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Whole-animal Imaging and Flow Cytometric Techniques for Analysis of Antigen-specific CD8+ T Cell Responses after Nanoparticle Vaccination
Published on: April 29, 2015
Adaptive antitumor immune response stimulated by bio-nanoparticle based vaccine and checkpoint blockade
Xuewei Bai1,2, Yanmei Zhou1,3, Yuki Yokota1
1Liver Research Center, Rhode Island Hospital, Department of Medicine, The Warren Alpert Medical School of Brown University, RI, 02903, Providence, USA.
Background:
Interactions between tumor and microenvironment determine individual response to immunotherapy. Triple negative breast cancer (TNBC) and hepatocellular carcinoma (HCC) have exhibited suboptimal responses to immune checkpoint inhibitors (ICIs). Aspartate β-hydroxylase (ASPH), an oncofetal protein and tumor associated antigen (TAA), is a potential target for immunotherapy.
Methods:
Subcutaneous HCC and orthotopic TNBC murine models were established in immunocompetent BALB/c mice with injection of BNL-T3 and 4 T1 cells, respectively. Immunohistochemistry, immunofluorescence, H&E, flow cytometry, ELISA and in vitro cytotoxicity assays were performed.
Results:
The ASPH-MYC signaling cascade upregulates PD-L1 expression on breast and liver tumor cells. A bio-nanoparticle based λ phage vaccine targeting ASPH was administrated to mice harboring syngeneic HCC or TNBC tumors, either alone or in combination with PD-1 blockade. In control, autocrine chemokine ligand 13 (CXCL13)-C-X-C chemokine receptor type 5 (CXCR5) axis promoted tumor development and progression in HCC and TNBC. Interactions between PD-L1+ cancer cells and PD-1+ T cells resulted in T cell exhaustion and apoptosis, causing immune evasion of cancer cells. In contrast, combination therapy (Vaccine+PD-1 inhibitor) significantly suppressed primary hepatic or mammary tumor growth (with distant pulmonary metastases in TNBC). Adaptive immune responses were attributed to expansion of activated CD4+ T helper type 1 (Th1)/CD8+ cytotoxic T cells (CTLs) that displayed enhanced effector functions, and maturation of plasma cells that secreted high titers of ASPH-specific antibody. Combination therapy significantly reduced tumor infiltration of immunosuppressive CD4+/CD25+/FOXP3+ Tregs. When the PD-1/PD-L1 signal was inhibited, CXCL13 produced by ASPH+ cancer cells recruited CXCR5+/CD8+ T lymphocytes to tertiary lymphoid structures (TLSs), comprising effector and memory CTLs, T follicular helper cells, B cell germinal center, and follicular dendritic cells. TLSs facilitate activation and maturation of DCs and actively recruit immune subsets to tumor microenvironment. These CTLs secreted CXCL13 to recruit more CXCR5+ immune cells and to lyse CXCR5+ cancer cells. Upon combination treatment, formation of TLSs predicts sensitivity to ICI blockade. Combination therapy substantially prolonged overall survival of mice with HCC or TNBC.
Conclusions:
Synergistic antitumor efficacy attributable to a λ phage vaccine specifically targeting ASPH, an ideal TAA, combined with ICIs, inhibits tumor growth and progression of TNBC and HCC.
Insights
A novel phage vaccine targeting ASPH combined with immune checkpoint inhibitors (ICIs) effectively suppresses triple-negative breast cancer (TNBC) and hepatocellular carcinoma (HCC) growth. This combination therapy enhances anti-tumor immunity and prolongs survival in preclinical models.
Area of Science:
- Oncology
- Immunotherapy
- Cancer Vaccines
Background:
- Triple-negative breast cancer (TNBC) and hepatocellular carcinoma (HCC) show limited response to immune checkpoint inhibitors (ICIs).
- Aspartate β-hydroxylase (ASPH) is an oncofetal protein and tumor-associated antigen (TAA) identified as a potential immunotherapy target.
- Understanding tumor microenvironment interactions is crucial for predicting immunotherapy response.
Purpose of the Study:
- To evaluate the efficacy of a novel bio-nanoparticle λ phage vaccine targeting ASPH in preclinical models of TNBC and HCC.
- To investigate the synergistic effects of ASPH-targeted vaccine combined with PD-1 blockade.
- To elucidate the underlying mechanisms of enhanced anti-tumor immunity.
Main Methods:
- Establishment of syngeneic murine models for HCC and TNBC.
- Administration of ASPH-targeted λ phage vaccine alone or in combination with PD-1 inhibitors.
- Comprehensive analysis using immunohistochemistry, immunofluorescence, flow cytometry, ELISA, and in vitro cytotoxicity assays.
Main Results:
- ASPH-MYC signaling upregulates PD-L1, contributing to immune evasion.
- Combination therapy (Vaccine + PD-1 inhibitor) significantly suppressed tumor growth and distant metastases.
- Enhanced adaptive immune responses, including expansion of cytotoxic T cells and antibody production, were observed.
- Reduced tumor infiltration of immunosuppressive regulatory T cells (Tregs).
- Formation of tertiary lymphoid structures (TLSs) correlated with sensitivity to ICI blockade and facilitated immune cell recruitment and activation.
Conclusions:
- A λ phage vaccine targeting ASPH, a promising TAA, demonstrates synergistic antitumor efficacy when combined with ICIs.
- This combination therapy effectively inhibits tumor growth and progression in TNBC and HCC models.
- The findings support ASPH as a viable target for developing novel immunotherapies against TNBC and HCC.
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