Related Experiment Video
Updated: Aug 20, 2026

Advancements in the Metabolic Profiling of Three-Dimensional Brain Tumor Spheroids for Drug Screening
Published on: September 5, 2025
Tumoral drug metabolism: overview and its implications for cancer therapy
1Division of Haematology and Medical Oncology, Peter MacCallum Cancer Centre, Locked Bag 1, A'Beckett St, Victoria 8006, Australia. Michael.Michael@petermac.org
Abstract:
Drug-metabolizing enzymes (DME) in tumors are capable of biotransforming a variety of xenobiotics, including antineoplastics, resulting in either their activation or detoxification. Many studies have reported the presence of DME in tumors; however, heterogeneous detection methodology and patient cohorts have not generated consistent, firm data. Nevertheless, various gene therapy approaches and oral prodrugs have been devised, taking advantage of tumoral DME. With the need to target and individualize anticancer therapies, tumoral processes such as drug metabolism must be considered as both a potential mechanism of resistance to therapy and a potential means of achieving optimal therapy. This review discusses cytotoxic drug metabolism by tumors, through addressing the classes of the individual DME, their relevant substrates, and their distribution in specific malignancies. The limitations of preclinical models relative to the clinical setting and lack of data on the changes of DME with disease progression and host response will be discussed. The therapeutic implications of tumoral drug metabolism will be addressed-in particular, the role of DME in predicting therapeutic response, the activation of prodrugs, and the potential for modulation of their activity for gain are considered, with relevant clinical examples. The contribution of tumoral drug metabolism to cancer therapy can only be truly ascertained through large-scale prospective studies and supported by new technologies for tumor sampling and genetic analysis such as microarrays. Only then can efforts be concentrated in the design of better prodrugs or combination therapy to improve drug efficacy and individualize therapy.
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.
Related Concept Videos
Targeted Cancer Therapies
There are several types of targeted therapies against specific...
Targeted Cancer Therapies
There are several types of targeted therapies against specific...
Combination Therapies and Personalized Medicine
The combination of the drug acetazolamide and sulforaphane is a good example of combination therapy to treat cancer. The cells in the interior of a large tumor often die due to the hypoxic and...
Pharmacogenetics of Drug Metabolism: Overview
Drug Biotransformation: Overview
Drug Biotransformation: Overview
