Antiangiogenic therapy for glioblastoma: current status and future prospects

Tracy T Batchelor1, David A Reardon2, John F de Groot3

  • 1Stephen E. and Catherine Pappas Center for Neuro-Oncology, Massachusetts General Hospital Cancer Center and Harvard Medical School, Boston, Massachusetts. tbatchelor@mgh.harvard.edu.

Insights

Antiangiogenic therapies show promise for glioblastoma by targeting tumor blood vessel growth. However, resistance develops, necessitating biomarkers to predict treatment response and guide future therapeutic strategies.

Area of Science:

  • Oncology
  • Cancer Biology
  • Translational Medicine

Background:

  • Glioblastoma exhibits high proangiogenic cytokine levels and microvascular proliferation, suggesting antiangiogenic therapy is a promising strategy.
  • Antiangiogenic treatments can initially benefit patients by impacting multiple mechanisms of action.

Discussion:

  • Tumors develop resistance to antiangiogenic therapy by activating alternative proangiogenic pathways.
  • Predictive biomarkers and imaging parameters are crucial for identifying patients who will respond and those likely to develop resistance.

Key Insights:

  • Phase II trials show clinical improvement and longer progression-free survival with antiangiogenic agents.
  • Four Phase III trials of bevacizumab, cilengitide, cediranib, or enzastaurin in glioblastoma did not demonstrate an overall survival benefit.

Outlook:

  • Future research should focus on predictive marker identification for patient enrichment.
  • Combining antiangiogenic therapy with chemotherapy or developing novel agents targeting multiple pathways may improve overall survival.

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