Toxicity mechanism-based prodrugs: glutathione-dependent bioactivation as a strategy for anticancer prodrug design

Xin-Yu Zhang1, Adnan A Elfarra2

  • 1a Hongqiao International Institute of Medicine, Shanghai Tongren Hospital and Faculty of Public Health , Shanghai Jiao Tong University School of Medicine , Shanghai , China.

Abstract

Insights

New anticancer prodrugs targeting kidney and tumor cells show promise for reducing systemic toxicity. Strategies utilizing trichloroethylene toxicity mechanisms and glutathione-dependent reactions offer improved drug safety and efficacy.

Area of Science:

  • Pharmacology
  • Toxicology
  • Medicinal Chemistry

Background:

  • Anticancer drugs 6-mercaptopurine (6-MP) and 6-thioguanine (6-TG) exhibit high systemic toxicity due to poor target specificity.
  • Improving drug selectivity is crucial for enhancing patient safety and therapeutic outcomes.

Purpose of the Study:

  • To investigate prodrug designs leveraging kidney-selective toxicity mechanisms of trichloroethylene.
  • To reduce systemic toxicity and enhance selectivity for kidney and tumor cells.

Main Methods:

  • Investigated bioactivation of trichloroethylene-cysteine S-conjugate by renal cysteine S-conjugate β-lyases.
  • Explored prodrugs based on the toxic mechanism of trichloroethylene-cysteine S-conjugate sulfoxide, a Michael acceptor.

Main Results:

  • The first approach yielded kidney-selective prodrugs but with low turnover rates.
  • The second approach utilized glutathione-dependent Michael addition-elimination reactions for potential high efficiency.

Conclusions:

  • Glutathione-dependent Michael addition-elimination reactions represent a promising strategy for designing efficient anticancer prodrugs.
  • Targeting glutathione is a viable approach for developing anticancer prodrugs, especially given cancer cells' altered glutathione metabolism.

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