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Showing 1–2 of 2 results
Advanced filters: Author: Giulia Vallardi Clear advanced filters
  • An end-to-end machine learning approach that can learn which mechanisms determine cell fate and competition from a large time-lapse microscopy dataset is developed. The approach makes use of a probabilistic autoencoder to learn an interpretable representation of the organization of cells, and provides cell fate predictions that can be tested in drug screening experiments.

    • Christopher J. Soelistyo
    • Giulia Vallardi
    • Alan R. Lowe
    Research
    Nature Machine Intelligence
    Volume: 4, P: 636-644
  • Saurin, Kops and colleagues suggest that rapid spindle assembly checkpoint (SAC) responsiveness is mediated by a mechanism in which active SAC recruits PP2A, leading to PP1 recruitment, which in turn displaces PP2A and shuts off the SAC.

    • Wilco Nijenhuis
    • Giulia Vallardi
    • Adrian T. Saurin
    Research
    Nature Cell Biology
    Volume: 16, P: 1257-1264