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Monitoring interactions at ATP-dependent drug efflux pumps
1PET-Center, University Hospital, P.O. Box 30.001, Groningen, 9700 RB, The Netherlands. n.h.hendrikse@pet.azg.nl
Abstract:
Chemotherapeutic treatment of cancer patients is often unsuccessful, due to the involvement of various mechanisms, leading to multidrug resistance (MDR). In this review, I describe the mechanisms involved in MDR. Furthermore, results obtained by imaging of P-glycoprotein (P-gp) and the multidrug resistance associated protein (MRP) are reviewed. Single photon emission computed tomography (SPECT) and positron emission tomography (PET) are unique techniques to study P-gp- and MRP-mediated transport. The radiopharmaceutical (99m)Tc-sestamibi is a substrate for both P-gp and MRP. This tracer has been used for tumor imaging in clinical studies, and to visualize blockade of P-gp mediated transport after modulation of the P-gp pump. Other (99m)Tc-radiopharmaceuticals such as (99m)Tc- tetrofosmin and several (99m)Tc-Q-complexes are also substrates for P-gp. Until now, for these compounds only results from in vitro and animal studies are available. For quantification of P-gp mediated transport with PET in vivo, several agents, such as [(11)C]colchicine, [(11)C]verapamil and [(11)C]daunorubicin have been evaluated. In vivo results suggest that these radiopharmaceuticals can be used to image P-gp function in tumors. (124)I and (76)Br radiolabeled doxorubicin analogues are also useful to examine P-gp mediated transport. Leukotrienes are specific substrates for MRP. Therefore, N-[(11)C]acetyl-leukotriene E4 provides the opportunity to study MRP function non-invasively. Results obtained with this radiopharmaceutical in MRP(2) mutated GY/TR- rats indicate visualization of MRP-mediated transport. This tracer enables to study MRP transport function abnormalities in vivo such as in Dubin-Johnson patients, who are MRP(2) gene deficient. In conclusion, it is feasible to study the functionality of MDR transporters in vivo, both with SPECT and with PET. Such imaging techniques may become an important factor in the development of novel chemotherapeutic drugs.
Insights
Multidrug resistance (MDR) hinders cancer chemotherapy. This review highlights imaging techniques like SPECT and PET to visualize MDR transporters, P-glycoprotein (P-gp) and multidrug resistance-associated protein (MRP), aiding new drug development.
Area of Science:
- Nuclear medicine and molecular imaging.
- Cancer research and drug resistance mechanisms.
Background:
- Multidrug resistance (MDR) is a major challenge in cancer chemotherapy, reducing treatment efficacy.
- Key MDR transporters, P-glycoprotein (P-gp) and multidrug resistance-associated protein (MRP), efflux chemotherapeutic agents from cancer cells.
- Understanding the in vivo function of these transporters is crucial for developing effective cancer therapies.
Purpose of the Study:
- To review the mechanisms of MDR and the role of P-gp and MRP.
- To discuss the application of SPECT and PET imaging techniques for studying P-gp and MRP function in vivo.
- To explore the potential of novel radiopharmaceuticals for visualizing MDR transporter activity and guiding therapeutic strategies.
Main Methods:
- Review of existing literature on MDR mechanisms and imaging studies.
- Focus on Single Photon Emission Computed Tomography (SPECT) and Positron Emission Tomography (PET) using specific radiopharmaceuticals.
- Evaluation of radiotracers like 99mTc-sestamibi, 99mTc-tetrofosmin, [(11)C]colchicine, [(11)C]verapamil, [(11)C]daunorubicin, radiolabeled doxorubicin analogues, and N-[(11)C]acetyl-leukotriene E4.
Main Results:
- SPECT and PET are effective for studying P-gp and MRP-mediated transport.
- Radiopharmaceuticals such as 99mTc-sestamibi, [(11)C]colchicine, and N-[(11)C]acetyl-leukotriene E4 have shown promise in visualizing transporter function in preclinical and clinical studies.
- Imaging P-gp and MRP function in vivo is feasible and can aid in assessing treatment response and developing novel chemotherapeutic drugs.
Conclusions:
- In vivo imaging of MDR transporters using SPECT and PET is a viable approach.
- These imaging modalities offer a powerful tool for understanding drug resistance.
- This technology holds significant potential for the development and clinical application of new anticancer drugs.