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Identification of Cellular Interactions in the Tumor Immune Microenvironment Underlying CD8 T Cell Exhaustion

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Journal bioRxiv
Date 2023 Nov 28
PMID 38014233
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Abstract

While immune checkpoint inhibitors show success in treating a subset of patients with certain late-stage cancers, these treatments fail in many other patients as a result of mechanisms that have yet to be fully characterized. The process of CD8 T cell exhaustion, by which T cells become dysfunctional in response to prolonged antigen exposure, has been implicated in immunotherapy resistance. Single-cell RNA sequencing (scRNA-seq) produces an abundance of data to analyze this process; however, due to the complexity of the process, contributions of other cell types to a process within a single cell type cannot be simply inferred. We constructed an analysis framework to first rank human skin tumor samples by degree of exhaustion in tumor-infiltrating CD8 T cells and then identify immune cell type-specific gene-regulatory network patterns significantly associated with T cell exhaustion. Using this framework, we further analyzed scRNA-seq data from human tumor and chronic viral infection samples to compare the T cell exhaustion process between these two contexts. In doing so, we identified transcription factor activity in the macrophages of both tissue types associated with this process. Our framework can be applied beyond the tumor immune microenvironment to any system involving cell-cell communication, facilitating insights into key biological processes that underpin the effective treatment of cancer and other complicated diseases.

References
1.
Zhong Y, Walker S, Pritykin Y, Leslie C, Rudensky A, van der Veeken J . Hierarchical regulation of the resting and activated T cell epigenome by major transcription factor families. Nat Immunol. 2021; 23(1):122-134. PMC: 8712421. DOI: 10.1038/s41590-021-01086-x. View

2.
Li J, He Y, Hao J, Ni L, Dong C . High Levels of Eomes Promote Exhaustion of Anti-tumor CD8 T Cells. Front Immunol. 2019; 9:2981. PMC: 6305494. DOI: 10.3389/fimmu.2018.02981. View

3.
Petitprez F, Meylan M, De Reynies A, Sautes-Fridman C, Fridman W . The Tumor Microenvironment in the Response to Immune Checkpoint Blockade Therapies. Front Immunol. 2020; 11:784. PMC: 7221158. DOI: 10.3389/fimmu.2020.00784. View

4.
Cline M, Smoot M, Cerami E, Kuchinsky A, Landys N, Workman C . Integration of biological networks and gene expression data using Cytoscape. Nat Protoc. 2007; 2(10):2366-82. PMC: 3685583. DOI: 10.1038/nprot.2007.324. View

5.
Feng H, Lenarcic E, Yamane D, Wauthier E, Mo J, Guo H . NLRX1 promotes immediate IRF1-directed antiviral responses by limiting dsRNA-activated translational inhibition mediated by PKR. Nat Immunol. 2017; 18(12):1299-1309. PMC: 5690873. DOI: 10.1038/ni.3853. View