Understanding the Tumor Immune Microenvironment in Renal Cell Carcinoma
Abstract
:Simple Summary
Abstract
1. Introduction
2. The Immune Response to Cancer
3. Cell Types of the Tumor Immune Microenvironment
4. Characteristics of the Renal Cell Carcinoma Tumor Immune Microenvironment
4.1. Immune Microenvironment Changes during Tumor Development and Treatment
4.2. Renal Cell Carcinoma Tumor Antigens and Genomic Correlations with Immune Response
4.3. The Predictive and Prognostic Capability of the Tumor Immune Microenvironment in RCC
5. Future Directions
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Study | RCC Subtype | Stages Studied | Method of Categorization | Tumor Microenvironment Categorization | Category Characteristics | Category Prognosis |
---|---|---|---|---|---|---|
Senbabaoglu et al., 2016 [48] | Clear cell | All Stages | TCGA based gene expression signatures | Non-infiltrated | Low T cell infiltration, low stromal score, increased metabolism and mitochondrial related genes | Best |
Heterogeneously Infiltrated | Increased angiogenesis-related gene expression, c-KIT and Smad1 | Intermediate | ||||
T cell Enriched | High T cell infiltration, high granzyme B and IFNγ expression | Worst | ||||
Giraldo et al., 2017 [66] | Clear cell | Localized RCC | Multiparametric flow cytometric immunophenotypic analysis | Immune activated | Increased CD8+ clonality, increased cytotoxic genes | Best |
Immune silent | Low levels tumor infiltrating lymphocytes | Intermediate | ||||
Immune regulated | M2-rich, poorly cytotoxic, increased Treg | Worst | ||||
Clark et al., 2019 [65] | Clear cell | All Stages | Transcriptomic and proteomic microenvironment signatures | VEGF immune desert | Elevated stromal score, endothelial enrichment | Best |
CD8- Inflamed | Innate immune signature, fibroblast signature | Intermediate | ||||
Metabolic immune desert | Low immune and stromal scores, elevated mitochondrial, OXPHOS, glycolysis protein expression | Intermediate | ||||
CD8+ inflamed | High CD8+ infiltration, BAP1 mutations, CD38 expression, IFNγ signaling | Worst | ||||
Hakimi et al., 2019 [67] | Clear cell | Metastatic | Somatic mutation analysis, RNA and protein expression | Cluster 3 | High PBRM1 mutations, high angiogenesis score, moderate immune infiltration | Best |
Cluster 2 | Moderate angiogenesis score, moderate immune infiltration | Intermediate | ||||
Cluster 1 | Lowest angiogenesis score, lowest immune infiltration | Intermediate | ||||
Cluster 4 | High BAP1 mutation, moderate angiogenesis score, high immune infiltration, higher PD-L1 expression | Worst | ||||
Braun et al., 2020 [68] | Clear cell | Metastatic | Integrated genetic, transcriptomic and immunopathologic analysis | Immune Excluded | 5-fold more CD8+ T cells at the tumor margin than in tumor center | No difference in prognosis |
Immune Desert | Not excluded and below 25th percentile for CD8+ T cells, 50 cells/mm2 in the tumor center | |||||
Immune Infiltrated | Not excluded and ≥25th percentile for CD8+ T cells in the tumor center. Enriched for M1 macrophages, CD4+ memory T cells, NK cells |
Biomarker | Description | Investigational Use | Limitations |
---|---|---|---|
PD-L1 [6,10,84] | Cell surface protein |
|
|
Tumor Mutational Burden [80] | Number of non-synonymous somatic mutations in tumor DNA |
|
|
Tumor Neoantigen Burden [80] | Number of immunogenic tumor-specific proteins (neoantigens) predicted by quantity of somatic mutations |
|
|
Renal 101 Immuno signature [85] | 26-gene immune based signature |
|
|
T-effector score [80] | Five gene signature (CD8A, EOMES, PRF1, IFNG, CD274) |
|
|
Myeloid inflammation [80] | Six gene signature (IL-6, CXCL1, CXCL2, CXCL3, CXCL8, PTGS2) |
|
|
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Shapiro, D.D.; Dolan, B.; Laklouk, I.A.; Rassi, S.; Lozar, T.; Emamekhoo, H.; Wentland, A.L.; Lubner, M.G.; Abel, E.J. Understanding the Tumor Immune Microenvironment in Renal Cell Carcinoma. Cancers 2023, 15, 2500. https://doi.org/10.3390/cancers15092500
Shapiro DD, Dolan B, Laklouk IA, Rassi S, Lozar T, Emamekhoo H, Wentland AL, Lubner MG, Abel EJ. Understanding the Tumor Immune Microenvironment in Renal Cell Carcinoma. Cancers. 2023; 15(9):2500. https://doi.org/10.3390/cancers15092500
Chicago/Turabian StyleShapiro, Daniel D., Brendan Dolan, Israa A. Laklouk, Sahar Rassi, Taja Lozar, Hamid Emamekhoo, Andrew L. Wentland, Meghan G. Lubner, and Edwin Jason Abel. 2023. "Understanding the Tumor Immune Microenvironment in Renal Cell Carcinoma" Cancers 15, no. 9: 2500. https://doi.org/10.3390/cancers15092500
APA StyleShapiro, D. D., Dolan, B., Laklouk, I. A., Rassi, S., Lozar, T., Emamekhoo, H., Wentland, A. L., Lubner, M. G., & Abel, E. J. (2023). Understanding the Tumor Immune Microenvironment in Renal Cell Carcinoma. Cancers, 15(9), 2500. https://doi.org/10.3390/cancers15092500