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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Targeting oncogenic Raf protein-serine/threonine kinases in human cancers
1Blue Ridge Institute for Medical Research, 3754 Brevard Road, Suite 116, Box 19, Horse Shoe, North Carolina 28742-8814, United States.
Abstract:
The Ras-Raf-MEK-ERK signal transduction cascade is arguably the most important oncogenic pathway in human cancers. Ras-GTP promotes the formation of active homodimers or heterodimers of A-Raf, B-Raf, and C-Raf by an intricate process. These enzymes are protein-serine/threonine kinases that catalyze the phosphorylation and activation of MEK1 and MEK2 which, in turn, catalyze the phosphorylation and activation of ERK1 and ERK2. The latter catalyze the regulatory phosphorylation of dozens of cytosolic and nuclear proteins. The X-ray crystal structure of B-Raf-MEK1 depicts a face-to-face dimer with interacting activation segments; B-Raf is in an active conformation and MEK1 is in an inactive conformation. Besides the four traditional components in the Ras-Raf-MEK-ERK signaling module, scaffolding proteins such as Kinase Suppressor of Ras (KSR1/2) play an important role in this signaling cascade by functioning as a scaffold protein. RAS mutations occur in about 30% of all human cancers. Moreover, BRAFV600E mutations occur in about 8% of all cancers making this the most prevalent oncogenic protein kinase. Vemurafenib and dabrafenib are B-RafV600E inhibitors that were approved for the treatment of melanomas bearing the V600E mutation. Coupling MEK1/2 inhibitors with B-Raf inhibitors is more effective in treating such melanomas and dual therapy is now the standard of care. Vemurafenib and cobimetanib, dabrafenib and trametinib, and encorafenib plus binimetinib are the FDA-approved combinations for the treatment of BRAFV600E melanomas. Although such mutations occur in other neoplasms including thyroid, colorectal, and non-small cell lung cancers, these agents are not as effective in treating these non-melanoma neoplasms. Vemurafenib and dabrafenib produce the paradoxical activation of the MAP kinase pathway in wild type BRAF cells. The precise mechanism for this activation is unclear, but drug-induced Raf activating side-to-side dimerization appears to be an essential step. Although 63%-76% of all people with advanced melanoma with the BRAF V600E mutation derive clinical benefit from combination therapy, median progression-free survival lasts only about nine months and 90% of patients develop resistance within one year. The various secondary resistance mechanisms include NRAS or KRAS mutations (20%), BRAF splice variants (16%), BRAFV600E/K amplifications (13%), MEK1/2 mutations (7%), and non-MAP kinase pathway alterations (11%). Vemurafenib and dabrafenib bind to an inactive form of B-Raf (αC-helixout and DFG-Din) and are classified as type I½ inhibitors. LY3009120 and lifirafenib, which are in the early drug-development stage, bind to a different inactive form of B-Raf (DFG-Dout) and are classified as type II inhibitors. Besides targeting B-Raf and MEK protein kinases, immunotherapies that include ipilimumab, pembrolizumab, and nivolumab have been FDA-approved for the treatment of melanomas. Current clinical trials are underway to determine the optimal usage of targeted and immunotherapies.
Insights
The Ras-Raf-MEK-ERK pathway is crucial in cancer. Combination therapies targeting BRAF V600E mutations in melanoma show promise but face resistance, necessitating further research into resistance mechanisms and novel treatments.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The Ras-Raf-MEK-ERK signaling cascade is a pivotal oncogenic pathway implicated in numerous human cancers.
- Mutations in RAS and BRAF, particularly BRAF V600E, are prevalent drivers in various malignancies, especially melanoma.
- Current treatments for BRAF V600E-mutated melanoma involve combination therapies of BRAF and MEK inhibitors, which have improved outcomes but are limited by resistance.
Purpose of the Study:
- To review the intricate mechanisms of the Ras-Raf-MEK-ERK pathway and its role in oncogenesis.
- To discuss the efficacy and limitations of current targeted therapies for BRAF V600E-mutated cancers, focusing on melanoma.
- To explore the emerging resistance mechanisms and novel therapeutic strategies, including combination therapies and immunotherapies.
Main Methods:
- Review of existing literature on the Ras-Raf-MEK-ERK pathway.
- Analysis of clinical data on BRAF and MEK inhibitor efficacy and resistance in melanoma.
- Examination of structural and biochemical data for BRAF inhibitors.
- Overview of ongoing clinical trials for melanoma treatment.
Main Results:
- BRAF V600E mutations are the most common oncogenic protein kinase alteration, driving melanoma proliferation.
- Combination therapy with BRAF and MEK inhibitors is the standard of care for BRAF V600E melanoma, offering clinical benefit but with limited duration due to resistance.
- Resistance mechanisms are diverse, including secondary mutations, gene amplifications, and pathway alterations.
- Paradoxical activation of the MAP kinase pathway by BRAF inhibitors in wild-type BRAF cells is a noted phenomenon.
- Newer generation BRAF inhibitors (Type II) and combination with immunotherapies are under investigation.
Conclusions:
- Targeted therapies have revolutionized melanoma treatment, but acquired resistance remains a significant clinical challenge.
- Understanding resistance mechanisms is critical for developing more durable and effective therapeutic strategies.
- Combination approaches, including targeted agents and immunotherapies, hold promise for overcoming resistance and improving patient outcomes in BRAF-mutated melanomas and other cancers.
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