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Updated: Oct 18, 2025

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Single-cell trajectories of melanoma cell resistance to targeted treatment
Maria Schmidt1, Lena Sünke Mortensen1, Henry Loeffler-Wirth1
1Interdisciplinary Centre for Bioinformatics, University of Leipzig, Leipzig 04107, Germany.
Objective:
Cellular heterogeneity is regarded as a major factor affecting treatment response and resistance in malignant melanoma. Recent developments in single-cell sequencing technology have provided deeper insights into these mechanisms.
Methods:
Here, we analyzed a BRAFV600E-mutant melanoma cell line by single-cell RNA-seq under various conditions: cells sensitive to BRAF inhibition with BRAF inhibitor vemurafenib and cells resistant to BRAF inhibition with vemurafenib alone or vemurafenib in combination with the MEK1/2 inhibitors cobimetinib or trametinib. Dimensionality reduction by t-distributed stochastic neighbor embedding and self-organizing maps identified distinct trajectories of resistance development clearly separating the 4 treatment conditions in cell and gene state space.
Results:
Trajectories associated with resistance to single-agent treatment involved cell cycle, extracellular matrix, and de-differentiation programs. In contrast, shifts detected in double-resistant cells primarily affected translation and mitogen-activated protein kinase pathway reactivation, with a small subpopulation showing markers of pluripotency. These findings were validated in pseudotime analyses and RNA velocity measurements.
Conclusions:
The single-cell transcriptomic analyses reported here employed a spectrum of bioinformatics methods to identify mechanisms of melanoma resistance to single- and double-agent treatments. This study deepens our understanding of treatment-induced cellular reprogramming and plasticity in melanoma cells and identifies targets of potential relevance to the management of treatment resistance.
Insights
Cellular heterogeneity drives melanoma treatment resistance. Single-cell RNA sequencing revealed distinct resistance pathways for single- and double-agent therapies, highlighting potential new therapeutic targets.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Cellular heterogeneity is a key challenge in melanoma treatment, impacting response and resistance.
- Single-cell sequencing technologies offer advanced insights into complex biological systems like cancer.
Purpose of the Study:
- To investigate the mechanisms of treatment resistance in BRAF-mutant melanoma using single-cell RNA sequencing.
- To differentiate resistance trajectories under single-agent (vemurafenib) and combination (vemurafenib + MEK inhibitors) therapies.
Main Methods:
- Analysis of a BRAF V600E-mutant melanoma cell line under four treatment conditions using single-cell RNA sequencing.
- Application of dimensionality reduction techniques (t-SNE, SOM) and RNA velocity for trajectory analysis.
Main Results:
- Distinct resistance trajectories were identified, separating treatment conditions in cell and gene state space.
- Single-agent resistance involved cell cycle, extracellular matrix, and de-differentiation programs.
- Combination therapy resistance primarily affected translation and MAPK pathway reactivation, with some cells showing pluripotency markers.
Conclusions:
- Single-cell transcriptomics elucidated mechanisms of melanoma resistance to various treatments.
- The study enhances understanding of treatment-induced cellular reprogramming and plasticity in melanoma.
- Identified targets may be relevant for overcoming treatment resistance in melanoma management.
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