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Visualization, Quantification, and Mapping of Immune Cell Populations in the Tumor Microenvironment
Published on: March 25, 2020
Decoding tumor immune microenvironment heterogeneity by single-cell and spatial multi-omics: From immunotherapy
Tingting Shi1, Yanan Guo2, Xiaoting Tang1
1Department of Gastroenterology, The Second Affiliated Hospital of Fujian Medical University, Quanzhou, Fujian, China.
Abstract:
Immune checkpoint blockade has transformed cancer therapy, yet primary and acquired resistance remain major clinical challenges. Increasing evidence indicates that immunotherapy resistance cannot be fully explained by tumor-intrinsic alterations or conventional biomarkers such as PD-L1 expression, tumor mutational burden, or microsatellite instability. Instead, therapeutic response is shaped by the tumor immune microenvironment (TIME) as a heterogeneous, spatially organized, and dynamically evolving ecosystem. Single-cell omics has revealed diverse immune and stromal cell states, including progenitor and terminally exhausted T cells, suppressive myeloid programs, B-cell/TLS-associated immune-reactive states, and CAF-mediated exclusion phenotypes. Spatial transcriptomics, spatial proteomics, and imaging-based approaches further demonstrate that these cell states assemble into distinct immune niches, including immune-inflamed, T-cell-excluded, myeloid-suppressive, metabolic/hypoxic, and TLS-associated niches. These spatial ecosystems determine whether antitumor immune cells can access malignant cells, receive antigen-presenting support, or become restrained by stromal, vascular, metabolic, and myeloid barriers. In this review, we summarize how single-cell and spatial multi-omics redefine TIME heterogeneity in immunotherapy resistance, highlight ligand-receptor communication networks linking cell states to spatial immune dysfunction, and discuss emerging translational biomarkers for patient stratification. We further propose that future immunotherapy biomarkers should evolve from static single-marker assays toward longitudinal, spatially resolved, and interpretable multi-omics models that guide precision combination immunotherapy.
Insights
Tumor immune microenvironment (TIME) complexity, not just tumor genetics, drives immunotherapy resistance. Multi-omics reveals spatial immune cell interactions and niches that dictate treatment response, guiding precision combination therapies.
Area of Science:
- Immunology
- Oncology
- Genomics
Background:
- Immune checkpoint blockade revolutionized cancer therapy but faces significant resistance.
- Conventional biomarkers (e.g., PD-L1, TMB) inadequately predict immunotherapy response.
- Therapeutic outcomes are increasingly linked to the tumor immune microenvironment (TIME).
Purpose of the Study:
- To review how single-cell and spatial multi-omics redefine TIME heterogeneity in immunotherapy resistance.
- To highlight ligand-receptor networks involved in spatial immune dysfunction.
- To discuss novel biomarkers for patient stratification and precision immunotherapy.
Main Methods:
- Single-cell omics to identify diverse immune and stromal cell states.
- Spatial transcriptomics, proteomics, and imaging to map immune cell organization.
- Analysis of ligand-receptor communication networks within immune niches.
Main Results:
- TIME is a heterogeneous, spatially organized ecosystem with distinct immune niches (inflamed, excluded, suppressive, metabolic, TLS-associated).
- Spatial organization and cell states (e.g., exhausted T cells, suppressive myeloid cells, CAFs) dictate immune cell access and function.
- Ligand-receptor interactions mediate spatial immune dysfunction.
Conclusions:
- TIME heterogeneity and spatial organization are critical determinants of immunotherapy resistance.
- Emerging multi-omics approaches offer deeper insights into TIME complexity.
- Future biomarkers should be longitudinal, spatially resolved, and multi-modal to guide combination immunotherapy strategies.
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