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Adenoviral Transduction of Naive CD4 T Cells to Study Treg Differentiation
Published on: August 13, 2013
The spatial and single-cell analysis reveals remodeled immune microenvironment induced by synthetic oncolytic
Gan Liu1, Qifan Hu2, Shuguang Peng2
1MOE Key Laboratory of Bioinformatics and Bioinformatics Division, Center for Synthetic and Systems Biology, Department of Automation, Beijing National Research Center for Information Science and Technology, Tsinghua University, Beijing, 100084, China; Beijing SyngenTech Co., LTD, Zhongguancun Life Science Park, Changping District, Beijing, 102206, China.
Abstract:
Oncolytic viruses are multifaceted tumor killers, which can function as tumor vaccines to boost systemic antitumor immunity. In previous study, we rationally designed a synthetic oncolytic adenovirus (SynOV) harboring a synthetic gene circuit, which can kill tumors in mouse hepatocellular carcinoma (HCC) models. In this study, we demonstrated that SynOV could sense the tumor biomarkers to lyse tumors in a dosage-dependent manner, and killed PD-L1 antibody resistant tumor cells in mouse model. Meanwhile, we observed SynOV could cure liver cancer and partially alleviate the liver cancer with distant metastasis by activating systemic antitumor immunity. To understand its high efficacy, it is essential to explore the cellular and molecular features of the remodeled tumor microenvironment (TME). By combining spatial transcriptome sequencing and single-cell RNA sequencing, we successfully depicted the remodeled TME at single cell resolution. The state transition of immune cells and stromal cells towards an antitumor and normalized status exemplified the overall cancer-suppressive TME after SynOV treatment. Specifically, SynOV treatment increased the proportion of CD8+ T cells, enhanced the cell-cell communication of Cxcl9-Cxcr3, and normalized the Kupffer cells and macrophages in the TME. Furthermore, we observed that SynOV could induce distant responses to reduce tumor burden in metastatic HCC patient in the Phase I clinical trial. In summary, our results suggest that SynOV can trigger systemic antitumor immunity to induce CD8+ T cells and normalize the abundance of immune cells to remodel the TME, which promises a powerful option to treat HCC in the future.
Insights
Synthetic oncolytic adenovirus (SynOV) effectively targets liver cancer by activating systemic immunity. This engineered virus remodels the tumor microenvironment, promoting an anti-cancer state and showing promise in clinical trials.
Area of Science:
- Oncolytic virotherapy
- Immunotherapy
- Hepatocellular carcinoma (HCC) research
Background:
- Oncolytic viruses can act as tumor vaccines, enhancing systemic antitumor immunity.
- Synthetic oncolytic adenovirus (SynOV) was previously designed to target tumors in mouse HCC models.
Purpose of the Study:
- To demonstrate SynOV's ability to lyse tumors and overcome PD-L1 antibody resistance.
- To investigate the mechanisms behind SynOV's efficacy by analyzing the remodeled tumor microenvironment (TME).
- To assess SynOV's potential in treating metastatic HCC through a Phase I clinical trial.
Main Methods:
- Utilized spatial transcriptome sequencing and single-cell RNA sequencing to analyze the TME.
- Administered SynOV in mouse models of hepatocellular carcinoma.
- Conducted a Phase I clinical trial for metastatic HCC patients.
Main Results:
- SynOV demonstrated dosage-dependent tumor lysis and efficacy against PD-L1 resistant cells.
- SynOV treatment led to a shift towards an antitumor and normalized TME, increasing CD8+ T cells and enhancing Cxcl9-Cxcr3 communication.
- Kupffer cells and macrophages within the TME were normalized post-SynOV treatment.
- SynOV induced systemic responses, reducing tumor burden in metastatic HCC patients.
Conclusions:
- SynOV effectively remodels the tumor microenvironment by triggering systemic antitumor immunity.
- The engineered virus promotes CD8+ T cell infiltration and normalizes immune cell populations.
- SynOV presents a promising therapeutic strategy for hepatocellular carcinoma.
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