Targeting Src family kinases inhibits bevacizumab-induced glioma cell invasion

Deborah Huveldt1, Laura J Lewis-Tuffin, Brett L Carlson

  • 1Department of Cancer Biology, Mayo Clinic, Jacksonville, Florida, United States of America.

Plos One
|March 5, 2013
PubMed

Insights

Bevacizumab therapy for recurrent glioblastoma (GBM) can increase tumor cell invasion via Src family kinase (SFK) signaling. Dasatinib, an SFK inhibitor, blocked this invasion, suggesting combination therapy potential.

Area of Science:

  • Neuro-oncology
  • Cancer biology
  • Molecular targeted therapy

Background:

  • Anti-VEGF antibody therapy, such as bevacizumab, offers clinical benefits for recurrent glioblastoma (GBM).
  • GBM recurrence on bevacizumab often presents as diffuse invasion, limiting treatment options.
  • Understanding bevacizumab's impact on glioma invasion is crucial for developing effective therapies.

Purpose of the Study:

  • To investigate the mechanisms underlying bevacizumab-induced GBM cell invasion.
  • To evaluate the role of Src family kinases (SFKs) in GBM invasion.
  • To test the efficacy of dasatinib, an SFK inhibitor, in blocking bevacizumab-driven invasion.

Main Methods:

  • Utilized serially transplanted human GBM xenograft models (flank and orthotopic).
  • Assessed SFK activation and p120 catenin phosphorylation at Y228 (a Src kinase site) via immunohistochemistry.
  • Administered bevacizumab and dasatinib in an orthotopic xenograft model to evaluate invasion patterns.

Main Results:

  • SFK activation is prevalent in GBM and correlates with invasiveness.
  • SFK activation and downstream substrate phosphorylation occur at the invasive tumor edge.
  • Bevacizumab treatment elevated SFK signaling at the invasive front, which was blocked by dasatinib.

Conclusions:

  • Increased GBM cell invasion during bevacizumab therapy is mediated by elevated SFK signaling.
  • Dasatinib effectively inhibits bevacizumab-induced GBM invasion.
  • Combination therapy with dasatinib and bevacizumab warrants clinical investigation for recurrent GBM.