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March 5, 2026Signal Transduction and Targeted Therapy2 citationsOpen Access

Harnessing lipid-driven immunometabolic pathways in omental metastases to enhance immunotherapy in patients with ovarian cancer

MSMeggy Suarez‐CarmonaMHMareike HampelXZXin-Wen Zhang

Key Points

  • This research aims to explore the mechanisms behind immune resistance in omental metastases of ovarian cancer and identify therapeutic vulnerabilities.
  • Analyzed the immunometabolic landscape of omental metastases in epithelial ovarian carcinoma.
  • Used patient-derived explants to assess T cell function and macrophage behavior in lipid-rich environments.
  • Applied pharmacological agents, including maraviroc to inhibit CCR5 and block CD36 to reprogram macrophages.
  • Conducted experiments in humanized mouse models to study macrophage responses to lipid signaling.
  • Proposed machine learning methods for analyzing imaging data to improve patient stratification.
  • Identified lipid-laden macrophages as key components driving immune dysfunction in omental metastases.
  • Demonstrated that CCR5 inhibition enhances T cell activity and counters macrophage suppression.
  • Showed that specific metabolic profiles correlate with patient responses to immune checkpoint blockade.
  • Highlighted the potential of radiomics for non-invasive patient stratification based on omental involvement.

Abstract

Abstract Immunotherapy with immune checkpoint blockade (ICB) in epithelial ovarian carcinoma (EOC) shows limited clinical benefit only for a small subset of patients. Overall response rates are low, so that overcoming immunotherapy resistance and improved stratification are key. In this study, we investigated the immunometabolic landscape of EOC with a focus on omental metastases, identifying lipid-laden macrophages as central elements for actionable therapeutic vulnerabilities and giving rise to biomarkers for improved patient stratification. Using patient-derived explants, we demonstrated a functional dichotomy inside the typically lipid-rich microenvironment of omental metastases: augmented maintenance of effector T cell function, while lipid uptake and processing by tumor-associated macrophages (TAMs) induces oxidative stress–dependent signaling programs, which drive macrophage dysfunction and immune suppression. Pharmacological modulation of lipid-driven signaling pathways through CCR5 inhibition (inflammation modulation through maraviroc) or blockade of the lipid scavenger receptor CD36 reprograms TAMs, restores T cell activity, and enhances antitumor immune responses within lipid-rich tumor niches. Mechanistically, studies in humanized mouse models reveal that maraviroc-mediated CCR5 inhibition induces transcriptional programs associated with immune activation in stressed, lipid-laden human TAMs. Consistent with these mechanistic insights, we demonstrated that the specific immunometabolic niche in omental metastases is clinically associated with responsiveness to ICB. We propose a non-invasive radiomics and machine-learning–based analysis of imaging data to assess omental involvement for patient stratification.

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Cite This Study

Suarez‐Carmona et al. (2026) studied this question.

synapsesocial.com/papers/69a91e1fd6127c7a504c1b97https://doi.org/10.1038/s41392-026-02594-8
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