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Updated: Feb 6, 2026

A Robust Discovery Platform for the Identification of Novel Mediators of Melanoma Metastasis
Published on: March 8, 2022
Robust prediction of response to immune checkpoint blockade therapy in metastatic melanoma
Noam Auslander1,2, Gao Zhang3, Joo Sang Lee1,2
1Center for Bioinformatics and Computational Biology, Department of Computer Science, University of Maryland, College Park, MD, USA.
Abstract:
Immune checkpoint blockade (ICB) therapy provides remarkable clinical gains and has been very successful in treatment of melanoma. However, only a subset of patients with advanced tumors currently benefit from ICB therapies, which at times incur considerable side effects and costs. Constructing predictors of patient response has remained a serious challenge because of the complexity of the immune response and the shortage of large cohorts of ICB-treated patients that include both 'omics' and response data. Here we build immuno-predictive score (IMPRES), a predictor of ICB response in melanoma which encompasses 15 pairwise transcriptomics relations between immune checkpoint genes. It is based on two key conjectures: (i) immune mechanisms underlying spontaneous regression in neuroblastoma can predict melanoma response to ICB, and (ii) key immune interactions can be captured via specific pairwise relations of the expression of immune checkpoint genes. IMPRES is validated on nine published datasets1-6 and on a newly generated dataset with 31 patients treated with anti-PD-1 and 10 with anti-CTLA-4, spanning 297 samples in total. It achieves an overall accuracy of AUC = 0.83, outperforming existing predictors and capturing almost all true responders while misclassifying less than half of the nonresponders. Future studies are warranted to determine the value of the approach presented here in other cancer types.
Insights
A new predictor, IMPRES, identifies melanoma patients likely to respond to immune checkpoint blockade (ICB) therapy. This tool analyzes gene expression to improve treatment selection and outcomes for advanced melanoma.
Area of Science:
- Oncology
- Immunology
- Bioinformatics
Background:
- Immune checkpoint blockade (ICB) therapy offers significant benefits for melanoma patients.
- However, patient response to ICB is variable, necessitating better predictive tools.
- Current challenges include the complexity of immune responses and limited data.
Purpose of the Study:
- To develop and validate IMPRES, a novel predictor of ICB response in melanoma.
- To leverage transcriptomics data and immune checkpoint gene interactions for prediction.
- To improve patient stratification for ICB therapy.
Main Methods:
- Developed IMPRES, a score based on 15 pairwise transcriptomics relations between immune checkpoint genes.
- Utilized conjectures linking neuroblastoma regression mechanisms to melanoma ICB response.
- Validated IMPRES on nine published datasets and a new cohort of 41 patients (31 anti-PD-1, 10 anti-CTLA-4).
Main Results:
- IMPRES achieved an Area Under the Curve (AUC) of 0.83 in predicting ICB response.
- The predictor outperformed existing methods.
- It accurately identified most responders while misclassifying fewer than half of non-responders.
Conclusions:
- IMPRES demonstrates high accuracy in predicting melanoma response to ICB.
- The findings suggest the utility of transcriptomics-based pairwise gene relations for predicting therapy outcomes.
- Further research is needed to explore IMPRES applicability in other cancer types.
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