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Biomedical subjects

S M Hedrick

Publications and source records attributed to S M Hedrick.

At least 37 records · Page 2Linked to original sources

Alloreactive gamma delta thymocytes utilize distinct costimulatory signals from peripheral T cells.

Interactions between CD28/CTLA-4 on T cells and CD80 (B7.1) and CD86 (B7.2) counter receptors provide crucial costimulatory signals for TCR-alpha beta+ lymphocytes. To test the role of CD28 in thymic development and activation of TCR-gamma delta+ T cells, we introduced the alloreactive V gamma 2V alpha 11.3 TCR into CD28-deficient mice (CD28-/-). We show that positive and negative selection of gamma delta Tg thymocytes proceeded normally in the absence of CD28. Although mature Tg gamma delta+ thymocytes required a second costimulatory signal for proliferation, gamma delta+ thymocytes from CD28-/- and CD28+/- littermates responded equally well to the alloantigen Tlab. Alloreactivity of CD28-/- and CD28+/- Tg gamma delta+ thymocytes could not be blocked with mAbs against CD80 and CD86 ligands. Thus gamma delta thymocytes utilize a costimulatory system during development and alloresponses that is independent of CD28/CD80 and CD28/CD86 interactions. By contrast to V gamma 2V alpha 11.3+ thymocytes, alloreactivity of V gamma 2V alpha 11.3+ lymph node T cells depended on CD28 costimulation and was severely impaired in CD28-/- mice. These data provide functional evidence that maturation and selection of gamma delta cells is independent of CD28. These results also indicate that distinct costimulatory pathways are operational in mature thymocytes and peripheral T cells.

Animals↗

Efficient maturation of alpha beta lineage thymocytes to the CD4+CD8+ stage in the absence of TCR-beta rearrangement.

We have produced transgenic mice that express rearranged T cell Ag receptor gamma and delta transgenes in the alpha beta lineage of thymocytes. Thymi in these mice contain normal numbers of CD4+CD8+ cells that express low levels of the TCR-gamma delta. Analysis of the delta locus in these thymi indicates that these cells are in the alpha beta lineage even though they express the TCR-gamma delta. This shows that expression of the TCR-gamma delta in early thymocytes can lead to all of the consequences that are normally mediated by the beta-chain. These consequences include maturation to the CD4+CD8+ stage, entry into the cell cycle, and cessation of beta rearrangement. Therefore, the data support a model in which formation of a functional CD3 complex on immature CD4-CD8- thymocytes leads to further development in the absence of extracellular ligand recognition. The data also show that the gamma delta vs alpha beta lineage decision is made in a manner that is independent of gamma and beta gene expression.

Animals↗

Predicted complementarity determining regions of the T cell antigen receptor determine antigen specificity.

The antigen receptor on T cells (TCR) has been predicted to have a structure similar to a membrane-anchored form of an immunoglobulin F(ab) fragment. Virtually all of the conserved amino acids that are important for inter- and intramolecular interactions in the VH-VL pair are also conserved in the TCR V alpha and V beta chains. A molecular model of the TCR has been constructed by homology and we have used the information from this, as well as the earlier structural predictions of others, to study the basis for specificity. Specifically, regions of a TCR cloned from an antigen-specific T cell were stitched into the corresponding framework of a second TCR. Results indicate that the substitution of amino acid sequences corresponding to the complementarity determining regions (CDRs) of immunoglobulin can convey the specificity for antigen and major histocompatibility complex molecules. These data are consistent with a role, but not an exclusive role, for CDR3 in antigen peptide recognition.

Amino Acid Sequence↗

Role of TCR specificity in CD4 versus CD8 lineage commitment.

We have examined the role that TCR-alpha beta specificity plays in lineage commitment of thymocytes. Thymocytes in the process of selection have been distinguished by the expression of high levels of CD69 and CD5. The phenotype of most of these selected thymocytes is either CD4highCD8low or CD4lowCD8high, but some are CD4lowCD8low, a phenotype referred to as double-positive dull. Analysis of the phenotype of apoptotic thymocytes shows that double-positive dull cells make up many of the cells undergoing negative selection. Thymocytes from MHC class I- or class II-deficient mice and from MHC class I- and class II-restricted TCR transgenic mice have been analyzed for cells undergoing positive and negative selection. This analysis shows that the TCR specificity is a critical factor in the lineage determination of thymocytes, and any stochastic component to lineage commitment is minor.

Animals↗

The enigmatic specificity of gamma delta T cells.

In most scientific investigations, the study of mechanism follows the study of function. For example, alpha beta T cells were shown to be important mediators of immunity before the interaction between the T cell receptor (TCR) and peptide-MHC complexes was understood. However, sometimes the study of function follows from the study of mechanism. Research of gamma delta T cell receptors falls into this category. The gamma chain of the TCR was first cloned in 1984, which then led to the discovery of gamma delta T cells in 1985. Since then, research has focused on understanding ligands of the gamma delta TCR with the hope of better understanding the function of gamma delta T cells. An initial assumption was that gamma delta T cells, like alpha beta T cells, recognize peptides bound to MHC molecules; however, recent data indicate that gamma delta T cells are not biased towards MHC recognition in the same way as alpha beta T cells. Although there are intriguing new insights, the specificity and function of gamma delta T cells remains a mystery.

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A Myc-associated zinc finger protein binding site is one of four important functional regions in the CD4 promoter.

The CD4 promoter plays an important role in the developmental control of CD4 transcription. In this report, we show that the minimal CD4 promoter has four factor binding sites, each of which is required for full function. Using biochemical and mutagenesis analyses, we determined that multiple nuclear factors bind to these independent sites. We determined that an initiator-like sequence present at the cap site and an Ets consensus sequence are required for full promoter function. We also demonstrate that the Myc-associated zinc finger protein (MAZ) appears to be the predominant factor binding to one of these sites. This last site closely resembles the ME1a1 G3AG4AG3 motif previously shown to be a critical element in the P2 promoter of the c-myc gene. We therefore believe that the MAZ transcription factor is also likely to play an important role in the control of developmental expression of the CD4 gene.

Base Sequence↗

Gamma delta T cells can recognize nonclassical MHC in the absence of conventional antigenic peptides.

Although T cells expressing the gamma delta Ag receptor (gamma delta cells) have been found in all organisms with lymphoid systems, little is understood about their immunologic function. It is known that T cells that express the alpha beta Ag receptor (alpha beta cells) fight infection by recognizing foreign Ag as peptide presented by MHC molecules; however, it is not known how gamma delta cells recognize Ag. Characterization of ligands of the gamma delta cell Ag receptor (TCR) could lead to a better understanding of gamma delta cell function. We have characterized the ligand of the G8 gamma delta cell; we find that G8 gamma delta cells are stimulated by T22, a nonclassical class I MHC molecule. To study the involvement of peptides in gamma delta cell recognition, T22 was expressed in cells deficient in peptide transporter function and in Drosophila cells, which can express MHC molecules without associated peptides. We find no evidence that G8 gamma delta cells recognize peptides bound to T22. These results suggest that some gamma delta cells, unlike alpha beta cells, may not be restricted to recognition of peptide-MHC complexes.

Animals↗

A transcriptional silencer controls the developmental expression of the CD4 gene.

The appropriate expression of the CD4 glycoprotein is required for T-cell function and development. Here we define the transcriptional control elements in the CD4 locus that convey CD(4+)-specific expression of a marker gene in transgenic mice. Using nuclear run-on experiments, we have determined that the major mechanism for CD4 expression control during development is transcriptional. We have identified a developmental stage- and tissue-specific negative regulatory element in the first intron of the murine CD4 gene that has the characteristics of a transcriptional silencer. The CD4 silencer functions to inhibit marker gene expression at two different stages of T-cell development, as well as in non-T hematopoietic cells, and thus is the critical controlling element responsible for T-cell-specific, as well as developmental- and subclass-specific, expression.

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Negative selection of CD4+ CD8+ thymocytes by T-cell receptor peptide antagonists.

Antigen-induced activation of T cells can be specifically inhibited by antigen analogs that have been termed T-cell receptor peptide antagonists. These antagonists appear to act by inducing the formation of nonstimulatory or partially stimulatory complexes between T-cell receptors and the major histocompatibility complex molecules presenting the peptides. Herein, we have investigated the effect of T-cell receptor peptide antagonists on thymocyte negative selection. First, peptide antagonists were identified for the cytochrome c-specific T-cell clone AD10. These peptides were then tested for their ability to induce negative selection in an in vitro model system using thymocytes from mice transgenic for the AD10 T-cell receptor. Though unable to induce mature T-cell activation, the T-cell receptor peptide antagonists induced deletion of CD4+ CD8+ thymocytes. These results suggest that negative selection of CD4+ CD8+ thymocytes can be induced by T-cell receptor interactions of a lower affinity than those required for mature T-cell activation.

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Intracellular signals that mediate thymic negative selection.

Antigenic stimulation of CD4/CD8 double positive (DP) thymocytes results in programmed cell death, while the identical stimulation of mature T cells results in proliferation and lymphokine secretion. Using thymocytes from transgenic mice expressing pigeon cytochrome c-specific T cell receptors, we previously demonstrated that major histocompatibility complex class II-transfected L cells were capable of presenting peptide antigen and inducing programmed cell death in DP thymocytes, as well as proliferation and lymphokine secretion in mature CD4 single positive (SP) T cells. We therefore were interested in utilizing this system to compare antigen-induced signal transduction events in DP thymocytes and mature SP T cells. In this report, we demonstrate that significant distinctions between thymocytes and mature T cells are seen upon examination of antigen sensitivity and the phosphatidylinositol signaling cascade.

Animals↗

Bcl-2 is upregulated at the CD4+ CD8+ stage during positive selection and promotes thymocyte differentiation at several control points.

In vivo thymocyte maturation models were used to investigate the differentiation role of Bcl-2. In alpha/beta T cell receptor (TCR) class II-restricted transgenic mice, Bcl-2 was upregulated at the CD4+ CD8+ stage during positive selection. The lckpr-bcl2 transgene was bred onto MHC classes I-I- and II-I-, MHC-I-, and alpha/beta TCR backgrounds to determine whether Bcl-2 promoted thymocyte maturation in the absence of coreceptor-MHC interaction. Bcl-2 rescued CD8+ thymocytes in class I-I- and alpha/beta TCR in mice; however, they were not exported to the periphery. Bcl-2 had no effect on CD4 lineage maturation in class II-I- mice. No single-positive thymocytes accumulate in MHC-I- mice despite overexpressed Bcl-2. Thus, Bcl-2 enables selection of certain TCRs on class II molecules and their differentiation along the CD8 pathway; however, Bcl-2 did not substitute for positive selection. In RAG-1-I- mice, Bcl-2 promoted differentiation to the CD4+ CD8+ stage. Bcl-2 can promote thymocyte maturation at several control points.

Animals↗

Elf-1 binds to a critical element in a second CD4 enhancer.

The coordinated expression of CD4 and CD8 during T-cell development is tightly coupled with the maturation state of the T cell. Additionally, the mutually exclusive expression of these receptors in mature T cells is representative of the functional T-cell subclasses (CD4+ helper T cells versus CD8+ cytotoxic T cells). We have studied the regulation CD4 gene transcription during T-cell development in an attempt to gain an understanding of the molecular mechanisms involved in T-cell development and differentiation. Here we present the identification of a second transcriptional enhancer in the murine CD4 locus 24 kb upstream of the CD4 promoter. This enhancer is active in mature T cells and is especially active in CD4+ helper T cells. A number of nuclear proteins bind to elements in the minimal CD4 enhancer that includes consensus sites for AP-1, Sp1, Gata, and Ets transcription factor families. We find that the Ets consensus site is crucial for enhancer activity and that the recently identified Ets factor, Elf-1, which is expressed at high levels in T cells and involved in the regulation of several other T-cell-specific genes, is a dominant protein in T-cell nuclear extracts that binds to this site.

Animals↗

Two signals are required for negative selection of CD4+CD8+ thymocytes.

Recent results indicate that two signals are required for activation of mature T cells. The first is delivered through the TCR, and the second is delivered through receptors that bind various ligands expressed on APC. For example, it has been shown that B7/BB1, which is expressed on many APC, can costimulate T cell activation by binding to CD28 or CTLA4, which are expressed on mature T cells. In contrast, little is known of the signals required for negative selection of autoreactive thymocytes. Thus, we have investigated this issue by using an in vitro culture system in which thymocytes from mice that are transgenic for a class II MHC-restricted TCR are cultured with murine fibroblast lines that express class II MHC. Under these conditions, CD4+CD8+ (DP) thymocytes undergo an Ag-dependent programmed cell death, which likely represents the negative selection of autoreactive thymocytes that would occur in an intact thymus. Using this culture system, we first found that both TCR- and APC-dependent stimuli were required in order to induce deletion of DP thymocytes. Anti-TCR antibodies alone did not cause deletion of DP cells, but merely induced a decrease in their expression of CD4 and CD8 to produce a DPdull phenotype. Addition of APC was then required for deletion of these DPdull cells. One obvious candidate for the costimulatory signal expressed by these APC was B7. Three different experimental approaches indicated, however, that B7 was not the APC-dependent signal required for deletion of DP thymocytes. Thus, these results suggest that negative selection of autoreactive thymocytes is a two-step process in which stimulation of the TCR causes downregulation of CD4 and CD8 on DP thymocytes, and then an unknown ligand expressed on APC stimulates a receptor on DP thymocytes to induce their deletion.

Abatacept↗

Requirement for tyrosine kinase p56lck for thymic development of transgenic gamma delta T cells.

The Src-related protein tyrosine kinase p56lck is essential for antigen-specific signal transduction and thymic maturation of T cells that have an alpha beta T cell receptor (TCR), presumably by physical association with CD4 or CD8 molecules. To evaluate the requirement for p56lck in the development of T cells that have gamma delta TCRs, which generally do not express CD4 or CD8, p56lck mutant mice were bred with TCR gamma delta transgenic mice. Few peripheral cells that carried the transgenes could be detected in p56lck-/- mice, although 70 percent of thymocytes were transgenic. Development of transgenic gamma delta+ thymocytes was blocked at an early stage, defined by interleukin-2 receptor alpha expression. However, extrathymic development of CD8 alpha alpha+ TCR gamma delta+ intestinal intraepithelial lymphocytes appeared to be normal. Thus, p56lck is crucial for the thymic, but not intestinal, maturation of gamma delta T cells and may function in thymic development independently of CD4 or CD8.

Animals↗

Phenotypic and functional analysis of positive selection in the gamma/delta T cell lineage.

Recent evidence suggests that T cells expressing gamma/delta antigen receptors (T cell receptor [TCR]) are subject to positive selection during development. We have shown that T cells expressing a class I major histocompatibility complex (MHC)-specific gamma/delta TCR transgene (tg) are not positively selected in class I MHC-deficient, beta 2-microglobulin (beta 2m) gene knockout mice (tg+ beta 2m-). In this report, we examine phenotypic and functional parameters of gamma/delta positive selection in this transgenic model system. TCR-gamma/delta tg+ thymocytes of mature surface phenotype (heat stable antigen-, CD5hi) were found in beta 2m+ but not in beta 2m- mice. Moreover, subsets of tg+ thymocytes with the phenotype of activated T cells (interleukin [IL]2R+, CD44hi, or Mel-14lo) were also present only in the beta 2m+ mice. Cyclosporine A, which blocks positive selection of TCR-alpha/beta T cells, also inhibited gamma/delta tg+ T cell development. These results support the idea that positive selection of TCR-gamma/delta requires active TCR-mediated signal transduction. Whereas tg+ beta 2m+ thymocytes produced IL-2 and proliferated when stimulated by alloantigen, TCR engagement of tg+ beta 2m- thymocytes by antigen induced IL-2R expression but was uncoupled from the signal transduction pathway leading to IL-2 production and autocrine proliferation. Overall, these results demonstrate significant parallels between gamma/delta and alpha/beta lineage development, and suggest a general role for TCR signaling in thymic maturation.

Animals↗

Evidence for programmed cell death of self-reactive gamma delta T cell receptor-positive thymocytes.

The negative selection of T cells expressing the gamma delta T cell antigen receptor (gamma delta T cells) was studied using transgenic mice expressing a gamma delta receptor with specificity for an H-2T-linked class I major histocompatibility complex molecule from H-2b mice. The potentially self-reactive gamma delta thymocytes in H-2b/d transgenic mice are larger and have lower levels of gamma delta T cell receptor expression than gamma delta thymocytes from H-2d mice. H-2b/d gamma delta thymocytes do not respond to H-2b antigen-presenting cells, and thus are inactive compared to H-2d gamma delta thymocytes. However, the H-2b/d gamma delta thymocyte population, but not the H-2d gamma delta thymocyte population, undergoes a high rate of programmed cell death when placed in overnight culture. These observations constitute the first direct evidence that self-reactive gamma delta thymocytes undergo programmed cell death. This in vitro programmed cell death of self-reactive gamma delta thymocytes may reflect the clonal deletion process that results in a depletion of gamma delta T cells in the peripheral lymphoid organs of adult H-2b/d mice. We also present evidence that self-reactive gamma delta T cells, similarly to alpha beta T cells, undergo a lesser degree of clonal deletion in neonatal mice compared to adult mice.

Animals↗