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ERK1/2 inhibitors: New weapons to inhibit the RAS-regulated RAF-MEK1/2-ERK1/2 pathway
Andrew M Kidger1, James Sipthorp1, Simon J Cook1
1Signalling Programme, The Babraham Institute, Babraham Research Campus, Cambridge CB22 3AT, England, United Kingdom.
Abstract:
The RAS-regulated RAF-MEK1/2-ERK1/2 signalling pathway is de-regulated in a variety of cancers due to mutations in receptor tyrosine kinases (RTKs), negative regulators of RAS (such as NF1) and core pathway components themselves (RAS, BRAF, CRAF, MEK1 or MEK2). This has driven the development of a variety of pharmaceutical agents to inhibit RAF-MEK1/2-ERK1/2 signalling in cancer and both RAF and MEK inhibitors are now approved and used in the clinic. There is now much interest in targeting at the level of ERK1/2 for a variety of reasons. First, since the pathway is linear from RAF-to-MEK-to-ERK then ERK1/2 are validated as targets per se. Second, innate resistance to RAF or MEK inhibitors involves relief of negative feedback and pathway re-activation with all signalling going through ERK1/2, validating the use of ERK inhibitors with RAF or MEK inhibitors as an up-front combination. Third, long-term acquired resistance to RAF or MEK inhibitors involves a variety of mechanisms (KRAS or BRAF amplification, MEK mutation, etc.) which re-instate ERK activity, validating the use of ERK inhibitors to forestall acquired resistance to RAF or MEK inhibitors. The first potent highly selective ERK1/2 inhibitors have now been developed and are entering clinical trials. They have one of three discrete mechanisms of action - catalytic, "dual mechanism" or covalent - which could have profound consequences for how cells respond and adapt. In this review we describe the validation of ERK1/2 as anti-cancer drug targets, consider the mechanism of action of new ERK1/2 inhibitors and how this may impact on their efficacy, anticipate factors that will determine how tumour cells respond and adapt to ERK1/2 inhibitors and consider ERK1/2 inhibitor drug combinations.
Insights
Targeting ERK1/2 is crucial for overcoming cancer resistance to RAF/MEK inhibitors. New ERK1/2 inhibitors with distinct mechanisms offer promising therapeutic strategies for various cancers.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- The RAS-RAF-MEK-ERK signaling pathway is frequently dysregulated in cancers due to mutations.
- RAF and MEK inhibitors are clinically approved but face challenges with innate and acquired resistance.
- ERK1/2 are validated as direct therapeutic targets due to pathway linearity and resistance mechanisms.
Purpose of the Study:
- To review the validation of ERK1/2 as anti-cancer drug targets.
- To discuss the mechanisms of action of novel ERK1/2 inhibitors.
- To explore strategies for overcoming resistance and optimizing combination therapies involving ERK1/2 inhibitors.
Main Methods:
- Review of preclinical and clinical data on ERK1/2 inhibitors.
- Analysis of resistance mechanisms to RAF/MEK inhibitors.
- Examination of the distinct mechanisms of action (catalytic, dual, covalent) of novel ERK1/2 inhibitors.
Main Results:
- ERK1/2 inhibition is a validated strategy to overcome resistance to RAF/MEK inhibitors.
- Novel ERK1/2 inhibitors with potent selectivity are entering clinical trials.
- Different inhibitor mechanisms may influence cellular response and adaptation.
Conclusions:
- ERK1/2 inhibitors represent a significant advancement in cancer therapy.
- Combination strategies with RAF/MEK inhibitors are essential to prevent and overcome resistance.
- Understanding inhibitor mechanisms is key to predicting efficacy and guiding treatment decisions.
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