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Thrombospondin-1 is a mediator of the neurotypic differentiation induced by EGF in thymic epithelial cells.

Thymic epithelial cell component originates from cranial neural crest as well as from endoderm and ectoderm of the third pharyngeal pouch and branchial cleft. Epidermal growth factor (EGF) has been previously shown to play a crucial role in directing thymic epithelial cells toward a neural-oriented cell fate. To identify genes that are involved in the EGF-induced neurotypic differentiation of the thymic stroma-derived TC-1S cell line, we studied EGF-treated and untreated cells by RNA fingerprinting PCR-based differential screening. We obtained 23 distinct sequences including 18 known genes and 5 sequences previously unreported, which are currently under characterization. Here, we describe the involvement of one of the isolated genes, the thrombospondin-1, as a mediator of the neurotypic differentiation induced by EGF in TC-1S cells. We show that thrombospondin-1 mRNA and protein levels are increased by EGF. Moreover, exogenous thrombospondin-1 is able to enhance the outgrowth of neurite-like processes as well as the expression of neurofilaments and neural cell adhesion molecule in TC-1S cells. These observations suggest that the up-regulation of thrombospondin-1 synthesis induced by EGF contributes to the differentiation choice of thymic epithelial cells toward a neural fate, reminiscent of their neural crest origin.

Animals↗

Expression of parathyroid hormone-related protein and the parathyroid hormone/parathyroid hormone-related protein receptor in rat thymic epithelial cells.

Thymic epithelial cells are an important source of cytokines and other regulatory peptides which guide thymocyte proliferation and maturation. Parathyroid hormone-related protein (PTHrP), a cytokine-like peptide, has been reported to affect the proliferation of lymphocytes in vitro. The studies presented here were undertaken to test the hypotheses that PTHrP is produced locally within the thymus where it could influence thymocyte maturation and, more specifically, that thymic epithelial cells (TEC) could be the intrathymic source of PTHrP expression. To this end, immunohistochemical studies were performed to localise PTHrP and the PTH/PTHrP receptor within the adult rat thymus. Antibodies directed against 2 different PTHrP epitopes, PTHrP(1-34) and PTHrP(34-53), demonstrated prominent specific PTHrP immunoreactivity in both subcapsular and medullary TEC. In addition, faint but specific staining for PTHrP was seen in the cortex, interdigitating between cortical lymphocytes while sparing epithelial-free subcapsular areas, thus suggesting that cortical TEC could also be a source of PTHrP immunoreactivity. In contrast, PTH/PTHrP receptor immunoreactivity was only seen in medullary and occasional septal TEC; no evidence of cortical or lymphocytic PTH/PTHrP receptor immunoreactivity was detected. Immunohistochemical studies of cultured cytokeratin-positive rat TEC confirmed the results of these in situ studies as cultured TEC were immunoreactive both for PTHrP and the PTH/PTHrP receptor. Thus these results demonstrate that PTHrP is produced by the epithelial cells of the mature rat thymus. This suggests that PTHrP, a peptide with known cytokine, growth factor and neuroendocrine actions, could exert important intrathymic effects mediated by direct interactions with TEC, or indirect effects on PTH/PTHrP receptor-negative thymocytes.

Animals↗

Improved protocol for isolation and characterization of human thymic epithelial cells.

Thymic epithelial cells (TECs) play a vital role in the generation of immunocompetent and immunotolerant T cells. The understanding of TEC biology in model animals such as mice has advanced thanks to the cellular and molecular analyses of purified TEC populations, including cortical TECs (cTECs) and medullary TECs (mTECs). On the other hand, studies of human TECs have fallen behind because of the lack of a well-established method for purifying TEC populations. Here, we show that using 0.5 U/mL liberase to digest thymus tissue into single cells is quicker than using collagenase D or 0.1 U/mL liberase. Thymus digestion with 0.5 U/ml liberase preserves CD205 expressed by cTECs. RNA sequencing analysis of TEC populations isolated from 0.5 U/mL liberase-digested human thymic tissue revealed the expression of molecules known as cTEC- and mTEC-specific genes in mouse thymus in each human TEC population. Our study is expected to fuel further cellular and molecular studies of human TECs, including those related to the collapse of immune tolerance in humans.

Flow cytometry↗

Identification and functional activity of prolactin receptors in thymic epithelial cells.

Thymic epithelial cells (TECs), the major component of the thymic microenvironment, can be modulated by pituitary hormones. We have shown previously that prolactin (PRL) can influence the endocrine activity of TECs and stimulate TEC proliferation as well as cytokeratin expression, suggesting the existence of PRL receptors on TECs. Using a series of monoclonal antibodies (mAbs) to the extracellular domain of the rat liver PRL receptor, we have demonstrate that rat TECs bear specific receptors for PRL, as assessed by immunoblotting as well as by immunocytochemistry experiments. Using a probe specific for the long form of PRL receptor, mRNAs of 6.7 and 10.1 kilobases were detected, although by immunoblot the major protein in TECs had a molecular mass of 43 kDa. Functionally, these mAbs were able to modulate thymulin secretion, as well as TEC proliferation. Moreover, the mAbs cross-reacted with human TECs and were able to mimic the action of PRL on these cells. These data bring further support for the general concept of the neuroendocrine immune circuit and extend the notion for a pleiotropic role of PRL as an immunomodulatory hormone.

Animals↗

EGF receptors on TEA3A1 endocrine thymic epithelial cells.

Thymic endocrine epithelial cell line TEA3A1 can be maintained and passaged in a serum-free WAJC404A medium supplemented with insulin, transferrin, dexamethasone and EGF. EGF not only promotes the growth of these cells but also regulates the activation of phospholipase A2 enzyme activity. The binding of [125I]EGF to the TEA3A1 cells is temperature and time dependent, saturable and can be blocked by excess unlabelled EGF. Two classes of EGF receptors are found on these cells. One with Kd of 5 X 10(-11)M (approximately 3000 sites/cell) and the other with Kd of 5 X 10(-9)M (approximately 30,000 sites/cell). The resynthesis of EGF receptor in TEA3A1 cells after down-regulation requires about 24 hrs and can be blocked by both actinomycin D and cycloheximide.

Animals↗

The receptor DEC-205 expressed by dendritic cells and thymic epithelial cells is involved in antigen processing.

Dendritic cells and thymic epithelial cells perform important immunoregulatory functions by presenting antigens in the form of peptides bound to cell-surface major histocompatibility complex (MHC) molecules to T cells. Whereas B cells are known to present specific antigens efficiently through their surface immunoglobins, a comparable mechanism for the capture and efficient presentation of diverse antigens by dendritic cells and thymic epithelial cells has not previously been described. We show here that their antigen-presentation function is associated with the high-level expression of DEC-205, an integral membrane protein homologous to the macrophage mannose receptor and related receptors which are able to bind carbohydrates and mediate endocytosis. DEC-205 is rapidly taken up by means of coated pits and vesicles, and is delivered to a multivesicular endosomal compartment that resembles the MHC class II-containing vesicles implicated in antigen presentation. Rabbit antibodies that bind DEC-205 are presented to reactive T-cell hybridomas 100-fold more efficiently than rabbit antibodies that do not bind DEC-205. Thus DEC-205 is a novel endocytic receptor that can be used by dendritic cells and thymic epithelial cells to direct captured antigens from the extracellular space to a specialized antigen-processing compartment.

Amino Acid Sequence↗

Thymic epithelial cells derived from the cultures of thymic nurse cells.

Thymic epithelial cells are derived from the cultures of thymic nurse cells. These cultures are free from fibroblasts and macrophages. The epithelial nature of these cells is confirmed by demonstrating the presence of keratin filaments in them. These epithelial cells show heterogeneity in shape, size and distribution of keratin filaments. They contain nonspecific esterase(s) molecules and express both I-A and H-2K antigens.

Animals↗

Effects of cholinergic agonists on the proliferation and protein synthesis in a cultured thymic epithelial cell line.

Thymic epithelial cells appear to release the humoral factors endowing precursors of T cells (thymus-dependent lymphocytes) with the capacity to differentiate and maturate into relatively mature T cells. We have separated the polypeptide fractions containing these factors from the culture supernatant of thymic epithelial cell line. Thymus is reported to be innervated by autonomic nervous system from the prenatal to the pubertal period. But the physiological significance of the nervous system in this lymphoid organ remains obscure. And the modulator of the epithelial cell functions, namely, production and release of the bioactive polypeptides have never been clarified. We show here that acetylcholine (Ach) or carbamylcholine (Cch) enhanced the proliferation of thymic epithelial cells from the TAD3 cell line at preconfluent state, and the protein synthetic activity at confluent state. This phenomenon was completely suppressed by the pretreatment of alpha-bungarotoxin (alpha-BTx). These results suggest that nicotinic Ach-receptors exist on the epithelial cell surface membrane and that the differentiation and maturation of thymic lymphocytes are indirectly regulated by the activated functions of thymic epithelial cells stimulated with cholinergic agonists.

Animals↗

Transient appearance of Ca-binding protein (spot 35-calbindin) in bronchial epithelial cells, thyroid parafollicular cells and thymic epithelial cells during the development of rats.

Tracheobronchial epithelium, thyroid organ, thymus, of the developing rats were examined by immunohistochemistry using anti-spot 35 calbindin-antiserum. At E 14, weak to moderate immunoreactivity for spot 35-calbindin was detected in the airway epithelia of the distal half of the trachea and the extrapulmonary bronchus. The immunoreactive cells increased in intensity at E 16-E 21, but decreased markedly after birth. These cells were non-ciliated cells and comprised a majority of the epithelial cells especially in the ventral/cartilaginous portion of the airway. They were characterized by microvilli, vacuoles, granular and agranular endoplasmic reticulum. Typical ciliated cells, which were much less numerous than the immunopositive non-ciliated cells, were immunonegative. In thyroid gland, calbindin-immunoreactive cells first appeared at E 18. They increased in number at E 20-P 1 and decreased gradually after P 7. These cells were the parafollicular cells characterized by numerous secretory granules and situated in close proximity to the basal surface of the follicular cells. In the thymus, immunoreactive cells appeared in the thymic medulla at E 20. They increased in number at P 1, but decreased gradually after P 7. They were stellate in shape and had vesicles, vacuoles, intermediate filaments and represented a subpopulation of thymic reticular epithelial cells. Such a transient appearance of spot 35-calbindin in these cells suggests that this protein may be involved in the regulation of differentiation or may be involved in the process of secretion during the limited developmental period.

Animals↗

NF-kappaB2 is required for the control of autoimmunity by regulating the development of medullary thymic epithelial cells.

Medullary thymic epithelial cells function as antigen-presenting cells in negative selection of self-reactive T cell clones, a process essential for the establishment of central self-tolerance. These cells mirror peripheral tissues through promiscuous expression of a diverse set of tissue-restricted self-antigens. The genes and signaling pathways that regulate the development of medullary thymic epithelial cells are not fully understood. Here we show that mice deficient in NF-kappaB2, a member of the NF-kappaB family, display a marked reduction in the number of mature medullary thymic epithelial cells that express CD80 and bind the lectin Ulex europaeus agglutinin-1, leading to a significant decrease in the extent of promiscuous gene expression in the thymus of NF-kappaB2(-/-) mice. Moreover, NF-kappaB2(-/-) mice manifest autoimmunity characterized by multiorgan infiltration of activated T cells and high levels of autoantibodies to multiple organs. A subpopulation of the mice also develops immune complex glomerulonephritis. These findings identify a physiological function of NF-kappaB2 in the development of medullary thymic epithelial cells and, thus, the control of self-tolerance induction.

Animals↗

Human thymic epithelial cells express an endogenous lectin, galectin-1, which binds to core 2 O-glycans on thymocytes and T lymphoblastoid cells.

Thymic epithelial cells play a crucial role in the selection of developing thymocytes. Thymocyte-epithelial cell interactions involve a number of adhesion molecules, including members of the integrin and immunoglobulin superfamilies. We found that human thymic epithelial cells synthesize an endogenous lectin, galectin-1, which binds to oligosaccharide ligands on the surface of thymocytes and T lymphoblastoid cells. Binding of T lymphoblastoid cells to thymic epithelial cells was inhibited by antibody to galectin-1 on the epithelial cells, and by two antibodies, T305 and 2B11, that recognize carbohydrate epitopes on the T cell surface glycoproteins CD43 and CD45, respectively. T lymphoblastoid cells and thymocytes bound recombinant galectin-1, as demonstrated by flow cytometric analysis, and lectin binding was completely inhibited in the presence of lactose. The degree of galectin-1 binding to thymocytes correlated with the maturation stage of the cells, as immature thymocytes bound more galectin-1 than did mature thymocytes. Preferential binding of galectin-1 to immature thymocytes may result from regulated expression of preferred oligosaccharide ligands on those cells, since we found that the epitope recognized by the T305 antibody, the core 2 O-glycan structure on CD43, was expressed on cortical, but not medullary cells. The level of expression of the UDP-GlcNAc:Gal beta 1,3GalNAc-R beta 1, 6GlcNAc transferase (core 2 beta 1, 6 GlcNAc transferase, or C2GnT), which creates the core 2 O-glycan structure, correlated with the glycosylation change between cortical and medullary cells. Expression of mRNA encoding the C2GnT was high in subcapsular and cortical thymocytes and low in medullary thymocytes, as demonstrated by in situ hybridization. These results suggest that galectin-1 participates in thymocyte-thymic epithelial cell interactions, and that this interaction may be regulated by expression of relevant oligosaccharide ligands on the thymocyte cell surface.

Animals↗

In vitro bone marrow cell migration to supernatants prepared from thymic epithelial cell cultures.

Thymic epithelial cell cultures were established from neonatal CBA/J mice by inhibition of fibroblast overgrowth. Epithelial cells were identified by their cobblestone appearance in culture, by the presence of keratin, and by ultrastructural analysis demonstrating desmosomes. Supernatants were prepared by incubation of confluent cultures of these cells in serum-free media. Using blind well chambers, these supernatants were chemoattractive to murine bone marrow cells, enriched for immature lymphoid cells, and decreased the myeloid to lymphoid ratio in the migrating cell population. Interleukin 2 had no effect as a modulator of this chemoattraction, nor did it possess chemoattractive properties. Supernatants prepared from epidermal growth factor stimulated thymic epithelial cells possessed significantly enhanced chemoattractive properties to bone marrow cells, and was found to be a thymic epithelial cell mitogen. Supernatants from serum-free cultures of thymocytes also induced a significant migration of bone marrow cells but were found to enrich for mature myeloid cells.

Animals↗

Medullary but not cortical thymic epithelial cells present soluble antigens to helper T cells.

Thymic epithelial cell lines (TECs) were established from newborn C57BL/6 mice. They were classified into two types (medullary and cortical TECs) by using the monoclonal antibody (Th-3) that recognizes the meshwork structure of thymic cortical epithelial cells. Antigen-presenting activity of each TEC was determined by using ovalbumin-specific, I-Ab-restricted helper T cell lines. It was demonstrated that the medullary but not the cortical TECs functioned as antigen-presenting cells. This is the first evidence for the functional difference between the cortical and the medullary TEC.

Animals↗

Induction of limited growth and differentiation of early thymic precursor cells by thymic epithelial cell lines.

The early thymic precursor population of adult mice (low CD4 precursor) has the potential to produce T cells, B cells and dendritic cells if transferred into the appropriate inductive environment of an irradiated recipient. To assess its developmental potential in vitro, this population was isolated and cultured, alone and with various stromal cell lines. Cultured alone, these precursor cells all died rapidly. Co-culture with 3T3 fibroblasts gave good survival but no growth. Co-culture with thymic cortical epithelial cell lines induced significant proliferation after an initial 50% cell loss. However, the supernatant of these cortical epithelial cell lines caused only limited proliferation after very extensive cell death. Examination of the surface phenotype of the cultures on the cortical epithelial layer showed some changes which were compatible with very early steps of thymocyte development, but none of the features of more developed T cells were seen. A proportion of the proliferating cells developed some of the surface markers and morphology of dendritic cells. Immature myeloid cells also grew in these cultures; these appeared to derive from a small number of myeloid progenitors, possibly contaminants within the preparation, and their outgrowth required only soluble factors released by the cortical epithelial cells.

Animals↗

The antigen presentation pathway in medullary thymic epithelial cells, but not that in cortical thymic epithelial cells, conforms to the endocytic pathway.

Murine medullary thymic epithelial cells (mTEC), but not cortical thymic epithelial cells (cTEC), are able to present a soluble antigen, ovalbumin, to helper T cells (Mizuochi, T. et al., J. Exp. Med. 1992. 175: 1601-1605). This functional difference between the mTEC and the cTEC is particularly important when we consider the thymic selection of the T cell repertoire. In the previous report, we proposed that mTEC and cTEC utilize two distinct antigen processing/presenting pathways (Kasai, M. et al., Eur. J. Immunol. 1996. 26: 2101-2107). In this report, we further confirmed this difference by analyzing (a) localization of MHC class II, H2-DM, and invariant chain (li) molecules, (b) the biochemical nature of MHC class II molecules, (c) the sensitivity of MHC class II alphabeta heterodimer formation to concanamycin A, a vacuolar H+-ATPase inhibitor, and (d) the subcellular distribution of MHC class II, H2-DM, and li molecules, in both TEC. Our results demonstrated that, in the mTEC, MHC class II, H2-DM and li molecules gain access to the endocytic pathway, where the luminal condition is acidic and thus li molecules are efficiently degraded and H2-DM molecules function well. In the cTEC, however, such molecules seemed to gain access to an alternative transport pathway, e.g. a secretory pathway, where the luminal condition is not fully acidic. These two distinct antigen processing pathways may account for the functional difference between mTEC and cTEC.

Amino Acid Sequence↗

Effects of cytokines on human thymic epithelial cells in culture: IL1 induces thymic epithelial cell proliferation and change in morphology.

The role of thymic epithelium in T cell development has given rise to a number of studies, but less information is available concerning the factors regulating thymic epithelial cells (TEC) themselves. Several cytokines, natural or recombinant, were investigated for their effects on human TEC proliferation. This study presents evidence for the first time that human recombinant interleukin 1 (IL1) and IL1-containing mixed cytokine preparations induced DNA synthesis of TEC as measured in a 48-hr stimulation assay. The effects of IL1 were dose dependent and sustained in time. The following recombinant cytokines, IL2, IL3, IL4, interferon-gamma (IFN-gamma), IFN-alpha, tumor necrosis factor-alpha (TNF alpha), and TNF beta, as well as thymosin fraction 5 and Escherichia coli lipopolysaccharide (LPS), were not found to modify TEC proliferation but IFN-gamma and TNF alpha enhanced the effects of IL1. We also report that IL1 induced a profound change in the morphology of TEC. Our observations suggest that TEC are targets for the action of cytokines and emphasize the important role played by IL1 within the thymus.

Cell Division↗

CLIP-derived self peptides bound to MHC class II molecules of medullary thymic epithelial cells differ from those of cortical thymic epithelial cells in their diversity, length, and C-terminal processing.

Medullary thymic epithelial cells (mTEC) are able to present soluble antigens to CD4+ helper T cell lines, whereas cortical thymic epithelial cells (cTEC) are not (Mizuochi, T., et al., J. Exp. Med. 1992. 175: 1601-1605). In addition, class II heterodimers from mTEC migrated with apparently less relative molecular mass in SDS-PAGE than those from cTEC (Kasai, M., et al., Eur. J. Immunol. 1998. 28:1867-1876). To investigate the cause of the distinct migration profiles of class II heterodimers in both TEC types, class II heterodimer-associated peptides were analyzed by matrix-assisted laser desorption ionization mass spectrometry. Self peptides from cTEC were shown to vary moderately in length and to be highly diverse, including low amounts of CLIP (class II-associated invariant chain peptide) variants. On the other hand, self peptides from two mTEC consisted predominantly of two CLIP variants with exceptional C-terminal extensions. C-terminally overhanging residues of CLIP in mTEC may be responsible for the distinct migration of class II heterodimers in SDS-PAGE. Differences in migration of class II heterodimers on SDS gels was also observed in H2-DM+ vesicles isolated from both TEC. The possible contribution of self peptides bound to class II heterodimers in TEC to positive or negative selection of T cells in the thymus is discussed.

Amino Acid Sequence↗

Pituitary hormones modulate cell-cell interactions between thymocytes and thymic epithelial cells.

The thymic microenvironment plays a key role in the intrathymic T-cell differentiation. It is composed of a tridimensional network of epithelial cells whose physiology is controlled by extrinsic circuits such as neuroendocrine axes. Herein we show that the expression of extracellular matrix ligands and receptor by cultured thymic epithelial cells is upregulated by prolactin (PRL) and growth hormone (GH), the latter apparently occurring via insulin-like growth factor I (IGF-I). Thymocyte release from the lymphoepithelial complexes, thymic nurse cells, as well as the reconstitution of these complexes are enhanced by PRL, GH or IGF-I. Treatment of a mouse thymic epithelial cell line with these hormones induced an increase in thymocyte adhesion, an effect significantly prevented in the presence of antibodies to fibronectin, laminin or respective receptors VLA-5 and VLA-6. Our data suggest that the in vitro changes in thymocyte/thymic epithelial cell interactions induced by pituitary hormones are partially mediated by the enhancement of extracellular matrix ligands and receptors.

Animals↗