Hypoxia-Targeting Drug Evofosfamide (TH-302) Enhances Sunitinib Activity in Neuroblastoma Xenograft Models

Sushil Kumar1, Jessica D Sun2, Libo Zhang3

  • 1Division of Hematology and Oncology, Hospital for Sick Children, 686 Bay St, Toronto, ON, Canada, M5G 0A4; Institute of Medical Sciences, Faculty of Medicine, University of Toronto, Medical Sciences Building, 1 King's College Circle, Room 2374, Toronto, Ontario, Canada, M5S 1A8.

Insights

Combining sunitinib with evofosfamide shows promise against aggressive neuroblastoma. This combination therapy overcomes resistance by targeting hypoxic tumor cells, enhancing treatment efficacy in preclinical models.

Area of Science:

  • Oncology
  • Pharmacology
  • Cancer Biology

Background:

  • Antiangiogenic therapy is effective but tumor cells develop resistance via hypoxia.
  • Hypoxia-activated prodrugs offer a strategy to overcome this resistance.
  • Combining these approaches may enhance anti-neuroblastoma efficacy.

Purpose of the Study:

  • To evaluate the preclinical efficacy of combining sunitinib (antiangiogenic) with evofosfamide (hypoxia-activated prodrug) in neuroblastoma models.
  • To investigate the synergistic effects and optimal timing of this combination therapy.

Main Methods:

  • In vitro sensitivity assays of neuroblastoma cells (SK-N-BE(2)) to evofosfamide under normoxia and hypoxia.
  • Assessment of evofosfamide efficacy in a murine intravenous metastatic neuroblastoma model.
  • Evaluation of sunitinib and evofosfamide combination regimens in subcutaneous SK-N-BE(2) xenograft models.
  • Immunofluorescence analysis of tumor sections to assess apoptosis and hypoxia.

Main Results:

  • Neuroblastoma cells showed significantly increased sensitivity to evofosfamide under hypoxic conditions.
  • Concurrent administration of sunitinib and evofosfamide demonstrated superior efficacy over single agents in xenograft models.
  • The combination therapy increased tumor cell apoptosis and hypoxic areas.
  • Higher doses of sunitinib (80 mg/kg) with evofosfamide (50 mg/kg) showed significant superiority in both xenograft and metastatic models.

Conclusions:

  • The combination of sunitinib and evofosfamide is a promising preclinical strategy for aggressive neuroblastoma.
  • Sunitinib enhances evofosfamide efficacy by increasing tumor hypoxia, while evofosfamide targets these hypoxic cells.
  • This dual targeting approach creates a synergistic effect, improving treatment outcomes.

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