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Cellular senescence checkpoint function determines differential Notch1-dependent oncogenic and tumor-suppressor activities

  • S. Kagawa
  • , M. Natsuizaka
  • , Kelly A. Whelan
  • , N. Facompre
  • , Seiji Naganuma
  • , Shinya Ohashi
  • , H. Kinugasa
  • , A. M. Egloff
  • , D Basu
  • , Phyllis A. Gimotty
  • , Andrés J.P. Klein-Szanto
  • , Adam J. Bass
  • , K. K. Wong
  • , J. A. Diehl
  • , Anil K. Rustgi
  • , H. Nakagawa
  • University of Pennsylvania
  • Chiba University
  • Hokkaido University
  • VA Medical Center
  • Kochi University
  • Kyoto University
  • Okayama University
  • University of Pittsburgh
  • Fox Chase Cancer Center
  • University of Arizona
  • Ovarian Cancer Programsd and Department of Pathology
  • Temple University
  • Cancer Biology Program
  • Dana-Farber Cancer Institute
  • Harvard University
  • Columbia University
  • Massachusetts Institute of Technology
  • Broad Institute
  • University of Chicago
  • Franklin McLean Memorial Research Institute
  • Medical University of South Carolina
  • Division of Gastroenterology

Research output: Contribution to journalArticlepeer-review

68 Scopus citations

Abstract

Notch activity regulates tumor biology in a context-dependent and complex manner. Notch may act as an oncogene or a tumor-suppressor gene even within the same tumor type. Recently, Notch signaling has been implicated in cellular senescence. Yet, it remains unclear as to how cellular senescence checkpoint functions may interact with Notch-mediated oncogenic and tumor-suppressor activities. Herein, we used genetically engineered human esophageal keratinocytes and esophageal squamous cell carcinoma cells to delineate the functional consequences of Notch activation and inhibition along with pharmacological intervention and RNA interference experiments. When expressed in a tetracycline-inducible manner, the ectopically expressed activated form of Notch1 (ICN1) displayed oncogene-like characteristics inducing cellular senescence corroborated by the induction of G0/G1 cell-cycle arrest, Rb dephosphorylation, flat and enlarged cell morphology and senescence-associated β-galactosidase activity. Notch-induced senescence involves canonical CSL/RBPJ-dependent transcriptional activity and the p16 INK4A -Rb pathway. Loss of p16 INK4A or the presence of human papilloma virus (HPV) E6/E7 oncogene products not only prevented ICN1 from inducing senescence but permitted ICN1 to facilitate anchorage-independent colony formation and xenograft tumor growth with increased cell proliferation and reduced squamous-cell differentiation. Moreover, Notch1 appears to mediate replicative senescence as well as transforming growth factor-β-induced cellular senescence in non-transformed cells and that HPV E6/E7 targets Notch1 for inactivation to prevent senescence, revealing a tumor-suppressor attribute of endogenous Notch1. In aggregate, cellular senescence checkpoint functions may influence dichotomous Notch activities in the neoplastic context.

Original languageEnglish
Pages (from-to)2347-2359
Number of pages13
JournalOncogene
Volume34
Issue number18
DOIs
StatePublished - Apr 30 2015

Keywords

  • Carcinoma, Squamous Cell/metabolism
  • Cell Cycle Checkpoints
  • Cell Transformation, Viral
  • Cells, Cultured
  • Cellular Senescence
  • Esophageal Neoplasms/metabolism
  • Esophageal Squamous Cell Carcinoma
  • Esophagus/cytology
  • Humans
  • Keratinocytes/metabolism
  • Phosphorylation
  • Receptor, Notch1/metabolism
  • Retinoblastoma Protein/metabolism
  • Signal Transduction
  • Transforming Growth Factor beta/metabolism
  • Viral Proteins/metabolism

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