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Updated: Aug 27, 2025

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Melanoma: Molecular genetics, metastasis, targeted therapies, immunotherapies, and therapeutic resistance
William Wagstaff1,2, Rimel N Mwamba1, Karina Grullon1
1The Pritzker School of Medicine, and the Medical Scientist Training Program, The University of Chicago Medical Center, Chicago, IL 60637, USA.
Abstract:
Cutaneous melanoma is a common cancer and cases have steadily increased since the mid 70s. For some patients, early diagnosis and surgical removal of melanomas is lifesaving, while other patients typically turn to molecular targeted therapies and immunotherapies as treatment options. Easy sampling of melanomas allows the scientific community to identify the most prevalent mutations that initiate melanoma such as the BRAF, NRAS, and TERT genes, some of which can be therapeutically targeted. Though initially effective, many tumors acquire resistance to the targeted therapies demonstrating the need to investigate compensatory pathways. Immunotherapies represent an alternative to molecular targeted therapies. However, inter-tumoral immune cell populations dictate initial therapeutic response and even tumors that responded to treatment develop resistance in the long term. As the protocol for combination therapies develop, so will our scientific understanding of the many pathways at play in the progression of melanoma. The future direction of the field may be to find a molecule that connects all of the pathways. Meanwhile, noncoding RNAs have been shown to play important roles in melanoma development and progression. Studying noncoding RNAs may help us to understand how resistance - both primary and acquired - develops; ultimately allow us to harness the true potential of current therapies. This review will cover the basic structure of the skin, the mutations and pathways responsible for transforming melanocytes into melanomas, the process by which melanomas metastasize, targeted therapeutics, and the potential that noncoding RNAs have as a prognostic and treatment tool.
Insights
Melanoma treatment faces challenges with drug resistance. Noncoding RNAs offer a promising avenue for understanding and overcoming resistance in melanoma, potentially improving therapies.
Area of Science:
- Dermatology and Oncology
- Molecular Biology
- Cancer Research
Background:
- Cutaneous melanoma incidence is rising, necessitating advanced treatment strategies beyond surgery.
- Current treatments like targeted therapies and immunotherapies face significant challenges due to tumor resistance.
- Understanding the molecular pathways driving melanoma is crucial for developing effective therapies.
Purpose of the Study:
- To review the molecular basis of melanoma development and metastasis.
- To explore current targeted therapeutics and immunotherapies for melanoma.
- To investigate the role of noncoding RNAs in melanoma progression and therapeutic resistance.
Main Methods:
- Review of existing scientific literature on melanoma genetics, pathways, and treatment.
- Analysis of mutation data (BRAF, NRAS, TERT) and their therapeutic implications.
- Exploration of noncoding RNA functions in melanoma development and resistance.
Main Results:
- Melanoma arises from specific genetic mutations (BRAF, NRAS, TERT) and involves complex signaling pathways.
- Tumor resistance to targeted therapies and immunotherapies is a major clinical challenge.
- Noncoding RNAs are implicated in melanoma development and the emergence of primary and acquired resistance.
Conclusions:
- Targeted therapies and immunotherapies show promise but are limited by resistance mechanisms.
- Noncoding RNAs represent a potential tool for predicting prognosis and overcoming treatment resistance in melanoma.
- Further research into noncoding RNAs could unlock new therapeutic strategies for melanoma.
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