Pharmacogenetically driven patient selection for a first-in-human phase I trial of batracylin in patients with

Shivaani Kummar1, Martin E Gutierrez, Lawrence W Anderson

  • 1Center for Cancer Research, National Cancer Institute, Bethesda, MD, USA.

Abstract

Insights

This study safely delivered batracylin to cancer patients using a pharmacogenetic approach targeting NAT2 acetylator genotype. However, unexpected toxicity and lack of efficacy halted further development of this topoisomerase inhibitor.

Area of Science:

  • Oncology
  • Pharmacology
  • Genetics

Background:

  • Batracylin (daniquidone) is an ATP-insensitive topoisomerase I/II inhibitor.
  • Preclinical studies showed interspecies variation due to a toxic metabolite, N-acetyl-batracylin, formed by N-acetyl-transferase 2 (NAT2).

Purpose of the Study:

  • To assess the safety, maximum tolerated dose (MTD), and pharmacokinetics of batracylin and its metabolites.
  • To minimize exposure to the toxic metabolite N-acetyl-batracylin in patients with advanced refractory solid tumors or lymphomas.
  • To enroll patients with a slow NAT2 acetylator genotype.

Main Methods:

  • First-in-human study with dose escalation using accelerated titration design 4B.
  • Starting dose based on MTD in rats (most sensitive species).
  • Patients selected based on slow NAT2 acetylator genotype.

Main Results:

  • Thirty-one patients enrolled; treatment generally well tolerated with one case of grade 3 lymphopenia.
  • Dose escalation stopped at 400 mg/day due to hemorrhagic cystitis.
  • Prolonged disease stabilization observed in two patients; no objective responses noted.
  • Near 1:1 ratio of systemic exposures for batracylin and N-acetyl batracylin.

Conclusions:

  • Pharmacogenetic selection enabled safe administration of higher batracylin doses compared to preclinical MTDs.
  • The genotype-guided strategy successfully delivered batracylin.
  • Development halted due to unexpected cystitis and lack of significant antitumor activity.

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