Tumoral drug metabolism: overview and its implications for cancer therapy

M Michael1, M M Doherty

  • 1Division of Haematology and Medical Oncology, Peter MacCallum Cancer Centre, Locked Bag 1, A'Beckett St, Victoria 8006, Australia. Michael.Michael@petermac.org

Insights

Tumor drug metabolism by drug-metabolizing enzymes (DME) influences anticancer therapy efficacy. Understanding DME activity in tumors is crucial for developing targeted prodrugs and personalized cancer treatments.

Area of Science:

  • Oncology
  • Pharmacology
  • Biochemistry

Background:

  • Drug-metabolizing enzymes (DME) are present in tumors, affecting xenobiotic and antineoplastic drug biotransformation.
  • Inconsistent detection methodologies and patient cohorts have limited a clear understanding of tumoral DME activity.
  • Tumoral DME activity presents both a challenge (resistance) and an opportunity (prodrug activation) in cancer therapy.

Purpose of the Study:

  • To review cytotoxic drug metabolism by tumors, detailing DME classes, substrates, and distribution in malignancies.
  • To discuss the limitations of preclinical models and the lack of data on DME changes during disease progression.
  • To explore the therapeutic implications of tumoral drug metabolism, including its role in predicting response, prodrug activation, and potential modulation.

Main Methods:

  • Literature review focusing on cytotoxic drug metabolism by tumors.
  • Analysis of DME classes, substrates, and distribution in various cancers.
  • Discussion of preclinical model limitations and clinical data gaps.

Main Results:

  • Tumoral DME can activate or detoxify antineoplastic drugs, impacting treatment outcomes.
  • Heterogeneity in DME detection and patient cohorts has led to inconsistent findings.
  • Tumoral DME activity is a critical factor in anticancer drug efficacy and resistance.

Conclusions:

  • Tumoral drug metabolism significantly impacts cancer therapy, influencing drug resistance and activation.
  • Further large-scale prospective studies and advanced technologies are needed to fully elucidate tumoral DME's role.
  • Understanding tumoral DME is essential for designing effective prodrugs and personalized combination therapies to improve outcomes.

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