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Updated: Aug 1, 2025

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Multi-organ landscape of therapy-resistant melanoma
Sixue Liu1, Prashanthi Dharanipragada1, Shirley H Lomeli1
1Division of Dermatology, Department of Medicine, David Geffen School of Medicine, University of California, Los Angeles, Los Angeles, CA, USA.
Abstract:
Metastasis and failure of present-day therapies represent the most common causes of mortality in patients with cutaneous melanoma. To identify the underlying genetic and transcriptomic landscapes, in this study we analyzed multi-organ metastases and tumor-adjacent tissues from 11 rapid autopsies after treatment with MAPK inhibitor (MAPKi) and/or immune checkpoint blockade (ICB) and death due to acquired resistance. Either treatment elicits shared genetic alterations that suggest immune-evasive, cross-therapy resistance mechanisms. Large, non-clustered deletions, inversions and inter-chromosomal translocations dominate rearrangements. Analyzing data from separate melanoma cohorts including 345 therapy-naive patients and 35 patients with patient-matched pre-treatment and post-acquired resistance tumor samples, we performed cross-cohort analyses to identify MAPKi and ICB as respective contributors to gene amplifications and deletions enriched in autopsy versus therapy-naive tumors. In the autopsy cohort, private/late mutations and structural variants display shifted mutational and rearrangement signatures, with MAPKi specifically selecting for signatures of defective homologous-recombination, mismatch and base-excision repair. Transcriptomic signatures and crosstalks with tumor-adjacent macroenvironments nominated organ-specific adaptive pathways. An immune-desert, CD8+-macrophage-biased archetype, T-cell exhaustion and type-2 immunity characterized the immune contexture. This multi-organ analysis of therapy-resistant melanoma presents preliminary insights with potential to improve therapeutic strategies.
Insights
Metastatic melanoma treatments can fail due to acquired resistance. This study reveals shared genetic changes and organ-specific adaptations driving resistance to MAPK inhibitors and immune checkpoint blockade in melanoma patients.
Area of Science:
- Oncology
- Genomics
- Immunology
Background:
- Metastasis and treatment failure are leading causes of death in cutaneous melanoma.
- Understanding acquired resistance mechanisms is crucial for improving patient outcomes.
Purpose of the Study:
- To investigate the genetic and transcriptomic landscapes of multi-organ melanoma metastases.
- To identify resistance mechanisms following treatment with MAPK inhibitors (MAPKi) and/or immune checkpoint blockade (ICB).
Main Methods:
- Analysis of multi-organ metastases and tumor-adjacent tissues from 11 rapid autopsies.
- Cross-cohort analysis with 345 therapy-naive and 35 pre/post-treatment melanoma samples.
- Examination of genetic alterations, structural variants, and transcriptomic signatures.
Main Results:
- MAPKi and ICB treatments induce shared genetic alterations suggesting immune evasion and cross-therapy resistance.
- Large deletions, inversions, and translocations are dominant rearrangements.
- MAPKi treatment selects for defects in DNA repair pathways (homologous-recombination, mismatch, base-excision).
- Transcriptomic analysis reveals organ-specific adaptive pathways and an immune-desert, CD8+-macrophage-biased, T-cell exhausted, type-2 immune contexture.
Conclusions:
- Acquired resistance in melanoma involves complex genetic and transcriptomic adaptations.
- Therapeutic strategies targeting these resistance mechanisms are needed.
- Insights from multi-organ analysis can inform future melanoma treatment approaches.
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