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Drugging "undruggable" genes for cancer treatment: Are we making progress?
Michael J Duffy1,2, John Crown3
1UCD School of Medicine, Conway Institute of Biomolecular and Biomedical Research, University College Dublin, Dublin 4, Ireland.
Abstract:
RAS, TP53 (p53) and MYC are among the most frequently altered driver genes in cancer. Thus, RAS is the most frequently mutated oncogene, MYC the most frequently amplified gene and TP53 the most frequently mutated tumor suppressor gene and overall the most frequently mutated gene in cancer. Theoretically, therefore, these genes are highly attractive targets for cancer treatment. However, as the protein products of each of these genes lack an accessible hydrophobic pocket into which low molecular weight compounds might bind with high affinity, they have proved difficult to target and have traditionally been referred to as "undruggable." Despite this branding, several low molecular weight compounds targeting each of these proteins have recently been reported to have anticancer activity in preclinical models. Indeed, several drugs inhibiting mutant KRAS, MYC overexpression or reactivating mutant p53 have undergone or are currently undergoing clinical trials. For targeting mutant KRAS and reactivating mutant p53, trials have progressed to a Phase III stage, that is, the mutant-p53 reactivating drug, APR-246 is currently being investigated in patients with myelodysplastic syndrome (MDS) and the RAS inhibitor, rigosertib is also undergoing evaluation in patients with MDS. Although there appears to be no directly acting MYC inhibitor currently being tested in a clinical trial, an anti-MYC compound, known as OmoMYC has been extensively validated in multiple preclinical models and is being developed for clinical evaluation. Based on current evidence, the traditional perception of RAS, p53 and MYC as being "undruggable" would appear to be coming to an end.
Insights
Cancer driver genes RAS, TP53 (p53), and MYC, once deemed "undruggable," are now yielding to new targeted therapies. Promising drugs are in clinical trials for mutant RAS and p53, with MYC inhibitors in development.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- RAS, TP53 (p53), and MYC are frequently altered driver genes in various cancers.
- These genes, encoding RAS oncogene, MYC amplification, and TP53 tumor suppressor, are historically considered
- undruggable" due to lack of accessible binding pockets for small molecules.
Purpose of the Study:
- To review the progress in developing targeted therapies against RAS, p53, and MYC.
- To assess the current status of drugs targeting these previously undruggable cancer genes.
Main Methods:
- Literature review of preclinical and clinical studies on RAS, p53, and MYC targeted therapies.
- Analysis of ongoing clinical trials for drugs targeting mutant KRAS, MYC overexpression, and mutant p53.
Main Results:
- Several small molecule compounds targeting RAS, p53, and MYC show anticancer activity in preclinical models.
- Drugs targeting mutant KRAS (rigosertib) and reactivating mutant p53 (APR-246) have reached Phase III clinical trials for myelodysplastic syndrome (MDS).
- An anti-MYC compound (OmoMYC) is in clinical development after extensive preclinical validation.
Conclusions:
- The perception of RAS, p53, and MYC as "undruggable" is being challenged by emerging targeted therapies.
- Clinical trials indicate significant progress in developing effective treatments for cancers driven by these key genes.
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