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Updated: May 9, 2026

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Development of a human three-dimensional organotypic skin-melanoma spheroid model for in vitro drug testing
H Vörsmann1, F Groeber, H Walles
1Institute of Cell Biology and Immunology, University of Stuttgart, 70569 Stuttgart, Germany.
Abstract:
Despite remarkable efforts, metastatic melanoma (MM) still presents with significant mortality. Recently, mono-chemotherapies are increasingly replenished by more cancer-specific combination therapies involving death ligands and drugs interfering with cell signaling. Still, MM remains a fatal disease because tumors rapidly develop resistance to novel therapies thereby regaining tumorigenic capacity. Although genetically engineered mouse models for MM have been developed, at present no model is available that reliably mimics the human disease and is suitable for studying mechanisms of therapeutic obstacles including cell death resistance. To improve the increasing requests on new therapeutic alternatives, reliable human screening models are demanded that translate the findings from basic cellular research into clinical applications. By developing an organotypic full skin equivalent, harboring melanoma tumor spheroids of defined sizes we have invented a cell-based model that recapitulates both the 3D organization and multicellular complexity of an organ/tumor in vivo but at the same time accommodates systematic experimental intervention. By extending our previous findings on melanoma cell sensitization toward TRAIL (tumor necrosis factor-related apoptosis-inducing ligand) by co-application of sublethal doses of ultraviolet-B radiation (UVB) or cisplatin, we show significant differences in the therapeutical outcome to exist between regular two-dimensional (2D) and complex in vivo-like 3D models. Of note, while both treatment combinations killed the same cancer cell lines in 2D culture, skin equivalent-embedded melanoma spheroids are potently killed by TRAIL+cisplatin treatment but remain almost unaffected by the TRAIL+UVB combination. Consequently, we have established an organotypic human skin-melanoma model that will facilitate efforts to improve therapeutic outcomes for malignant melanoma by providing a platform for the investigation of cytotoxic treatments and tailored therapies in a more physiological setting.
Insights
Researchers developed a 3D human skin model to test melanoma treatments. This new model shows that TRAIL combined with cisplatin effectively kills melanoma cells, unlike TRAIL with UVB radiation, offering a better platform for drug discovery.
Area of Science:
- Oncology
- Biotechnology
- Dermatology
Background:
- Metastatic melanoma (MM) has high mortality despite advances in combination therapies.
- Tumor resistance to novel treatments remains a significant challenge in MM therapy.
- Existing mouse models do not fully replicate human MM or study therapeutic resistance mechanisms.
Purpose of the Study:
- To develop a reliable, human-based 3D organotypic model for studying metastatic melanoma and therapeutic resistance.
- To investigate the efficacy of combination therapies, specifically TRAIL with UVB or cisplatin, in a physiologically relevant melanoma model.
Main Methods:
- Development of an organotypic full skin equivalent model containing melanoma tumor spheroids.
- Comparison of treatment outcomes between 2D cell cultures and the 3D skin-melanoma model.
- Evaluation of combined treatments: TRAIL with ultraviolet-B (UVB) radiation and TRAIL with cisplatin.
Main Results:
- The 3D organotypic model recapitulates the complex multicellular organization of human skin and tumors.
- TRAIL combined with cisplatin demonstrated potent killing of melanoma spheroids in the 3D model.
- TRAIL combined with UVB radiation showed significantly reduced efficacy in the 3D model compared to 2D cultures.
Conclusions:
- The developed organotypic human skin-melanoma model provides a more physiologically relevant platform for evaluating cancer therapies.
- This model highlights differential treatment responses in 3D versus 2D settings, crucial for understanding therapeutic resistance.
- The findings support the potential of TRAIL plus cisplatin as an effective combination therapy for metastatic melanoma and offer a new avenue for drug screening.

