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Form follows function: Nuclear morphology as a quantifiable predictor of cellular senescence
Authors:Jakub Belhadj  Surina Surina  Markus Hengstschläger  Alexis J. Lomakin
Affiliation:1. Center for Pathobiochemistry & Genetics, Institute of Medical Genetics, Medical University of Vienna, Vienna, Austria

Center for Pathobiochemistry & Genetics, Institute of Medical Chemistry and Pathobiochemistry, Medical University of Vienna, Vienna, Austria;2. Center for Pathobiochemistry & Genetics, Institute of Medical Genetics, Medical University of Vienna, Vienna, Austria

Center for Pathobiochemistry & Genetics, Institute of Medical Chemistry and Pathobiochemistry, Medical University of Vienna, Vienna, Austria

School of Medical Sciences, University of Campania Luigi Vanvitelli, Napoli, Italy;3. Center for Pathobiochemistry & Genetics, Institute of Medical Genetics, Medical University of Vienna, Vienna, Austria

Abstract:Enlarged or irregularly shaped nuclei are frequently observed in tissue cells undergoing senescence. However, it remained unclear whether this peculiar morphology is a cause or a consequence of senescence and how informative it is in distinguishing between proliferative and senescent cells. Recent research reveals that nuclear morphology can act as a predictive biomarker of senescence, suggesting an active role for the nucleus in driving senescence phenotypes. By employing deep learning algorithms to analyze nuclear morphology, accurate classification of cells as proliferative or senescent is achievable across various cell types and species both in vitro and in vivo. This quantitative imaging-based approach can be employed to establish links between senescence burden and clinical data, aiding in the understanding of age-related diseases, as well as assisting in disease prognosis and treatment response.
Keywords:artificial intelligence  cell nucleus  cellular biophysics  cellular senescence  computer vision  machine learning  morphogenesis  quantitative microscopy
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