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Notch Promotes Radioresistance of Glioma Stem Cells  

Stem Cells · 2009 · Vol. 28(1) · pp. 17–28
Jialiang WangTimothy P. WakemanJustin D. LathiaAnita B. HjelmelandXiao-Fan WangRebekah R. WhiteJeremy N. RichBruce A. Sullenger

Abstract

Radiotherapy represents the most effective nonsurgical treatments for gliomas. However, gliomas are highly radioresistant and recurrence is nearly universal. Results from our laboratory and other groups suggest that cancer stem cells contribute to radioresistance in gliomas and breast cancers. The Notch pathway is critically implicated in stem cell fate determination and cancer. In this study, we show that inhibition of Notch pathway with gamma-secretase inhibitors (GSIs) renders the glioma stem cells more sensitive to radiation at clinically relevant doses. GSIs enhance radiation-induced cell death and impair clonogenic survival of glioma stem cells but not non-stem glioma cells. Expression of the constitutively active intracellular domains of Notch1 or Notch2 protect glioma stem cells against radiation. Notch inhibition with GSIs does not alter the DNA damage response of glioma stem cells after radiation but rather reduces Akt activity and Mcl-1 levels. Finally, knockdown of Notch1 or Notch2 sensitizes glioma stem cells to radiation and impairs xenograft tumor formation. Taken together, our results suggest a critical role of Notch signaling to regulate radioresistance of glioma stem cells. Inhibition of Notch signaling holds promise to improve the efficiency of current radiotherapy in glioma treatment.

Developmental Biology and Gene RegulationEpigenetics and DNA MethylationMicroRNA in disease regulationRadioresistanceGliomaBiologyCancer researchStem cellCancer stem cellNotch signaling pathwayClonogenic assayRadiosensitivityRadiation therapy

MeSH terms

AC133 AntigenAnimalsCell SurvivalDose-Response Relationship, RadiationEnzyme InhibitorsGlioblastomaGlycoproteinsHumansMice, NudePeptidesRadiation ToleranceRadiation-Sensitizing AgentsTime FactorsTransfectionTumor Cells, Cultured

Funding

  • Howard Hughes Medical Institute
  • Damon Runyon Cancer Research Foundation
  • Alexander and Margaret Stewart Trust
  • Accelerate Brain Cancer Cure
  • National Brain Tumor Society
  • Childhood Brain Tumor Foundation
  • Goldhirsh Foundation
  • Sidney Kimmel Foundation
  • National Institutes of Health
Citations
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