PI3K-mTOR Pathway Inhibition Exhibits Efficacy Against High-grade Glioma in Clinically Relevant Mouse Models

Fan Lin1, Mark C de Gooijer1, Diana Hanekamp1

  • 1Department of Bio-Pharmacology/Mouse Cancer Clinic, The Netherlands Cancer Institute (Antoni van Leeuwenhoek Hospital), Amsterdam, the Netherlands.

Insights

Drug transporters at the blood-brain barrier limit PI3K/mTOR inhibitor efficacy in glioblastoma. Inhibitors with low transporter affinity, like ZSTK474, show promise for treating brain tumors.

Area of Science:

  • Oncology
  • Pharmacology
  • Neuroscience

Background:

  • The PI3K-AKT-mTOR pathway is frequently activated in glioblastoma.
  • Clinical efficacy of PI3K/mTOR inhibitors is limited, potentially due to insufficient drug delivery across the blood-brain barrier (BBB).
  • ABCB1 and ABCG2 efflux transporters at the BBB restrict brain penetration of many drugs.

Purpose of the Study:

  • To investigate the impact of ABC transporters on the brain penetration and efficacy of PI3K/mTOR inhibitors in glioblastoma.
  • To identify PI3K/mTOR inhibitors that can effectively penetrate the BBB and inhibit their targets in the brain.

Main Methods:

  • In vitro drug transport assays were conducted.
  • Pharmacokinetic/pharmacodynamic studies were performed in wild-type and ABC-transporter knockout mice.
  • Antitumor efficacy was evaluated in orthotopic allograft and genetically engineered glioblastoma mouse models.

Main Results:

  • Rapamycin and AZD8055 are substrates of ABCB1, while NVP-BEZ235 and ZSTK474 are not.
  • ABCG2 transports NVP-BEZ235 and AZD8055, but not ZSTK474 or rapamycin.
  • ABC transporters significantly limited brain penetration of rapamycin and AZD8055, but not ZSTK474. NVP-BEZ235 showed reduced but still sufficient brain penetration.
  • ZSTK474 and NVP-BEZ235 demonstrated antitumor efficacy in glioblastoma models, with ZSTK474 showing a more pronounced effect and prolonging survival in a spontaneous glioblastoma model.

Conclusions:

  • PI3K/mTOR inhibitors with weak affinities for ABC transporters can achieve target inhibition in brain tumors.
  • While these inhibitors show single-agent efficacy, combinations with other BBB-penetrable inhibitors may be required for optimal therapeutic outcomes in glioblastoma.