Determining the age of single cells using scBayesAge
Hu, C.; Pellegrini, M.
Show abstract
Aging is a complex biological process marked by a gradual decline in phys-iological function that contributes to increased vulnerability to disease and mortality. Numerous studies have investigated the cellular and molecular aspects of aging at single-cell resolution, yet the heterogeneity of cellular aging in an individual remains poorly understood. To enhance our ability to study aging at the single cell level, we developed a statistical framework to predict the age of individual cells based on their transcriptomic profiles. Our Bayesian approach estimates the most likely age of a cell given its read counts. We applied the model to data from Tabula Muris Senis and examined organ- and cell-type-specific transcriptomic signatures of aging. Compared with standard regression-based methods, our framework achieved higher pre-dictive accuracy. We show that scBayesAge is a powerful tool for dissecting the cellular heterogeneity of aging and age-related functional decline.
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