Related Experiment Video
Updated: Jun 4, 2026

Multianimal Magnetic Resonance Imaging for Tumor Measurements in Pancreatic Cancer Mouse Models
Published on: February 3, 2026
Imaging of multidrug resistance in cancer
1Department of Nuclear Medicine, Brighton and Sussex University Hospitals NHS Trust, Brighton, UK. sabina.dizdarevic@bsuh.nhs.uk
Abstract:
Primary intrinsic and/or acquired multidrug resistance (MDR) is the main obstacle to successful cancer treatment. Functional molecular imaging of MDR in cancer using single photon or positron emitters may be helpful to identify multidrug-resistant tumours and predict not only those patients who are resistant to treatment, with a clinically unfavourable prognosis, but also those who are susceptible to the development of drug toxicity or even certain tumours . Variations in the mdr1 gene product may directly affect the therapeutic effectiveness, and single nucleotide polymorphisms for the mdr1 gene may be associated with altered oral bioavailability of MDR1 substrates, drug resistance, and a susceptibility to some human diseases. The challenge of translating the concept of MDR modulation in vivo involves a complex cellular interplay between both malignant and normal cells. Integration and correlation of functional single photon emission tomography or positron emission tomography imaging findings with mdr1 genotype and clinical data may contribute to efficient management by selecting cancer patients with the appropriate molecular phenotype for maximal individual therapeutic benefit, as well as those who are non-responders. This review describes a role for functional imaging of classical mechanisms of MDR with an emphasis on readily available [(99m)Tc]MIBI scintigraphy. MIBI scintigraphy has been shown to be a non-invasive cost-effective in vivo assay of ATP-binding cassette transporters associated with MDR in cancer, including P-glycoprotein, multidrug-resistant protein 1 and breast cancer resistant protein. New imaging agents for molecular targets such as vascular endothelial growth factor and HER2 receptors, may potentially be combined with MDR imaging substrates to more accurately predict the therapeutic response to anticancer drugs, guiding individualised treatment while minimising the economic health costs of ineffective therapy in an era of personalised medicine.
Insights
Functional imaging, like MIBI scintigraphy, can identify multidrug resistance (MDR) in cancer. This helps predict treatment response and toxicity, guiding personalized cancer therapy.
Area of Science:
- Oncology
- Molecular Imaging
- Pharmacogenomics
Background:
- Multidrug resistance (MDR) is a major barrier to effective cancer chemotherapy.
- MDR mechanisms involve ATP-binding cassette transporters and genetic variations (e.g., mdr1 gene).
- Predicting treatment outcomes and toxicity is crucial for personalized cancer care.
Purpose of the Study:
- To review the role of functional molecular imaging in assessing MDR in cancer.
- To highlight [(99m)Tc]MIBI scintigraphy as a cost-effective in vivo assay for MDR.
- To discuss the integration of imaging, genetic, and clinical data for improved patient management.
Main Methods:
- Review of literature on functional imaging techniques for MDR.
- Focus on single photon emission tomography (SPECT) and positron emission tomography (PET) imaging.
- Emphasis on [(99m)Tc]MIBI scintigraphy and its targets (P-glycoprotein, MRP1, BCRP).
Main Results:
- Functional imaging can identify multidrug-resistant tumors and predict patient prognosis.
- MIBI scintigraphy is a non-invasive method to assess MDR-associated transporters.
- Genetic variations in mdr1 influence drug bioavailability and resistance.
Conclusions:
- Functional imaging, combined with genetic and clinical data, aids in selecting optimal cancer treatments.
- Personalized medicine approaches using imaging can maximize therapeutic benefit and minimize ineffective therapy costs.
- Future strategies may combine MDR imaging with agents targeting other molecular pathways (e.g., VEGF, HER2).
Related Concept Videos
Treatment Resistant Cancers
Imaging Studies IV: Magnetic Resonance Imaging

