Mitochondrial Bcl-2 family dynamics define therapy response and resistance in neuroblastoma

Kelly C Goldsmith1, Michelle Gross, Susan Peirce

  • 1Division of Hematology/Oncology, Aflac Children's Cancer Center, Children's Healthcare of Atlanta, Atlanta, GA 30322, USA. kgoldsm@emory.edu

Cancer Research
|May 17, 2012
PubMed

Insights

Neuroblastoma cells are primed for apoptosis, but resistance emerges due to mitochondrial Bak/Bax activation failure. Targeting Bcl-2 with ABT-737 shows promise, especially combined with chemotherapy for aggressive neuroblastoma.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Death Research

Background:

  • Neuroblastoma often recurs with chemoresistant disease after initial treatment.
  • Understanding apoptotic mechanisms is crucial for overcoming treatment resistance.

Purpose of the Study:

  • To characterize apoptotic responses in neuroblastomas.
  • To identify dependencies and resistance mechanisms.
  • To predict response to Bcl-2 antagonists.

Main Methods:

  • Mitochondrial functional assays.
  • BH3 profiling to define apoptotic set points.
  • Analysis of isogenic cell lines from diagnosis and relapse.
  • Xenograft studies with Bcl-2 inhibitor ABT-737.

Main Results:

  • Neuroblastomas are primed for apoptosis, with Bim sequestered by Bcl-2 or Mcl-1.
  • Bcl-2 antagonist ABT-737 showed activity in Bim:Bcl-2 primed xenografts.
  • Combination therapy achieved durable regressions in high-risk subtypes.
  • Therapy resistance involved repressed Bak/Bax activation, not Bcl-2 homologue upregulation.

Conclusions:

  • A classification system for Bcl-2 antagonist response in neuroblastoma.
  • Mcl-1 is a key mediator of resistance at diagnosis.
  • Therapy resistance phenotype is localized to mitochondrial pathways.

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