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Updated: Aug 5, 2026

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Current Molecular-Targeted Therapies in Melanoma and Their Mechanism of Resistance
Rose Bahari1, Molly Nguyen1, Nayyab Sohail1
1Department of Biomedical Sciences, University of Illinois College of Medicine at Rockford, Rockford, IL 61107, USA.
Abstract:
Melanoma is an aggressive skin cancer that has the potential to metastasize to the lymph nodes, lungs, liver, and brain. Therefore, the prevention and treatment of this condition are essential for achieving lower incidence rates and improving patient outcomes. Traditional treatment methods like surgery, radiation therapy, and chemotherapy have shown limited efficacy in the treatment of metastatic melanoma, and hence new treatment strategies have been developed. These recently developed treatment options include combining targeted therapies with immunotherapies to reduce drug resistance and improve overall effectiveness in preventing melanoma progression. Moreover, BRAF mutations are found in approximately 40-50% of cutaneous melanomas, and NRAS mutations in 15-25%, making these the two most common oncogenic drivers in the MAPK pathway. While alterations in other genes such as KRAS (~1.7%), HRAS (~1%), and MET (~2-4%) are relatively rare in melanoma, they still remain important to disease biology and are under investigation as potential therapeutic targets. These alterations may contribute to tumor progression, metastasis, and therapeutic resistance, highlighting the importance of continued investigation of targeted strategies in melanoma. This review aims to explore the role of each of these genes in melanoma, discusses their resistance mechanism, and summarizes preclinical and clinical trials involving drug combinations. By integrating current evidence on melanoma-associated genomic alterations with available targeted and immune approaches, this review aims to define molecular and clinical contexts that suggest potential treatment selections for melanoma patients.
Insights
Targeted therapies and immunotherapies offer new hope for treating metastatic melanoma by overcoming resistance to traditional treatments. This review explores gene mutations and drug combinations for improved patient outcomes.
Area of Science:
- Oncology
- Genetics
- Dermatology
Background:
- Melanoma is an aggressive skin cancer with high metastatic potential.
- Traditional treatments (surgery, radiation, chemotherapy) show limited efficacy for metastatic melanoma.
- New strategies combine targeted therapies and immunotherapies to improve effectiveness and reduce drug resistance.
Purpose of the Study:
- To explore the role of key genes (BRAF, NRAS, KRAS, HRAS, MET) in melanoma.
- To discuss gene mutation-driven resistance mechanisms.
- To summarize preclinical and clinical trials of drug combinations for melanoma treatment.
Main Methods:
- Literature review of genomic alterations in melanoma.
- Analysis of targeted therapy and immunotherapy approaches.
- Summary of preclinical and clinical trial data on drug combinations.
Main Results:
- BRAF and NRAS mutations are common drivers in the MAPK pathway.
- Less common mutations (KRAS, HRAS, MET) also play roles in melanoma progression and resistance.
- Investigating drug combinations targeting these alterations is crucial for therapeutic advancement.
Conclusions:
- Understanding melanoma-associated genomic alterations is key to selecting appropriate targeted and immune treatments.
- Combination therapies show promise in overcoming resistance and improving patient outcomes.
- Continued research into targeted strategies is essential for advancing melanoma care.
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