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Published on: July 17, 2019
Activated Ras as a Therapeutic Target: Constraints on Directly Targeting Ras Isoforms and Wild-Type versus Mutated
1Department of Pharmacology, Wayne State University, 540 East Canfield Avenue, Detroit, MI 48201, USA.
Abstract:
The ability to selectively and directly target activated Ras would provide immense utility for treatment of the numerous cancers that are driven by oncogenic Ras mutations. Patients with disorders driven by overactivated wild-type Ras proteins, such as type 1 neurofibromatosis, might also benefit from progress made in that context. Activated Ras is an extremely challenging direct drug target due to the inherent difficulties in disrupting the protein:protein interactions that underlie its activation and function. Major investments have been made to target Ras through indirect routes. Inhibition of farnesyl transferase to block Ras maturation has failed in large clinical trials. Likely reasons for this disappointing outcome include the significant and underappreciated differences in the isoforms of Ras. It is still plausible that inhibition of farnesyl transferase will prove effective for disease that is driven by activated H-Ras. The principal current focus of drugs entering clinic trial is inhibition of pathways downstream of activated Ras, for example, trametinib, a first-in-class MEK inhibitor. The complexity of signaling that is driven by activated Ras indicates that effective inhibition of oncogenic transduction through this approach will be difficult, with resistance being likely to emerge through switch to parallel pathways. Durable disease responses will probably require combinatorial block of several downstream targets.
Insights
Targeting activated Ras proteins offers potential cancer treatments, but direct targeting is difficult. Indirect strategies like MEK inhibition show promise but may require combination therapies to overcome resistance.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Activated Ras proteins drive numerous cancers and some genetic disorders.
- Directly targeting activated Ras is challenging due to complex protein interactions.
- Previous indirect strategies, like farnesyl transferase inhibition, have shown limited success.
Purpose of the Study:
- To review the challenges and progress in targeting activated Ras for therapeutic benefit.
- To evaluate the efficacy of direct and indirect targeting strategies for Ras-driven diseases.
- To discuss future directions for effective Ras-targeted therapies.
Main Methods:
- Review of existing literature on Ras signaling pathways.
- Analysis of clinical trial outcomes for Ras-targeted drugs.
- Discussion of resistance mechanisms and combination therapy approaches.
Main Results:
- Direct Ras targeting remains difficult due to its activation mechanisms.
- Farnesyl transferase inhibition has largely failed in clinical trials, possibly due to Ras isoform differences.
- Downstream pathway inhibition (e.g., MEK inhibitors) is a current focus, but resistance is anticipated.
Conclusions:
- Effective treatment for Ras-driven cancers likely requires targeting multiple downstream pathways.
- Combinatorial blockade of several downstream targets may be necessary for durable responses.
- Further research into Ras isoform-specific targeting and novel therapeutic strategies is warranted.
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