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Updated: Jan 14, 2026

JUMPn: A Streamlined Application for Protein Co-Expression Clustering and Network Analysis in Proteomics
Published on: October 19, 2021
Analysis of intracellular and intercellular crosstalk from omics data
Alice Chiodi1, Paride Pelucchi1, Ettore Mosca1
1Institute of Biomedical Technologies, National Research Council, Segrate (Milan), Italy.
We developed Ulisse, a novel computational approach to analyze molecular interactions and cell communications in disease. This method enhances understanding of complex biological data, aiding in the identification of disease-associated genes.
Area of Science:
- Computational Biology
- Systems Biology
- Genomics
Background:
- Disease phenotypes arise from altered molecular interactions exceeding resilience thresholds.
- Assessing intra- and inter-cellular molecular interaction alterations is a significant challenge in omics research.
Purpose of the Study:
- To introduce Ulisse, a new computational approach for analyzing molecular interactions and cell-cell communications.
- To complement existing enrichment, pathway crosstalk, and cell-cell communication analyses.
- To identify genes associated with specific phenotypes by analyzing molecular interaction alterations.
Main Methods:
- Ulisse analyzes gene lists with quantitative alteration information from omics studies.
- It quantifies pathway crosstalk using two distinct null models for statistical robustness.
- The approach highlights alterations in components regulating inter-process and inter-cellular interactions.
Main Results:
- Ulisse was applied to single-cell RNA sequencing data from triple-negative breast cancer samples.
- The study demonstrated the alteration of pathway crosstalks and cell-cell communications in these samples.
- The approach successfully identified genes associated with the disease phenotype.
Conclusions:
- Crosstalk analysis, as implemented by Ulisse, is a valuable tool for biomedical research.
- Ulisse aids in translating complex multi-omics data into actionable biological insights.
- The method enhances the toolkit for understanding disease mechanisms at a molecular level.
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