting features to cell functionalities by means of the pathway nodes, as demonstrated with an example with human melanoma tumor cells.
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