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Updated: May 9, 2026

Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
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.
Purpose:
Batracylin (daniquidone), an ATP-insensitive topoisomerase I/II inhibitor, demonstrated wide interspecies variation in preclinical models consistent with formation of a toxic metabolite, N-acetyl-batracylin, following metabolism by N-acetyl-transferase 2 (NAT2). To minimize exposure to this toxic metabolite, this first-in-human study was conducted in patients with advanced refractory solid tumors or lymphomas demonstrated to have a slow NAT2 acetylator genotype. The objectives were to determine the safety, maximum tolerated dose (MTD), and pharmacokinetics of batracylin and its metabolites.
Methods:
Based on the MTD for rats, the most sensitive species, the starting dose was 5 mg/day for 7 days in 28-day cycles. Dose escalation followed accelerated titration design 4B, with restaging performed every 2 cycles.
Results:
Thirty-one patients were enrolled. Treatment was well tolerated; one patient experienced grade 3 toxicity (lymphopenia). Dose escalation was stopped at 400 mg/day due to grade 1 and 2 hemorrhagic cystitis. No objective responses were observed, but prolonged disease stabilization was observed in 2 patients, one with peritoneal mesothelioma (8 cycles) and another with adrenocortical cancer (18 cycles). Across an 80-fold range of doses, the ratios of systemic exposures for batracylin and N-acetyl batracylin were near 1.
Conclusions:
Pharmacogenetically selected patients reached a dose that was 20-fold higher than the MTD in rats and 70 % of the MTD in mice. This genotype-guided strategy was successful in safely delivering batracylin to patients. However, due to unexpected cystitis, not preventable by hydration, and in the absence of a stronger signal for antitumor activity, further development of batracylin has been stopped.
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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