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E C Butcher

Publications and source records attributed to E C Butcher.

At least 199 records · Page 11Linked to original sources

Lymphocyte recognition of high endothelium: antibodies to distinct epitopes of an 85-95-kD glycoprotein antigen differentially inhibit lymphocyte binding to lymph node, mucosal, or synovial endothelial cells.

The tissue-specific homing of lymphocytes is directed by specialized high endothelial venules (HEV). At least three functionally independent lymphocyte/HEV recognition systems exist, controlling the extravasation of circulating lymphocytes into peripheral lymph nodes, mucosal lymphoid tissues (Peyer's patches or appendix), and the synovium of inflamed joints. We report here that antibodies capable of inhibiting human lymphocyte binding to one or more HEV types recognize a common 85-95-kD lymphocyte surface glycoprotein antigen, defined by the non-blocking monoclonal antibody, Hermes-1. We demonstrate that MEL-14, a monoclonal antibody against putative lymph node "homing receptors" in the mouse, functionally inhibits human lymphocyte binding to lymph node HEV but not to mucosal or synovial HEV, and cross-reacts with the 85-95-kD Hermes-1 antigen. Furthermore, we show that Hermes-3, a novel antibody produced by immunization with Hermes-1 antigen isolated from a mucosal HEV-specific cell line, selectively blocks lymphocyte binding to mucosal HEV. Such tissue specificity of inhibition suggests that MEL-14 and Hermes-3 block the function of specific lymphocyte recognition elements for lymph node and mucosal HEV, respectively. Recognition of synovial HEV also involves the 85-95-kD Hermes-1 antigen, in that a polyclonal antiserum produced against the isolated antigen blocks all three classes of lymphocyte-HEV interaction. From these studies, it is likely that the Hermes-1-defined 85-95-kD glycoprotein class either comprises a family of related but functionally independent receptors for HEV, or associates both physically and functionally with such receptors. The findings imply that related molecular mechanisms are involved in several functionally independent cell-cell recognition events that direct lymphocyte traffic.

Antibodies, Monoclonal↗

Enhanced binding of peripheral blood mononuclear leukocytes to gamma-interferon-treated cultured keratinocytes.

Dermatopathologists observe mononuclear leukocytes in close apposition to keratinocytes (KCs) in graft versus host disease and in other lymphocyte-mediated skin diseases, such as lichen planus, erythema multiforme, and lupus erythematosus. Since the KCs are Class II histocompatibility antigen (HLA-DR) positive in these diseases (indicating local production of gamma interferon, IFN-gamma, by activated T-cells), we sought to determine whether IFN-gamma treatment of KCs would influence the ability of allogeneic peripheral blood mononuclear leukocytes (PBMLs) to adhere to cultured KCs in vitro. The adherence of PBMLs to KC monolayers was determined by the three following methods: (a) methanol fixation of the washed KCs (after PBML incubation), followed by hematoxylin-eosin staining and direct counting of adherent PBMLs; (b) fluorescein isothiocyanate (FITC) labeling of PBML, followed by measuring the amount of FITC-PBML bound to KCs after washing either by direct visualization with a fluorescence microscope; or by (c) quantitative fluorescence spectroscopy following lysis of the adherent cells. While untreated KCs bound allogeneic PBMLs minimally 15-120 min at 37 degrees C, pretreatment of the KCs with IFN-gamma (300 U/ml, 3 days) produced significantly increased binding of the PBMLs by approximately fivefold. By contrast, IFN-alpha and IFN-beta (10(3) U/ml) had no effect. Also, despite the induction of HLA-DR on cultured human fibroblasts, no increased binding of PBMLs after IFN-gamma treatment was observed. The selective ability of IFN-gamma to produce a marked increase in adherence between KCs and PBMLs suggests a new role for IFN-gamma in the immunobiology of the skin.

Cell Adhesion↗

Human lymphocyte and lymphoma homing receptors.

The migration of normal and malignant lymphocytes is controlled in part by selective lymphocyte recognition of high endothelial venules (HEV) at sites of lymphocyte exit from the blood. Recirculating lymphocytes appear to utilize structurally related, yet functionally distinct, 90-kD receptors to interact in an organ-specific manner with HEV in peripheral lymph nodes, in mucosa-associated lymphoid tissues (Peyer's patches, appendix), and in inflamed joint tissue (synovium). These lymphocyte "homing receptors" constitute a family of glycoprotein endothelial cell recognition elements that regulate the extravasation of circulating normal and neoplastic lymphocytes into different organs of the body, and thus play an important role in determining the characteristics of local immune responses and the patterns of dissemination of lymphoid neoplasms.

Animals↗

A distinct endothelial cell recognition system that controls lymphocyte traffic into inflamed synovium.

Lymphocytes are essential mediators of normal tissue inflammatory reactions and of pathologic tissue damage in, for example, rheumatoid arthritis and other autoimmune diseases. In a study of the mechanisms controlling lymphocyte entry into sites of inflammation from the blood, the function and specificity of lymphocyte-endothelial interactions were examined in inflamed joint tissue (synovium) from patients with rheumatoid arthritis. Synovial high endothelial venules (HEV) supported the binding of normal peripheral blood lymphocytes in vitro. The characteristics of this binding, which were similar to those of lymphocyte-HEV interactions controlling lymphocyte migration into organized lymphoid tissues, included a requirement for calcium ions, a dependence on metabolic activity, and a preferential adherence of circulating lymphocytes as opposed to immature thymocytes. However, the binding of lymphocytes to synovial HEV was not inhibited by a monoclonal antibody to lymphocyte receptors for lymph node HEV, and synovial HEV failed to bind either lymph node HEV-specific or mucosal HEV-specific B lymphoblastoid cells. The results suggest that a lymphocyte-endothelial cell recognition system that is distinct from such systems in organized lymphoid tissues directs the extravasation of normal lymphocytes as well as pathologically important effector cells into inflamed synovium.

Animals↗

Phenotypic analysis of thymocytes that express homing receptors for peripheral lymph nodes.

Thymocytes that express high levels of homing receptors for peripheral lymph nodes can be detected with the monoclonal antibody MEL-14. We have shown that in adult mice these rare MEL-14hi thymocytes a) are cortical in location and typically constitute 1 to 3% of the total thymocyte population, b) may be a major source of thymus emigrants, and c) contain a high frequency of precursors of alloreactive cytotoxic T lymphocytes. In this study we have analyzed the phenotype of the MEL-14hi thymocyte subset. Most normal adult MEL-14hi thymocytes are midsize and express the mature phenotype typical of thymus emigrants, medullary thymocytes, and peripheral T cells: they are predominantly PNAlo, H-2K+, Thy-1+, Ly-1hi, and either Lyt-2-/L3T4+ or Lyt-2+/L3T4-. These findings argue strongly for the presence of rare MEL-14hi immunocompetent cortical thymocytes that, aside from their homing receptor expression, are phenotypically indistinguishable from medullary thymocytes. However, a minority (20 to 30%) of MEL-14hi thymocytes are large and phenotypically nonmature: they express intermediate to high levels of PNA binding sites, and are H-2K- to H-2Klo, Thy-1hi, Ly-1+, and either Lyt-2+/L3T4+ or Lyt-2-/L3T4-. Through a technique that selectively labels outer cortical cells, phenotypically nonmature MEL-14hi thymocytes have been shown to be concentrated in the subcapsular blast region of the outer cortex. Although we have no direct evidence of a precursor-product relationship, we consider it likely that the phenotypically nonmature outer cortical MEL-14hi lymphoblasts give rise to phenotypically mature MEL-14hi cells located deeper in the cortex. These results are consistent with our previous proposal that MEL-14hi thymocytes are a major source of thymus emigrants, and indicate that expression of high levels of MEL-14-defined homing receptors may be closely linked to the intrathymic selection process.

Animals↗

Dual immunofluorescence studies of cortisone-induced thymic involution: evidence for a major cortical component to cortisone-resistant thymocytes.

Cortisone-resistant thymocytes (CRT) have been used as the experimental equivalent of medullary thymocytes for the past 15 yr. Studies with CRT have provided evidence that the medullary population is similar to mature T cells in phenotype and function and may therefore be the major source of thymus emigrants. However, we have recently demonstrated that CRT differ from medullary thymocytes in their expression of the homing receptor molecule recognized by the monoclonal antibody MEL-14. Thus, many CRT express high levels of the MEL-14-defined homing receptor, whereas medullary thymocytes are MEL-14- to MEL-14lo. In normal adult mice, only 1 to 3% of thymocytes are MEL-14hi; these cells are located exclusively in the cortex and many are phenotypically and functionally mature. In this study we have used dual immunofluorescence techniques to further characterize those thymocytes resistant to cortisone treatment. Aside from being of mature phenotype with respect to expression of peanut agglutinin binding sites and the cell surface molecules H-2K, Ly-1, Lyt-2, and L3T4, CRT can be divided into MEL-14lo and MEL-14hi subpopulations, suggesting that they may actually be derived from both the medullary and the MEL-14hi cortical thymocyte subsets.

Animals↗

Ontogeny of lymphocyte homing receptor expression in the mouse thymus.

The monoclonal antibody MEL-14 has been used in conjunction with immunohistology and multiparameter immunofluorescence to identify and characterize homing receptor-bearing thymocytes at various stages of embryonic and neonatal development. MEL-14hi thymocytes first appear at day 14 of gestation and come to represent about 40% of day 15 fetal thymocytes. Thereafter, the proportion of MEL-14hi thymocytes rapidly declines such that by birth (usually the 20th day of embryonic development) only about 2% of thymocytes are MEL-14hi. Although newborn thymocytes resemble adult thymocytes in this respect, the phenotypic characteristics of fetal and neonatal MEL-14hi thymocytes suggest that this unique subset undergoes a gradual transition from containing exclusively phenotypically immature cells in early gestation to containing predominantly phenotypically mature cells by young adulthood. Thus, virtually none of day 15 MEL-14hi fetal thymocytes are peanut agglutinin (PNA)lo, Ly-1hi, or either Lyt-2-/L3T4+ or Lyt-2+/L3T4-, whereas in the weeks that follow a steadily greater proportion of MEL-14hi thymocytes come to express this mature pattern (roughly 70% at 4 wk of age). Most day 15 MEL-14hi fetal thymocytes appear to express the functional homing receptor molecule, since day 15 fetal thymocytes bind to peripheral lymph node high endothelial venules about 40 to 50% as well as do adult mesenteric node lymphocytes, whereas adult thymocytes bind only about 5% as well. We have also identified a population of outer cortical MEL-14hi Lyt-2-/L3T4- lymphoblasts that appears during thymus regeneration 5 to 6 days after the administration of hydrocortisone. These lymphoblasts express the same phenotype as cells that constitute 40% of the day 15 fetal thymus and only 0.4% of normal adult thymocytes, implying that this particular subset may make up a significant fraction of thymocytes whenever there is a requirement for rapid expansion of the intrathymic and/or peripheral T cell pools. Taken together, these results are consistent with the notion that expression of the MEL-14-defined homing receptor may be closely linked to important intrathymic events that may occur early in T cell development and yet still have an overriding impact on the selection of those thymocytes that will serve as precursors of thymus emigrants.

Animals↗

Antigen-induced changes in B cell subsets in lymph nodes: analysis by dual fluorescence flow cytofluorometry.

Changes in the representation and surface phenotype of defined B cell subsets in murine lymph nodes stimulated with keyhole limpet hemocyanin or sheep red blood cells have been analyzed by two-color immunofluorescence fluorocytometric analysis. Shortly after immunization with either antigen there is a dramatic increase in both the frequency and absolute number of IgM+, IgD+ B cells, which is followed by the formation of germinal centers. Germinal center cells, as soon as they appear on day 3 after primary immunization, bind high levels of peanut agglutinin, bear low levels of surface IgM but no detectable surface IgD, and are characterized by lack of staining with MEL-14, a monoclonal antibody which recognizes a lymphocyte surface receptor involved in lymphocyte homing. The level of I-A and H-2K region-encoded surface antigens on early germinal center cells is higher than on PNAlo B cells. During the first 7 days of the germinal centers there is a progressive decrease in the average level of H-2K but not of Ia antigens. A similar decrease was observed for ThB. It is confirmed that the germinal center cell population contains the majority of antigen-binding cells in the stimulated lymph node. These findings indicate that B cells are recruited nonspecifically to antigen-stimulated lymph nodes, and that the antigen-specific cells then selectively participate in the formation of germinal centers where they undergo specific differentiation events.

Animals↗

A lymphoid cell surface glycoprotein involved in endothelial cell recognition and lymphocyte homing in man.

We describe a 90-kDa lymphocyte surface glycoprotein, recognized by the monoclonal antibody Hermes-1, that is involved in endothelial cell recognition and lymphocyte trafficking in man. This molecule is selectively expressed on normal or transformed lymphoid cells that are able to recognize and bind to high endothelial venules (HEV, specialized vessels that mediate lymphocyte exit from the blood into lymphoid organs); appears to be linked to HEV recognition function since, in fluorescence-activated cell sorting of variants of a cloned cell line, HEV binding ability co-selects with the Hermes-1 antigen; bears the predominant cell surface epitopes recognized by heterologous anti-human lymphocyte antibodies able to interfere with lymphocyte binding to HEV; and is structurally similar to a previously described mouse lymphocyte surface receptor for HEV. These findings demonstrate that the molecule defined by Hermes-1 either functions as a specific lymphocyte surface receptor for HEV, or is both precisely coregulated and physically and/or functionally associated with such receptors. The expression of this putative receptor for HEV on normal human lymphocyte populations parallels, and thus presumably helps determine, their migratory status in vivo. Hermes-1 should be a powerful tool for analyzing the role of endothelial cell recognition in the traffic of normal and neoplastic human lymphocytes.

Animals↗

Interactions between endothelial cells and leukocytes.

We present evidence that specific receptors are utilized by neutrophils to control their interaction with endothelial cells at sites of acute inflammation and that these receptors are related if not identical to lymphocyte "homing receptors" for lymphoid tissue high endothelium. We speculate that such receptors play a fundamental but not exclusive role in controlling the extravasation and tissue localization of all bone marrow-derived nucleated cells. In addition, we emphasize the active role of endothelial cells in the process of lymphocyte migration and leukocyte extravasation. By the expression of as yet unidentified organ-specific determinants for lymphocyte recognition, endothelial cells control the exit of particular lymphocyte subsets into mucosal versus nonmucosal sites, thus helping to determine the unique features of mucosal versus nonmucosal immune responses. Furthermore, we argue that endothelial cells are exquisitely responsive to local immune reactivity and present evidence that specific lymphokines, including gamma-interferon, play an important role in inducing postcapillary venules to express differentiated features required for the support of lymphocyte traffic into lymphoid organs and into sites of chronic inflammation. Leukocytes, endothelial cells, and probably other tissue cell classes appear to interact at multiple levels by a variety of mechanisms to regulate the local extravasation of immune effector cells.

Animals↗

Interferon-gamma regulates an antigen specific for endothelial cells involved in lymphocyte traffic.

One of the most striking examples of localized vascular differentiation is exhibited by specialized lymphoid organ venules that mediate the extravasation of circulating lymphocytes from the blood. These vessels are characterized by cuboidal or "high" endothelial cell morphology and are unique in their functional capacity to interact with migrating lymphocytes, regulating both the rate and specificity of lymphocyte traffic through particular regions of the body. We describe here a monoclonal antibody, MECA-325, that defines an endothelial cell differentiation antigen selectively expressed on high endothelium in the mouse. Thus an antigen defining a specific functional subset of endothelial cells has been found. Furthermore, we demonstrate that the MECA-325 antigen can be induced in mouse lung or bone marrow-derived endothelial cell lines in vitro by interferon-gamma but not by interferon-beta, interleukin-1, or endothelial cell mitogens. The results define a unique marker associated with differentiated endothelial cells mediating lymphocyte traffic from the blood, and they provide evidence that the specialized phenotype of these high endothelial cells may be induced and controlled by local factors associated with immune activity.

Antibodies, Monoclonal↗

Homing receptors and the control of lymphocyte migration.

The traffic of lymphocytes is controlled in part by the selective interaction of circulating lymphocytes with specialized high endothelial venule (HEV) cells at sites of lymphocyte exit from the blood. At least three independent receptor systems are responsible for controlling lymphocyte traffic to different lymphoid organs or to sites of inflammation: one mediates lymphocyte interaction with HEV in peripheral lymph nodes, another in mucosa-associated lymphoid tissues, and a third in inflamed synovium. The receptors mediating lymphocyte recognition of HEV in different organs appear to be structurally related yet antigenically and functionally distinct 90 kD glycoproteins. Receptors for lymph node HEV can function as mammalian lectins, and probably interact with specific carbohydrate ligands on high endothelial cells. Mouse and human homing receptors share both antigenic and structural features, indicating a high conservation of lymphocyte-endothelial recognition systems during evolution. They play an essential part in the immune process by controlling lymphocyte traffic during B- and T-cell differentiation, and by segregating effector cells derived from stimulation in different tissues, thus simultaneously increasing the efficiency of organ-specific immune responses and decreasing possibilities for autoimmune crossreactions. Homing receptors are also expressed by many mouse and human lymphoid neoplasms, and appear to play a role in lymphoma metastasis. Related if not identical receptors are expressed by other leukocyte types, including polymorphonuclear leukocytes, monocytes, and large granular lymphocytes (natural killer cells). Thus lymphocyte homing receptors are members of a family of glycoprotein receptors for endothelium that control the extravasation of lymphocytes as well as other leukocytes, and help regulate both non-specific and specific immune responses in vivo.

Animals↗

Human T cell clones express functional homing receptors required for normal lymphocyte trafficking.

To function efficiently in vivo, lymphocytes must circulate from the blood into lymphoid tissues and other sites of immune reaction. Herein, we show that human cytotoxic and helper T cell clones and lines, maintained in vitro with IL-2, express the functional capacity to recognize and bind to high endothelial venules (HEV), a capacity essential for lymphocyte exit from the blood, and hence for normal lymphocyte trafficking. The expression of functional homing receptors distinguishes human T cell clones from their murine counterparts, which uniformly lack receptors for HEV and are unable to migrate normally from the blood in vivo. The results raise the possibility that human T cell clones may be more effective in mediating in vivo immune responses than is suggested by murine models.

Appendix↗