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Updated: Aug 16, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Insights into oxazaphosphorine resistance and possible approaches to its circumvention
Jing Zhang1, Quan Tian, Sui Yung Chan
1Department of Pharmacy, Faculty of Science, National University of Singapore, 18 Science Drive 4, Singapore 117543, Singapore.
Abstract:
The oxazaphosphorines cyclophosphamide, ifosfamide and trofosfamide remain a clinically useful class of anticancer drugs with substantial antitumour activity against a variety of solid tumors and hematological malignancies. A major limitation to their use is tumour resistance, which is due to multiple mechanisms that include increased DNA repair, increased cellular thiol levels, glutathione S-transferase and aldehyde dehydrogenase activities, and altered cell-death response to DNA damage. These mechanisms have been recently re-examined with the aid of sensitive analytical techniques, high-throughput proteomic and genomic approaches, and powerful pharmacogenetic tools. Oxazaphosphorine resistance, together with dose-limiting toxicity (mainly neutropenia and neurotoxicity), significantly hinders chemotherapy in patients, and hence, there is compelling need to find ways to overcome it. Four major approaches are currently being explored in preclinical models, some also in patients: combination with agents that modulate cellular response and disposition of oxazaphosphorines; antisense oligonucleotides directed against specific target genes; introduction of an activating gene (CYP3A4) into tumor tissue; and modification of dosing regimens. Of these approaches, antisense oligonucleotides and gene therapy are perhaps more speculative, requiring detailed safety and efficacy studies in preclinical models and in patients. A fifth approach is the design of novel oxazaphosphorines that have favourable pharmacokinetic and pharmacodynamic properties and are less vulnerable to resistance. Oxazaphosphorines not requiring hepatic CYP-mediated activation (for example, NSC 613060 and mafosfamide) or having additional targets (for example, glufosfamide that also targets glucose transport) have been synthesized and are being evaluated for safety and efficacy. Characterization of the molecular targets associated with oxazaphosphorine resistance may lead to a deeper understanding of the factors critical to the optimal use of these agents in chemotherapy and may allow the development of strategies to overcome resistance.
Insights
Oxazaphosphorines are effective anticancer drugs, but tumor resistance limits their use. New strategies like novel drug design and gene therapy aim to overcome resistance and improve chemotherapy outcomes.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Oxazaphosphorines (cyclophosphamide, ifosfamide, trofosfamide) are vital anticancer agents for solid tumors and hematological malignancies.
- Tumor resistance, stemming from mechanisms like enhanced DNA repair and altered cell-death responses, significantly limits their clinical efficacy.
- Understanding these resistance mechanisms is crucial for improving patient outcomes in chemotherapy.
Purpose of the Study:
- To review current strategies for overcoming oxazaphosphorine resistance in cancer treatment.
- To explore novel approaches including drug modification, gene therapy, and combination treatments.
- To identify molecular targets for developing more effective chemotherapy strategies.
Main Methods:
- Re-examination of resistance mechanisms using advanced analytical, proteomic, genomic, and pharmacogenetic tools.
- Evaluation of preclinical and clinical data for emerging therapeutic strategies.
- Synthesis and assessment of novel oxazaphosphorine derivatives with improved properties.
Main Results:
- Multiple mechanisms contribute to oxazaphosphorine resistance, including increased DNA repair and altered cellular responses.
- Promising strategies include combination therapies, antisense oligonucleotides, gene therapy (CYP3A4 introduction), and modified dosing.
- Novel oxazaphosphorines, such as those not requiring CYP-mediated activation or with dual targets, are under investigation.
Conclusions:
- Overcoming oxazaphosphorine resistance is essential for enhancing chemotherapy efficacy.
- Emerging strategies show potential but require further validation in preclinical and clinical settings.
- Characterizing resistance targets will refine chemotherapy use and guide the development of next-generation oxazaphosphorines.
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