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      Machine Learning Identifies Stemness Features Associated with Oncogenic Dedifferentiation

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          Abstract

          Cancer progression involves the gradual loss of a differentiated phenotype and acquisition of progenitor and stem-cell-like features. Here, we provide novel stemness indices for assessing the degree of oncogenic dedifferentiation. We used an innovative one-class logistic regression (OCLR) machine-learning algorithm to extract transcriptomic and epigenetic feature sets derived from non-transformed pluripotent stem cells and their differentiated progeny. Using OCLR, we were able to identify previously undiscovered biological mechanisms associated with the dedifferentiated oncogenic state. Analyses of the tumor microenvironment revealed unanticipated correlation of cancer stemness with immune checkpoint expression and infiltrating immune cells. We found that the dedifferentiated oncogenic phenotype was generally most prominent in metastatic tumors. Application of our stemness indices to single-cell data revealed patterns of intra-tumor molecular heterogeneity. Finally, the indices allowed for the identification of novel targets and possible targeted therapies aimed at tumor differentiation.

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          Journal
          Cell
          Cell
          Elsevier BV
          00928674
          April 2018
          April 2018
          : 173
          : 2
          : 338-354.e15
          Article
          10.1016/j.cell.2018.03.034
          5902191
          29625051
          baf9af21-6401-4af8-8076-375f56c8f175
          © 2018

          http://www.elsevier.com/tdm/userlicense/1.0/

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