Epidermal T lymphocytes--ontogeny, features and function.
Explore the source record for details and available documents.
Biomedical subjects
Publications and source records attributed to A Elbe.
Explore the source record for details and available documents.
The presence of CD3/TCR V gamma 3 moieties on both dendritic epidermal T cells (DETC) and fetal murine thymocytes has led to the concept that fetal thymocytes expressing this particular TCR phenotype are the actual DETC precursors. To test this assumption, we injected i.v. thymocyte suspensions prepared from day 16 and day 19 fetal mice as well as from adult animals, into syngeneic and Thy-1-disparate nude mice, the epidermis of which contains only Thy-1+/CD3- lymphocytes. Phenotypic analysis of the recipient epidermis by in situ immunolabeling revealed that injection of day 16 and day 19 fetal, but not of adult, thymocytes resulted in the appearance of distinct clusters of DETC as judged by their dendritic morphology and uniform expression of CD3/TCR V gamma 3 receptors. The presence of CD3+/TCR V gamma 3+ cells in the fetal, but not in the adult, thymocyte population(s) together with the failure to detect DETC after transfer of Thy-1+/CD3- fetal thymocytes strongly suggest that CD3+/TCR V gamma 3+ thymocytes are the DETC precursors. Kinetic studies of the DETC population from 2 to 12 wk after cell transfer revealed a substantial increase in the cell density within the DETC clusters that was not accompanied by an increase in the number of clusters. Thus, it appears that newly arriving DETC undergo proliferative activity in situ. Collectively, our results show that, under the experimental conditions chosen, CD3+/TCR V gamma 3+ fetal thymocytes are actual DETC precursors. Although it is not clear whether these experimental conditions are representative of the in vivo situation, they may serve as a useful model for studying the mechanisms underlying the homing properties of different lymphocyte subsets.
Our attempts to clarify the contribution of the thymic vs. the cutaneous microenvironment in the maturation of dendritic epidermal T cell (DETC) precursors into DETC gave diverse results. In one series of experiments, we found that i.v. injection of fetal thymocytes (containing a TCR V gamma 3-expressing subpopulation), but not of adult thymocytes (containing no TCR V gamma 3+ cells) results in the appearance of CD3/TCR V gamma 3+ dendritic epidermal cells (=DETC). In other experiments, we have obtained evidence that transplantation of day 16 fetal skin onto a Thy-1-disparate recipient results in the appearance of donor-type DETC. Our further observation that the transplanted skin contains CD45+/Thy-1+/CD3- lymphocytes, but no mature T cells, therefore implies that fetal skin can provide stimuli promoting the expression of CD3/TCR genes in immature (CD3-) DETC precursors. It remains to be seen whether both or only one of these maturational pathways are (is) followed under physiological conditions.
Thy-1+ dendritic epidermal cells (Thy-1+ DEC) and immature thymocytes share several phenotypic features: CD45+, Thy-1+, asialo-GM1+, CD3+, CD4-, and CD8-. In view of this similarity, it has been suggested that the epidermis may be a site of either post-thymic or extra-thymic T-cell development. In order to address this issue, we used C3H/He/Han (Thy-1.2)----AKR/Ola (Thy-1.1) radiation bone marrow chimeras. Animals were first either thymectomized or sham-thymectomized, then lethally irradiated (750R) and, finally, reconstituted with allogeneic bone marrow cells previously depleted of Thy-1-bearing cells. Six weeks after bone marrow transplantation, spleens and lymph nodes of sham-treated animals, but not of thymectomized animals, contained large numbers of CD3+ donor-type Thy-1+ cells. The epidermis of both thymectomized and sham-treated animals contained not only many recipient-type CD3+, Thy-1+ DEC, but also small numbers of CD3-, donor-type Thy-1+ cells. After 4 months, the frequency of donor cells had greatly increased, but they still lacked CD3 antigens. Most of the donor cells had a rounded shape, but some exhibited a dendritic configuration. These results demonstrate that Thy-1- bone marrow-derived precursors of Thy-1+ DEC can migrate to the epidermis without thymic influence and yet acquire Thy-1 antigens during their journey. Although donor-type Thy-1+ epidermal cells failed to mature into CD3+ dendritic epidermal cells, the experimental model used in this study may be a versatile tool for studying the influence of thymic and extrathymic epithelia on T-cell maturation.
The adult murine epidermis harbors two separate CD45+ bone marrow (BM)-derived dendritic cell systems, i.e., Ia+, ADPase+, Thy-1-, CD3- Langerhans cells (LC) and Ia-, ADPase-, Thy-1+, CD3+ dendritic epidermal T cells (DETC). To clarify whether the maturation of these cells from their ill-defined precursors is already accomplished before their entry into the epidermis or, alternatively, whether a specific epidermal milieu is required for the expression of their antigenic determinants, we studied the ontogeny of CD45+ epidermal cells (EC). In the fetal life, there exists a considerable number of CD45+, Ia-, ADPase+ dendritic epidermal cells. When cultured, these cells become Ia+ and, in parallel, acquire the potential of stimulating allogeneic T cell proliferation. These results imply that CD45+, Ia-, ADPase+ fetal dendritic epidermal cells are immature LC precursors and suggest that the epidermis plays a decisive role in LC maturation. The day 17 fetal epidermis also contains a small population of CD45+, Thy-1+, ADPase-, CD3- round cells. Over the course of 2 to 3 wk, they are slowly replaced by an ever increasing number of round and, finally, dendritic CD45+, Thy-1+, CD3+ EC. Thus, CD45+, Thy-1+, ADPase-, CD3- fetal EC may either be DETC precursors or, alternatively, may represent a distinctive cell system of unknown maturation potential. According to this latter theory, these cells would be eventually outnumbered by newly immigrating CD45+, Thy-1+, CD3+ T cells--the actual DETC.
Cell-cell and cell-extracellular (ECM) protein interactions are mediated through heterodimers termed integrins. We have demonstrated that dendritic epidermal T cell (DETC) lines adhere to the ECM proteins, fibronectin, fibrinogen, and vitronectin but not to collagen, laminin, or control proteins. This adhesion was blocked by the tetrapeptide RGDS, but not the control peptide, RGES. We have derived a hamster mAb H9.2B8, and a rat mAb, 8.18E12, from immunizations with DETC lines. The mAbs in combination, but not individually, specifically inhibited the adhesion of DETC lines to fibronectin, fibrinogen, and vitronectin. Immunoprecipitation analysis revealed that both mAbs reacted with a heterodimer composed of noncovalently linked 140- and 95-kD subunits. The 140-kD subunit can be reduced to 120- and 23-kD fragments. Although the two mAbs did not cross-compete for binding to DETC, sequential immunoprecipitation studies indicated that they react with the same 120-kD fragment. While all DETC cell lines and several T cell clones were reactive with the mAbs, the mAbs were not reactive with normal spleen, lymph node, thymus, or skin. Stimulation of splenic T cells with Con A or allogeneic cells induced mAb reactivity after 1 wk in vitro. These data demonstrate that a single lymphocyte receptor, with biochemical features characteristic of integrins, mediates RGD-dependent binding to the ECM proteins, fibronectin, fibrinogen, and vitronectin. Furthermore, since this integrin is expressed by long-term activated T cells, this receptor may play a physiological role in T cell function.
Dendritic epidermal T cells (DETC) are CD45+, Thy-1+, CD5-, CD8-, CD4- murine lymphocytes that express surface-bound CD3 antigens associated with T cell receptor gamma/delta heterodimers. Using epidermal cells greatly enriched for DETC and depleted of Langerhans cells, we found that DETC have growth requirements quite different from those of accessory cell-depleted lymph node and splenic T cells. Although the latter cells strongly proliferate in response to phorbol myristate acetate (PMA) + ionomycin, DETC, when exposed to interleukin-1 (IL-1), interleukin-3 (IL-3), concanavalin A (ConA), PMA, and ionomycin used either alone or in combination, do not exhibit significant mitotic activity. Recombinant interleukin 2 (rIL-2), albeit ineffective by itself, leads to vigorous proliferation of DETC when used with either ConA or PMA + ionomycin + IL-1. In contrast, the combination of PMA and recombinant interleukin-4 (rIL-4), which triggers growth of lymph node T cells, does not induce proliferation of DETC. Although a portion of proliferating DETC expressed CD8 antigens, essentially none bore detectable amounts of surface-bound CD4 or CD5 antigens, or both. Continuing stimulation of primary DETC cultures with lectin/lymphokine-rich media results in the propagation of cells with the essential phenotypic features of resident DETC.
Cell lines derived from Thy-1+ dendritic epidermal cells (Thy-1+DEC) display a marked heterogeneity in T cell receptor (TcR) expression including CD3-associated alpha/beta, C gamma 1/delta or C gamma 2/delta and C gamma 4/delta TcR. In order to investigate whether this heterogeneity is primarily imposed by in vitro culture conditions or, alternatively, is already present within the epidermis, we studied TcR expression by Thy-1+DEC in situ and on freshly isolated epidermal cell suspensions greatly enriched for Thy-1+DEC. Immunolabeling experiments showed that resident Thy-1+DEC are CD45+, Thy-1+, CD3+, TcR V beta 8-, CD5-, CD4- CD8-, CD25- lymphocytes. Immunoprecipitation of lysates from 125I-surface-labeled Thy-1+DEC-enriched epidermal cells with anti-CD3 epsilon, anti-C gamma 1,2,3 and anti-C gamma 4 antibodies, respectively, and subsequent analysis of the precipitates by two-dimensional sodium dodecyl sulfate-polyacrylamide gel electrophoresis revealed only CD3-associated 35 kDa/45 kDa gamma/delta heterodimers. The demonstration of TcR heterodimers on resident Thy-1+DEC strongly implies that these cells are functional T cells. The selective expression of C gamma 1/delta (C57BL/6) and C gamma 1/delta or C gamma 2/delta (C3H/He) TcR makes these cells useful for the study of gamma/delta TcR function.
The possibility that Thy-1-positive dendritic epidermal cells (Thy-1+DEC) may contribute to the immunologic functions of murine epidermal cells (EC) prompted us to simultaneously assess the effects of certain immunomodulating physicochemical agents on both Thy-1+DEC and Ia-bearing Langerhans cells (LC). C3H/He mice received one of the following treatment modalities: UV-B irradiation (four consecutive days); psoralen plus UV-A (PUVA; three times a week for three consecutive weeks); topically and systemically applied glucocorticosteroids (GCS). Beginning 2 days after the last treatment, animals were sacrificed and the structure and surface marker expression of Ia+EC and Thy-1+DEC were assessed by immunohistologic means on epidermal sheet preparations from ear skin by using appropriate monoclonal antibodies. Whereas low-dose UV-B irradiation (4 X 100 or 200 J/m2) had little, if any, effect on either Ia+EC or Thy-1+DEC, high-dose UV-B (4 X 700 or 1000 J/m2) or PUVA treatment led to an almost complete disappearance of both surface characteristics. Immunoelectron microscopic studies revealed that in the case of LC, high-dose UV-B or PUVA treatment results in the disappearance of their anti-Ia reactivity but leaves their ultrastructural morphology intact. In sharp contrast, Thy-1+DEC escape ultrastructural detection after PUVA treatment and are greatly reduced in number after high-dose UV-B. Ia+EC continuously reappeared with both treatment modalities over a course of 4 to 6 wk, whereas even after 14 to 22 wk Thy-1+DEC were present only in negligible numbers. Similar to high-dose UV-B or PUVA therapy, administration of GCS resulted in the disappearance of both anti-Thy-1- and anti-Ia-reactive cells. Ultrastructural studies disclosed, however, that these steroid-induced alterations in the surface characteristics were accompanied by a dramatic reduction of the LC population but were not paralleled by morphologic changes of Thy-1+DEC. In the course of 7 wk after cessation of steroid treatment, the number of both Ia+EC and Thy-1+DEC had returned to normal values. The selective removal of either of these two dendritic epidermal cell populations by physicochemical agents may provide an excellent strategy to further clarify the functional properties of both LC and Thy-1+DEC.
Explore the source record for details and available documents.
Increasing evidence exists that the spectrum of dendritic cells within the epidermis is more complex than previously thought. In addition to Langerhans cells, Merkel cells, and melanocytes, the murine epidermis contains a dendritic cell population whose most prominent phenotypic feature is the Thy-1 antigen. These cells are now generally referred to as dendritic Thy-1+ epidermal cells (dThy-1+EC). The ultrastructural features of these cells do not resemble those of other resident epidermal cells (EC). In particular, their cytoplasm contains abundant intermediate-sized filaments of the vimentin type as well as membrane-limited organelles with a central granular core. The bone marrow derivation of dThy-1+EC is now well established: dThy-1+EC carry Ly-5 determinants whose expression is restricted to cells of the hemopoietic differentiation pathway, and studies using Thy-1-disparate radiation bone marrow chimeras have revealed the presence of donor-type Thy-1+ cells within the epidermis; by immunoelectron microscopy, these cells represent dThy-1+EC. dThy-1+EC repopulate the epidermis at a slower rate than Langerhans cells as evidenced by a direct comparison of the repopulation kinetics of both cell systems in radiation bone marrow chimeras, and by experiments studying the emergence of either Ia+- or dThy-1+EC in an epidermis which had been previously depleted of either Langerhans cells (glucocorticosteroids) or of dThy-1+EC (PUVA). The phenotypical features of dThy-1+EC differ from those of thymus-derived lymphocytes, B cells, dendritic cells, and mononuclear phagocytes. The surface marker repertoire of dThy-1+EC (Thy-1, Ly-5, asialo-GM1) resembles certain members of the rather heterogeneous natural killer (NK) cell system but functional studies are needed to ascertain this contention.