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Updated: May 3, 2026

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Protein kinase Cδ is a therapeutic target in malignant melanoma with NRAS mutation
Asami Takashima1, Brandon English, Zhihong Chen
1Cancer Center, ‡Departments of Medicine, Biochemistry, Pediatrics, Microbiology, Pathology and Laboratory Medicine, and §Department of Dermatology, Boston University School of Medicine , 72 E Concord Street, Boston, Massachusetts 02118, United States.
Abstract:
NRAS is the second most frequently mutated gene in melanoma. Previous reports have demonstrated the sensitivity of cancer cell lines carrying KRAS mutations to apoptosis initiated by inhibition of protein kinase Cδ (PKCδ). Here, we report that PKCδ inhibition is cytotoxic in melanomas with primary NRAS mutations. Novel small-molecule inhibitors of PKCδ were designed as chimeric hybrids of two naturally occurring PKCδ inhibitors, staurosporine and rottlerin. The specific hypothesis interrogated and validated is that combining two domains of two naturally occurring PKCδ inhibitors into a chimeric or hybrid structure retains biochemical and biological activity and improves PKCδ isozyme selectivity. We have devised a potentially general synthetic protocol to make these chimeric species using Molander trifluorborate coupling chemistry. Inhibition of PKCδ, by siRNA or small molecule inhibitors, suppressed the growth of multiple melanoma cell lines carrying NRAS mutations, mediated via caspase-dependent apoptosis. Following PKCδ inhibition, the stress-responsive JNK pathway was activated, leading to the activation of H2AX. Consistent with recent reports on the apoptotic role of phospho-H2AX, knockdown of H2AX prior to PKCδ inhibition mitigated the induction of caspase-dependent apoptosis. Furthermore, PKCδ inhibition effectively induced cytotoxicity in BRAF mutant melanoma cell lines that had evolved resistance to a BRAF inhibitor, suggesting the potential clinical application of targeting PKCδ in patients who have relapsed following treatment with BRAF inhibitors. Taken together, the present work demonstrates that inhibition of PKCδ by novel small molecule inhibitors causes caspase-dependent apoptosis mediated via the JNK-H2AX pathway in melanomas with NRAS mutations or BRAF inhibitor resistance.
Insights
Targeting protein kinase Cδ (PKCδ) with novel inhibitors induces apoptosis in NRAS-mutant melanoma. This approach also shows promise for BRAF inhibitor-resistant melanoma, offering a new therapeutic avenue.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- NRAS mutations are common in melanoma.
- Protein kinase Cδ (PKCδ) inhibition shows promise in KRAS-mutant cancers.
- Melanoma with NRAS mutations presents a therapeutic challenge.
Purpose of the Study:
- To investigate the efficacy of novel PKCδ inhibitors in NRAS-mutant melanoma.
- To explore the mechanism of PKCδ inhibition-induced apoptosis.
- To assess the potential of PKCδ inhibition in BRAF inhibitor-resistant melanoma.
Main Methods:
- Design and synthesis of novel chimeric PKCδ inhibitors.
- Utilizing siRNA and small molecule inhibitors to target PKCδ.
- Investigating downstream signaling pathways including JNK and H2AX.
- Assessing cytotoxicity in various melanoma cell lines, including resistant ones.
Main Results:
- PKCδ inhibition suppressed growth in NRAS-mutant melanoma cell lines via caspase-dependent apoptosis.
- Inhibition activated the JNK pathway, leading to H2AX phosphorylation.
- Knockdown of H2AX reduced apoptosis induction.
- PKCδ inhibition demonstrated cytotoxicity in BRAF inhibitor-resistant melanoma cells.
Conclusions:
- Novel small molecule PKCδ inhibitors are effective against NRAS-mutant melanoma.
- The JNK-H2AX pathway is crucial for PKCδ inhibition-induced apoptosis.
- Targeting PKCδ represents a potential strategy for treating BRAF inhibitor-resistant melanoma.
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