$$\rightleftharpoonup{xx}$$
$$\longleftharp{xx}$$,
$$\longrightharp{xx}$$,
T cells are critical to many immunological processes, including detecting and eliminating virus-infected cells, preventing autoimmunity, assisting in B-cell and plasma-cell production of antibodies, and detecting and eliminating cancer cells. The development of peptide/MHC class I tetramer staining of antigen-specific CD8 T cells1 and the more recent development of MHC class II tetramer staining of CD4 T cells2 by flow cytometry revolutionized our ability to study and understand the immunobiology of T cells. While extremely useful for determining the quantity and phenotype of antigen-specific T cells, flow cytometry does not allow for the detection of the spatial localization of antigen-specific T cells to other cells and structures in tissues, and current disaggregation techniques to extract the T cells needed for flow cytometry have limited effectiveness in non-lymphoid tissues3.
We and others have developed methods using peptide-loaded MHC class I and class II tetramer or multimer reagents to stain antigen-specific CD8 and CD4 T cells in tissues4,5,6,7,8,9,10,11,12,13. These IST methods allow for the determination of the location, abundance, and phenotype of antigen-specific CD8 and CD4 T cells in tissues and provide a means to detect of these cells relative to other cells and structures in the tissues. Our group has extensively used MHC-I tetramer staining to study human immunodeficiency virus (HIV)- and simian immunodeficiency virus (SIV)-specific CD8 T cells in lymphoid, genital, and rectal tissues to gain an understanding of HIV and SIV immunopathogenesis and to identify correlates of successful vaccination strategies14,15,16,17. In addition, we also developed a technique that combines IST with in situ hybridization (ISH) to localize and quantify virus-specific CD8 T cells and virus-infected cells in tissues and to determine the in vivo effector-to-target levels18,19.
Here, we describe a protocol using peptide-loaded MHC-I tetramers to stain antigen-specific CD8 T cells in fresh tissue sections, to counterstain tissues using IHC, and to quantify cells with specific phenotypes in specific tissue compartments. These procedures are the same as were used in our recent publication by Li et al., in which we determined the location, abundance, and phenotype of SIV-specific T cells in lymphoid tissue during chronic SIV infection in macaques20.
For this procedure, fresh tissues are sectioned and incubated overnight with peptide-loaded MHC-I tetramers conjugated to fluorescein thiocyanate molecules (FITC). They are then fixed in paraformaldehyde. After fixing the tissue, the signal from the MHC tetramers is amplified using rabbit anti-FITC antibodies and incubated with fluorescently tagged anti-rabbit IgG antibodies, which further amplify the signal from the bound tetramers. IHC is used in conjunction with IST to characterize antigen-specific T cells and surrounding cells. Antibodies that recognize epitopes on the surface of cells or in the extracellular space are included in the primary incubation with the tetramers. Antibodies that recognize intracellular epitopes require permeation of the cell wall prior to staining. The stained tissue sections are imaged using a confocal microscope and analyzed using confocal software. Labeled cells are quantified using confocal microscopy software or ImageJ. The described protocol can be used to stain essentially any antigen-specific CD8 T cell in any tissue for which MHC-I tetramers are available.