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Updated: Feb 11, 2026

Predictive Immune Modeling of Solid Tumors
Published on: February 25, 2020
Increased vessel perfusion predicts the efficacy of immune checkpoint blockade
Xichen Zheng1, Zhaoxu Fang1, Xiaomei Liu1
1Cyrus Tang Hematology Center, Collaborative Innovation Center of Hematology, State Key Laboratory of Radiation Medicine and Prevention, and.
Abstract:
Immune checkpoint blockade (ICB) has demonstrated curative potential in several types of cancer, but only for a small number of patients. Thus, the identification of reliable and noninvasive biomarkers for predicting ICB responsiveness is an urgent unmet need. Here, we show that ICB increased tumor vessel perfusion in treatment-sensitive EO771 and MMTV-PyVT breast tumor as well as CT26 and MCA38 colon tumor models, but not in treatment-resistant MCaP0008 and 4T1 breast tumor models. In the sensitive tumor models, the ability of anti-cytotoxic T lymphocyte-associated protein 4 or anti-programmed cell death 1 therapy to increase vessel perfusion strongly correlated with its antitumor efficacy. Moreover, globally enhanced tumor vessel perfusion could be detected by Doppler ultrasonography before changes in tumor size, which predicted final therapeutic efficacy with more than 90% sensitivity and specificity. Mechanistically, CD8+ T cell depletion, IFN-γ neutralization, or implantation of tumors in IFN-γ receptor knockout mice abrogated the vessel perfusion enhancement and antitumor effects of ICB. These results demonstrated that ICB increased vessel perfusion by promoting CD8+ T cell accumulation and IFN-γ production, indicating that increased vessel perfusion reflects the successful activation of antitumor T cell immunity by ICB. Our findings suggest that vessel perfusion can be used as a novel noninvasive indicator for predicting ICB responsiveness.
Insights
Immune checkpoint blockade (ICB) therapy boosts tumor vessel perfusion in sensitive cancers, correlating with efficacy. Enhanced perfusion, detectable by ultrasound, predicts treatment success by reflecting T cell activation.
Area of Science:
- Oncology
- Immunology
- Medical Imaging
Background:
- Immune checkpoint blockade (ICB) offers curative potential but benefits limited patient populations.
- Predictive biomarkers for ICB response are crucial for effective cancer treatment.
Purpose of the Study:
- To investigate tumor vessel perfusion as a noninvasive biomarker for ICB responsiveness.
- To elucidate the mechanisms by which ICB affects tumor vasculature.
Main Methods:
- Utilized murine cancer models (breast and colon) with varying ICB sensitivity.
- Assessed tumor vessel perfusion using Doppler ultrasonography.
- Investigated the role of CD8+ T cells and Interferon-gamma (IFN-γ) in ICB-induced perfusion changes.
Main Results:
- ICB increased tumor vessel perfusion in sensitive models but not resistant ones.
- Enhanced perfusion correlated strongly with anti-tumor efficacy of anti-cytotoxic T lymphocyte-associated protein 4 and anti-programmed cell death 1 therapies.
- Doppler ultrasonography detected perfusion changes preceding tumor size alterations, predicting efficacy with >90% accuracy.
- CD8+ T cell depletion or IFN-γ neutralization abrogated ICB-mediated perfusion enhancement and anti-tumor effects.
Conclusions:
- ICB enhances tumor vessel perfusion via CD8+ T cell accumulation and IFN-γ production.
- Increased vessel perfusion serves as a reliable noninvasive indicator of successful ICB therapy and T cell activation.
- Doppler ultrasonography can predict ICB response by monitoring tumor perfusion.
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