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Updated: May 10, 2025

Integration of Bioinformatics Approaches and Experimental Validations to Understand the Role of Notch Signaling in Ovarian Cancer
Published on: January 12, 2020
Direct cell interactions potentially regulate transcriptional programmes that control the responses of high grade
Sodiq A Hameed1, Walter Kolch2,3, Donal J Brennan2,4
1Systems Biology Ireland, School of Medicine, University College Dublin, Belfield, Dublin, D04 V1W8, Ireland. sodiq.hameed@ucdconnect.ie.
Abstract:
The tumour microenvironment is composed of a complex cellular network involving cancer, stromal and immune cells in dynamic interactions. A large proportion of this network relies on direct physical interactions between cells, which may impact patient responses to clinical therapy. Doublets in scRNA-seq are usually excluded from analysis. However, they may represent directly interacting cells. To decipher the physical interaction landscape in relation to clinical prognosis, we inferred a physical cell-cell interaction (PCI) network from 'biological' doublets in a scRNA-seq dataset of approximately 18,000 cells, obtained from 7 treatment-naive ovarian cancer patients. Focusing on cancer-stromal PCIs, we uncovered molecular interaction networks and transcriptional landscapes that stratified patients in respect to their clinical responses to standard therapy. Good responders featured PCIs involving immune cells interacting with other cell types including cancer cells. Poor responders lacked immune cell interactions, but showed a high enrichment of cancer-stromal PCIs. To explore the molecular differences between cancer-stromal PCIs between responders and non-responders, we identified correlating gene signatures. We constructed ligand-receptor interaction networks and identified associated downstream pathways. The reconstruction of gene regulatory networks and trajectory analysis revealed distinct transcription factor (TF) clusters and gene modules that separated doublet cells by clinical outcomes. Our results indicate (i) that transcriptional changes resulting from PCIs predict the response of ovarian cancer patients to standard therapy, (ii) that immune reactivity of the host against the tumour enhances the efficacy of therapy, and (iii) that cancer-stromal cell interaction can have a dual effect either supporting or inhibiting therapy responses.
Insights
Physical cell-cell interactions (PCIs) in ovarian cancer predict therapy response. Good responders show immune cell engagement, while poor responders have increased cancer-stromal interactions, highlighting PCIs
Area of Science:
- Cancer Biology
- Immunology
- Bioinformatics
Background:
- The tumor microenvironment comprises complex cellular networks with direct physical cell-cell interactions (PCIs).
- These interactions can influence patient responses to clinical therapies.
- Single-cell RNA sequencing (scRNA-seq) typically excludes doublets, which may represent interacting cells.
Purpose of the Study:
- To infer a physical cell-cell interaction (PCI) network from scRNA-seq doublets.
- To investigate the relationship between PCIs and clinical prognosis in ovarian cancer.
- To identify molecular mechanisms underlying therapy response stratification.
Main Methods:
- Inferred a PCI network from biological doublets in scRNA-seq data from 7 treatment-naive ovarian cancer patients.
- Focused on cancer-stromal PCIs to stratify patients based on clinical responses.
- Analyzed gene signatures, ligand-receptor networks, gene regulatory networks, and transcription factor clusters.
Main Results:
- PCI networks stratified patients according to their response to standard therapy.
- Good responders exhibited PCIs involving immune cells, whereas poor responders showed enriched cancer-stromal PCIs.
- Identified distinct molecular interaction networks, gene signatures, and transcription factor modules associated with clinical outcomes.
Conclusions:
- Transcriptional changes driven by PCIs predict ovarian cancer patient response to therapy.
- Host immune reactivity against the tumor enhances therapeutic efficacy.
- Cancer-stromal cell interactions can exert dual effects, either supporting or inhibiting therapy response.
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