Pharmacokinetics and pharmacodynamics of topotecan in patients with advanced cancer

L B Grochow1, E K Rowinsky, R Johnson

  • 1Department of Oncology, Johns Hopkins University School of Medicine, Baltimore, MD.

Insights

Topotecan, a topoisomerase I inhibitor, undergoes reversible hydrolysis in solution and in vivo. Its clearance involves conversion to hydroxy acid and renal elimination, impacting myelotoxicity.

Area of Science:

  • Pharmacology
  • Oncology
  • Drug Metabolism

Background:

  • Topotecan is a novel camptothecin analog targeting topoisomerase I.
  • It represents a significant advancement in cancer therapy, being the first topoisomerase I-directed drug in US clinical trials in two decades.

Purpose of the Study:

  • To investigate the pharmacokinetic disposition of topotecan, including its hydrolysis and elimination pathways.
  • To establish the relationship between topotecan dosage, exposure, and myelotoxicity.

Main Methods:

  • Administered topotecan via 30-min infusions daily for 5 days every 3 weeks at doses from 0.5 to 2.5 mg/m2.
  • Studied the disposition of topotecan lactone and its hydrolyzed hydroxy acid form in patients and mice.
  • Developed a pharmacokinetic model incorporating reversible hydrolysis and elimination.

Main Results:

  • Topotecan lactone clearance was 1220 ml/min/m2 (range: 300-4760).
  • Total topotecan clearance (lactone and hydroxy acid) was 493 ml/min/m2 (range: 163-815).
  • Renal clearance contributed approximately 30% to overall drug elimination.

Conclusions:

  • Topotecan undergoes partial hydrolysis before administration and in vivo conversion to hydroxy acid for elimination.
  • Myelotoxicity is directly related to both topotecan dose and total drug exposure (AUC).

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