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Updated: Aug 9, 2026

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Molecular targets in melanoma from angiogenesis to apoptosis
Jeffrey A Sosman1, Igor Puzanov
1Vanderbilt-Ingram Cancer Center, Division of Hematology/Oncology, Vanderbilt University Medical Center, Nashville, Tennessee 37232, USA. jeff.sosman@vanderbilt.edu
Abstract:
Angiogenesis is a hallmark of melanoma progression. Antiangiogenic agents have been infrequently tested in patients with advanced melanoma. Experience with most other cancers suggests that single-agent application of angiogenic inhibitors is unlikely to have substantial clinical antitumor activity in melanoma. It is more likely that combinations of antiangiogenic agents with either chemotherapy or other targeted therapy will be needed to produce significant clinical benefit. In melanoma, numerous cellular pathways important to cell proliferation, apoptosis, or metastases have recently been shown to be activated. Activation occurs through specific mutations (B-RAF, N-RAS, and PTEN) or changes in expression levels of various proteins (PTEN, BCL-2, NF-kappaB, CDK2, and cyclin D1). Agents that block these pathways are rapidly entering the clinical setting, including RAF inhibitors (sorafenib), mitogen-activated protein kinase inhibitors (PD0325901), mammalian target of rapamycin inhibitors (CCI-779), and farnesyl transferase inhibitors (R115777) that inhibit N-RAS and proteasome inhibitors (PS-341) that block activation of nuclear factor-kappaB (NF-kappaB). It will be a challenge to evaluate these agents alone, in combination with each other, or with chemotherapy in patients with melanoma. Trials with large populations of biologically ill-defined tumors run the risk of missing clinical antitumor activity that is important for a particular yet-to-be-defined subset of patients. To rationally and optimally develop these targeted agents, it will be critical to adequately test for the presence of the presumed cellular target in tumor specimens and the effect of therapy on the proposed target (biological response). Investigators in this field will need to carefully plan these trials so that at the end of the day, we learn from both the failures and successes of targeted therapy.
Insights
Targeted therapies show promise for advanced melanoma, but single agents are unlikely effective. Combinations with chemotherapy or other targeted agents, alongside biological response assessment, are crucial for clinical benefit.
Area of Science:
- Oncology
- Melanoma Research
- Molecular Biology
Background:
- Angiogenesis is a key factor in melanoma progression.
- Antiangiogenic agents have seen limited use in advanced melanoma.
- Single-agent antiangiogenic therapy is unlikely to yield significant antitumor activity.
Purpose of the Study:
- To explore the potential of targeted therapies in advanced melanoma.
- To discuss the challenges and strategies for evaluating novel therapeutic agents.
- To emphasize the need for combination therapies and biological response assessment.
Main Methods:
- Review of current understanding of melanoma cellular pathways.
- Identification of activated pathways and relevant mutations (e.g., B-RAF, N-RAS, PTEN).
- Overview of emerging targeted agents and their mechanisms of action.
Main Results:
- Multiple cellular pathways driving melanoma proliferation, apoptosis, and metastasis are activated.
- Various targeted agents inhibiting these pathways are entering clinical trials.
- Combination strategies are likely necessary for substantial clinical benefit.
Conclusions:
- Developing targeted therapies for melanoma requires careful trial design.
- Assessing the presence of cellular targets and therapy's biological effect is critical.
- Learning from both successes and failures is essential for advancing melanoma treatment.
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