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Generating inhibitors of P-glycoprotein: where to, now?
Emily Crowley1, Christopher A McDevitt, Richard Callaghan
1Nuffield Department of Clinical Laboratory Sciences, John Radcliffe Hospital, University of Oxford, Oxford, UK.
Abstract:
The prominent role for the drug efflux pump ABCB1 (P-glycoprotein) in mediating resistance to chemotherapy was first suggested in 1976 and sparked an incredible drive to restore the efficacy of anticancer drugs. Achieving this goal seemed inevitable in 1982 when a series of calcium channel blockers were demonstrated to restore the efficacy of chemotherapy agents. A large number of other compounds have since been demonstrated to restore chemotherapeutic sensitivity in cancer cells or tissues. Where do we stand almost three decades since the first reports of ABCB1 inhibition? Unfortunately, in the aftermath of extensive fundamental and clinical research efforts the situation remains gloomy. Only a small handful of compounds have reached late stage clinical trials and none are in routine clinical usage to circumvent chemoresistance. Why has the translation process been so ineffective? One factor is the multifactorial nature of drug resistance inherent to cancer tissues; ABCB1 is not the sole factor. However, expression of ABCB1 remains a significant negative prognostic indicator and is closely associated with poor response to chemotherapy in many cancer types. The main difficulties with restoration of sensitivity to chemotherapy reside with poor properties of the ABCB1 inhibitors: (1) low selectivity to ABCB1, (2) poor potency to inhibit ABCB1, (3) inherent toxicity and/or (4) adverse pharmacokinetic interactions with anticancer drugs. Despite these difficulties, there is a clear requirement for effective inhibitors and to date the strategies for generating such compounds have involved serendipity or simple chemical syntheses. This chapter outlines more sophisticated approaches making use of bioinformatics, combinatorial chemistry and structure informed drug design. Generating a new arsenal of potent and selective ABCB1 inhibitors offers the promise of restoring the efficacy of a key weapon in cancer treatment--chemotherapy.
Insights
Despite decades of research, restoring chemotherapy efficacy by inhibiting the ABCB1 (P-glycoprotein) efflux pump remains challenging. New sophisticated drug design approaches are needed to overcome limitations of current ABCB1 inhibitors for better cancer treatment.
Area of Science:
- Oncology
- Pharmacology
- Drug Discovery
Background:
- The ABCB1 (P-glycoprotein) efflux pump is a key factor in chemotherapy resistance.
- Early attempts to restore chemotherapy efficacy using calcium channel blockers showed promise but ultimately fell short.
- Despite extensive research, no ABCB1 inhibitors are in routine clinical use for circumventing chemoresistance.
Purpose of the Study:
- To review the challenges in developing effective ABCB1 inhibitors.
- To explore novel strategies for designing potent and selective ABCB1 inhibitors.
- To highlight the potential of advanced approaches in overcoming chemotherapy resistance.
Main Methods:
- Review of historical and current research on ABCB1 inhibitors.
- Analysis of the limitations of existing ABCB1 inhibitors (selectivity, potency, toxicity, pharmacokinetics).
- Discussion of advanced drug design strategies including bioinformatics, combinatorial chemistry, and structure-informed design.
Main Results:
- The translation of ABCB1 inhibitors into clinical practice has been largely ineffective due to multifactorial drug resistance and inhibitor limitations.
- Expression of ABCB1 remains a significant negative prognostic indicator in many cancers.
- Current strategies for inhibitor development rely on serendipity or simple synthesis, leading to suboptimal compounds.
Conclusions:
- There is a critical need for potent and selective ABCB1 inhibitors to restore chemotherapy efficacy.
- Sophisticated approaches like bioinformatics and structure-informed design offer a promising path forward.
- Developing a new generation of ABCB1 inhibitors could significantly improve cancer treatment outcomes.
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