Oropharyngeal squamous cell carcinomas (OPSCCs) are a heterogeneous group of squamous cell cancers originating in the oropharynx. Risk factors for OPSCC include human papillomavirus (HPV) infection and alcohol and tobacco use1,2. The role of the immune response and how to use this in a clinical setting is just starting to be explored. The tumor microenvironment is infiltrated by immune cells that are attracted to the cancer site. Although a high CD8+ cytotoxic T-cell frequency has been correlated with improved survival in OPSCC patients3, the role of other T-cell subsets, including Tregs and Th17 cells, is still unclear4. Whereas Th1 and Th17 cells are supposed to aid in the immune response targeting tumor cells, Tregs are well known for their abilities to suppress the activity of other T cells5. However, the presence of Tregs has been found to correlate with both favorable and unfavorable responses in different tumor types6. Since not all immune cells present in the blood infiltrate the tumor to the same extent, studying the local tumor microenvironment provides the most reliable measure of the immune response directed against the tumor. The aim of this study is to determine the correlation between the numbers and types of immune cells and the clinical outcome. We used four-color fluorescence IHC imaging to analyze the number and localization of various T-cell subpopulations in human OPSCC.
We focused on total T lymphocytes (CD3+), Th17 cells, and immunosuppressive FoxP3+ Tregs, whose differentiation pathway is closely related to Th17 cells. Th17 cells are characterized by the combination of CD3 and IL-17. The cytokine IL-17 can also be produced by non-T cells7. We determined the distribution of intra-epithelial and stromal T cells, Tregs, Th17, and IL-17+ non-T cells in a large series of OPSCC cases and analyzed the correlations with patient survival. Multicolor fluorescence IHC was used to identify the expression of CD3, Foxp3, and IL-17, in combination with a DAPI counterstain. This assay allowed for the easy and clear identification of both tumor cells (using DAPI nuclear staining) and the infiltrating T-cell populations (using a combination of different markers). Following sample preparation and staining, a fluorescent microscope and imaging software were used to separate the different fluorescent colors used and to determine the number and type of cells present in both the tumor epithelium and the tumor-associated stroma.
An alternative assay to quantify and phenotype immune cell populations is flow cytometry analysis, or cytometry by time of flight (CyTOF) analysis, of tumor or peripheral samples (i.e., blood or ascites). Using this technique, all information about localization and relative distribution of the different cell types is lost. The use and analysis of peripheral samples also does not provide information about which cells are able to infiltrate the tumor microenvironment. Blood and ascite immune-cell analyses have been shown not to reflect the phenotype and frequency of immune cell infiltration of the tumor tissue8,9.
Another alternative is the use of bright-field microscopy. An advantage of this technique over fluorescence imaging is the absence of tissue autofluorescence. Although some samples contain more autofluorescence—particularly erythrocytes, but also other cell types, including neutrophilic granulocytes—these areas can easily be removed in the analysis of almost all samples. Immunofluorescence offers the advantage of analyzing multiple markers in one sample by using a panel of targeted fluorescent wavelengths. This is currently impossible to the same extent for bright-field microscopy due to the lack of a sufficient number of labels and commercially available antibody isotypes for a particular antigen.
The multicolor fluorescence IHC technique described here has been used in many different cancer types and antibody combinations to study different immune cell populations, as well as tumor cell-expressed molecules, such as human leukocyte antigens (HLA) and PD-L110,11,12. The protocol has been established and validated using many different types of samples and antibodies.