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K Shortman

Publications and source records attributed to K Shortman.

At least 19 recordsLinked to original sources

The surface phenotype of dendritic cells purified from mouse thymus and spleen: investigation of the CD8 expression by a subpopulation of dendritic cells.

A new procedure for rapid isolation of dendritic cells (DC) was devised, involving collagenase digestion of tissues, dissociation of lymphoid-DC complexes, selection of light-density cells, then depletion of lymphocytes and other non-DC by treatment with a mixture of lineage-specific monoclonal antibodies (mAbs) and removal with anti-immunoglobulin-coupled magnetic beads. This enriched population (approximately 80% DC) was further purified when required by fluorescence-activated cell sorting for cells expressing high levels of class II major histocompatibility complex (MHC). The isolated DC were characterized by immunofluorescent staining using a panel of 30 mAbs. Thymic DC were surface positive for a number of markers characteristic of T cells, but they were distinct from T-lineage cells in expressing high levels of class II MHC, in lacking expression of the T cell receptor (TCR)-CD3 complex, and having TCR beta and gamma genes in germline state. Splenic DC shared many markers with thymic DC, but were negative for most T cell markers, with the exception of CD8. A substantial proportion of DC from both thymus and spleen expressed CD8 at high levels, comparable with that on T cells. This appeared to be authentic CD8, and was produced by the DC themselves, since they contained CD8 alpha mRNA. Thymic DC presented both the CD8 alpha and beta chains on the cell surface (Ly-2+3+), although the alpha chain was in excess; the splenic DC expressed only the CD8 alpha chain (Ly-2+3-). It is suggested that the expression of CD8 could endow certain antigen-presenting DC with a veto function.

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Cell surface marker analysis of mouse thymic dendritic cells.

Cell surface markers of mouse thymic dendritic cells have been studied by flow cytometry after isolation by collagenase digestion, separation of the low-density cell fraction and differential adherence. The dendritic cell preparation had a purity of greater than 90%, the contaminating population being essentially composed of thymocytes, macrophages constituting less than 1%. Dendritic cells displayed high forward and low-intermediate side angle scatter, and expressed high levels of major histocompatibility complex (MHC) class I and class II molecules, the heat-stable antigen (HSA), the adhesion molecules Pgp-1 (CD44), LFA-1, ICAM-1 and low levels of Mac-1 and the leukocyte common antigen CD45. Thymic dendritic cells are negative for the stem cell antigen-2 (Sca-2), the B cell-specific form of CD45 (B220), the mouse macrophage markers Fc receptor and F4/80, and the granulocyte marker Gr-1. However, although they do not express the T cell markers Thy-1, CD2, CD3, CD4 and CD5, 20%-30% of dendritic cells are positive for the interleukin 2 receptor alpha chain (CD25), and about 30% express intermediate levels of CD8. These results are discussed with regard to the functional significance of the expression of CD8 by thymic dendritic cells, and the existence of different dendritic cell subpopulations in the murine thymus.

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Commitment to the T cell receptor-alpha beta or -gamma delta lineages can occur just prior to the onset of CD4 and CD8 expression among immature thymocytes.

Two types of T lymphocytes, distinguishable by their surface expression of either the gamma delta or the alpha beta T cell receptor (TcR) for antigen, populate the periphery in the adult. In addition, immature precursors of both T cell types can be found in the thymus. While it is generally accepted that these two cell types represent distinct lineages, it is not known at which developmental stage these lineages diverge. The most mature thymocyte precursor population not yet expressing T lineage-specific surface markers (i.e. CD3, CD4, and CD8) is known to be capable of generating TcR-alpha beta T cells, and has been thought to be preprogrammed into the TcR-alpha beta lineage at an earlier developmental stage. We now show that this late-stage precursor is capable of giving rise to cells of both the TcR-alpha beta and -gamma delta lineages, both in vitro after intrathymic transplantation, and in vitro in simple culture medium or medium with cytokines. Thus it appears that the divergence of TcR-alpha beta and -gamma delta cells can occur at a relatively late stage of intrathymic development, just prior to the onset of CD4 and CD8 expression in most cells.

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Cellular aspects of early T-cell development.

Although the nature of the precursor cells seeding the thymus is still uncertain, their immediate progeny in the adult murine thymus have now been isolated. These lymphoid-restricted, prothymocyte-like cells express CD4, but neither CD4 nor CD8 seem to be involved in the early steps of T-cell development. Cytokines produced by stromal cells are likely to be involved in intrathymic T-cell development, but interleukin-2 and interleukin-4 do not appear to be required. There is still no satisfactory cell-culture model of intrathymic T-cell development. Current culture systems reflect only fragments of the process, or are models of extrathymic developmental pathways.

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Developmental potential of the earliest precursor cells from the adult mouse thymus.

A new, numerically minute population of cells representing the earliest T precursor cells in the adult mouse thymus has recently been isolated. This population has been shown to be similar to bone marrow hemopoietic stem cells in surface antigenic phenotype and to express moderate levels of CD4. We now show, by fluorescence-activated cell sorting and intrathymic transfer to irradiated mice, that this apparently homogeneous population differs from multipotent stem cells in expressing the surface stem cell antigen 2 (Sca-2), that it differs from most early B lineage cells in lacking B220 and class II major histocompatibility complex expression, and that it binds rhodamine 123 like an activated rather than a quiescent cell. Irradiated recipient mice differing at the Ly 5 locus were used to compare the developmental potential of these early intrathymic precursors with bone marrow stem cells. Only T lineage product cells were detected when the intrathymic precursor population was transferred back into an irradiated thymus. However, when the intrathymic precursor population was transferred intravenously, it displayed the capacity to develop into both B and T lymphoid cells in recipient bone marrow, spleen, and lymph nodes, but no donor-derived myeloid cells were detected. The absence of myeloid and erythroid precursor activity was confirmed by showing that the intrathymic precursor population was unable to develop into myeloid or erythroid spleen colonies on intravenous transfer or to form colonies in an agar culture. These findings indicate that this earliest intrathymic precursor population has become restricted (or strongly biased) to lymphoid lineage development, but not exclusively to T lymphocytes.

Agar

The maintenance of lytic specificity during the development of clones of cytotoxic T lymphocytes from single precursor cells.

A high-cloning efficiency, filler cell-free limit-dilution culture system for the growth and differentiation of single cytotoxic T lymphocyte precursors (CTLp) was tested for its ability to maintain the lytic specificity of the resultant clones of cytotoxic T lymphocytes (CTL). The system used non-specific stimulation with phorbyl ester and calcium ionophore, maintenance of growth over the first 6 days of culture with interleukin (IL)-2 and interferon-gamma, and maintenance of growth and differentiation over the last 2 days of culture with IL-2 and IL-6. Under these defined conditions around 50% of all CD4- 8+ T cells developed into CTL clones that were specific in their lytic activity. In contrast, a culture system maintained by irradiated filler cells showed non-specific lysis of both YAC-1 type natural killer targets and of P815 type targets, while a culture system maintained by IL-2 and a crude growth factor preparation showed non-specific lysis of natural killer targets but not of P815. The defined lymphokine culture system was suitable for determining the specificity repertoire of primary CTLp. Using this system, the frequency of reactivity with allogenic tumor targets was found to be approximately one CTLp in 30 for several mouse strain/target cell combinations.

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Cytokine production by mature and immature thymocytes.

We have studied the ability of subpopulations of activated thymocytes to produce four cytokines (IL-2, IL-4, IFN-gamma and TNF-alpha) which are believed to play roles in T cell development. Supernatants from various thymocyte subsets activated with calcium ionophore and PMA were tested for these cytokines. All CD3hi thymocyte subsets (CD4+8-, CD4-8- and CD4-8+) produced high titers of these four cytokines except CD3+4-8+ thymocytes, which did not produce IL-4. In contrast, CD4+8+ thymocytes did not produce any detectable cytokines. CD3-4-8- thymocytes produced IL-2, IFN-gamma, and TNF-alpha (but not IL-4) when activated by calcium ionophore + PMA and IL-1. We then separated CD3-4-8- thymocytes into IL-2R+ and IL-2R-. CD3-4-8-IL-2R+ thymocytes only produced small amounts of IL-2 when activated with calcium ionophore + PMA + IL-1, whereas CD3-4-8-IL-2R- thymocytes did not require IL-1 to produce IL-2, IFN-gamma, and TNF-alpha. Finally, CD4-8+3- thymocytes (an immature population believed to be an intermediate between CD3-4-8- and CD4+8+ thymocytes) only produced marginally detectable levels of IL-2 upon stimulation with calcium ionophore, PMA, and the addition of IL-1 did not result in increased levels of cytokine production. These observations indicate discrete patterns of cytokine production by the subsets studied and suggest specific controls of cytokine gene expression during T cell development.

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The kinetics of T cell antigen receptor expression by subgroups of CD4+8+ thymocytes: delineation of CD4+8+3(2+) thymocytes as post-selection intermediates leading to mature T cells.

Cortical thymocytes from adult mice, separated on the basis of coexpression of CD4 and CD8 or of binding of high levels of peanut agglutinin (PNA), were subdivided according to the level of expression of the T cell receptor (TCR)-CD3 complex. The incidence of dividing cells in the resultant subpopulations was determined by DNA staining. Precursor-product relationships and the timing of TCR-CD3 acquisition were studied using continuous in vivo [3H]TdR labeling and radioautography. The extent of intrathymic selection for TCR specificity in the subpopulations was determined from the incidence of cells bearing V beta 6 or V beta 17a in different mouse strains. The majority of dividing CD4+8+ blast cells expressed extremely low levels of TCR-CD3, indicating that TCR expression and specificity selection generally occurred after division ceased. The [3H]TdR-labeling studies indicated that postdivision TCR expression was rapid, and that those nondividing cortical thymocytes which had not expressed significant levels of TCR by day 1, remained extremely low or negative for their entire 3.6-d lifespan. Small cortical thymocytes which expressed moderate levels of TCR-CD3, were predominantly an unselected population with a lifespan of 3.8 d. A small subgroup of CD4+8+ PNA+ cortical thymocytes expressing high levels of TCR-CD3 was identified as a nondividing intermediate between the small cortical thymocytes expressing moderate levels of TCR and mature medullary thymocytes. These intermediates showed a 1-d lag in [3H]TdR labeling, then a 3.4-d transit time. The cell flux through this intermediate subpopulation was approximately 10(6) cells/d, similar to the rate of turnover of mature thymocytes; thus, although only 3-4% of thymocytes progressed to this intermediate state, once reaching it most then progressed to full maturity. In accordance with this, the incidence of the V beta selection markers within the intermediate subpopulation indicated that both positive and negative selection had already occurred. Selection for TCR specificity in the systems studied appeared to take place among CD4+8+ thymocytes expressing intermediate levels of TCR.

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CD4 expressed on earliest T-lineage precursor cells in the adult murine thymus.

A continuous but low input of stem cells or 'prothymocytes' is necessary to maintain T-cell development in the adult thymus, but the colonizing cell has not been characterized. Precursors of T cells have been found in the minor CD4-8- population of thymocytes, but even the earliest cells of this population already have partially rearranged T-cell antigen receptor (TCR) genes. We now demonstrate that the thymus contains a minute population of lymphoid cells similar in some but not all respects to bone marrow-derived haemopoietic stem cells. This population has TCR genes in a germline state. It gives a slow but extensive reconstitution of both alpha beta and gamma delta lineages on transfer into an irradiated thymus, with kinetics indicating that it includes the earliest intrathymic precursor cells so far isolated. Surprisingly, these cells express low surface levels of the mature T-cell marker CD4.

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Lymphokine requirements for the development of specific cytotoxic T cells from single precursors.

A high cloning efficiency, filler cell-free culture system was developed for the growth of single murine cytotoxic T lymphocyte precursors (CTLp) and their differentiation into cytotoxic T lymphocytes (CTL). The system used nonspecific stimulation with phorbol ester and calcium ionophore in the presence of recombinant lymphokines. The optimal lymphokine combination was interleukin 2 throughout, together with interferon-gamma during the first 6 days and interleukin 6 during the last 2 days of culture. Under these conditions half of all CD4-CD8+ T cells became CTL clones. The CTL were CD4-CD8+CD3+ TcR alpha/beta+ and were derived from CD4-CD8+Pgp-1- precursors.

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Does negative selection involve accumulation of self-reactive thymocytes in thymic rosettes?

Thymic rosettes, the natural associations between thymocytes and either macrophages or dendritic cells, were isolated from the thymus by collagenase digestion and unit-gravity elutriation. Rosettes from mouse strains where either the V beta 6-bearing thymocytes are deleted because of reactivity with products of the Mlsa allele of the minor lymphocyte stimulating locus, or where V beta 17a-bearing thymocytes are deleted because of reactivity with IE class II MHC molecules, were compared with rosettes from appropriate control strains to test if a selective association with stromal cells preceded deletion. Rosettes from an Mlsa-bearing strain were able to stimulate an Mlsa-reactive T-hybridoma, but much of this stimulatory activity was attributable to the few B cells associated with the rosette preparations; the stromal components of the rosettes appeared to be poor presenters of Mlsa gene products. There was no enrichment of thymocytes bearing high or low levels of V beta 6 TcR in the rosettes from the Mlsa-bearing strain, which might have reflected the poor presentation by the stromal cells. However, nor was there detectable selective association of thymocytes bearing C beta 17a in the rosettes from an IE-positive mouse strain. This argues against binding and immobilisation on stromal cells as part of the deletion process, but not against the stromal cells delivering a rapid signal during a transient association, leading later to deletion.

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Flow cytometry and cell-separation procedures.

A series of small incremental advances characterize the year's technical developments in flow cytometry, and these now extend the use of the technique to even the molecular level. The increasing application of immunomagnetic-bead separation procedures dominates the developments in other cell-separation procedures.

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Different subpopulations of developing thymocytes are associated with adherent (macrophage) or nonadherent (dendritic) thymic rosettes.

Thymic rosettes (ROS), structures consisting of thymic lymphoid cells attached to a central stromal cell, were isolated from mouse thymus by collagenase digestion and unit-gravity elutriation. The ROS were then separated into those where the stromal cells were either macrophage-like (M-ROS) or dendritic cell-like (D-ROS), on the basis of the differences in adherence properties or in the level of MAC-1 surface antigen. The ROS were then dissociated and the thymocyte content analyzed by immunofluorescent staining and flow cytometry. M-ROS and D-ROS differed in thymocyte composition, although the major component of both was the CD4+CD8+ cortical thymocyte. D-ROS were enriched in thymocytes expressing high levels of surface T-cell antigen receptor (TcR) and the associated CD3 complex, and these included both CD4+CD8-CD3++ and CD4-CD8+CD3++ mature thymocytes. M-ROS were enriched in CD4-CD8- thymocytes and had a reduced content of thymocytes expressing high TcR-CD3 levels; they nevertheless contained some mature thymocytes, but only of the CD4+CD8-CD3++ category. Several lines of evidence indicated that the mature thymocytes in ROS were cells recently formed in the cortex, and were not from the medullary pool. ROS-associated mature thymocytes expressed lower levels of H-2K than free, mature thymocytes. The CD4+CD8+CD3++ subpopulation, believed to be a developmental intermediate between cortical thymocytes and mature T cells, was present in both ROS populations. Further, late intermediates leading to both mature T-cell categories were evident in D-ROS, but only those leading to CD4+CD8-CD3++ T cells were evident in M-ROS. The results are compatible with a role for ROS in TcR-specificity selection and in the final maturation steps in the thymic cortex.

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Lineage relationships and developmental kinetics of immature thymocytes: CD3, CD4, and CD8 acquisition in vivo and in vitro.

T lymphocytes develop in the thymus from immunologically naive bone marrow precursors. Based on T cell receptor rearrangement and transcription, and thymic reconstitution potential, we have deduced a developmental sequence among immature thymocytes, before the acquisition of the lineage markers CD3, CD4, and CD8. In the current study, we have followed the ontogenic progression of the latter stages in this sequence, using two different systems: (a) in vivo, by direct injection into the thymus of nonirradiated, congenic recipients; and (b) in vitro, using culture medium without mitogens or cytokines. In vivo, the less mature Pgp-1- interleukin 2 receptor alpha-positive (IL-2R alpha+) CD3-4-8- subset (also heat-stable antigen high) requires 3 d before becoming predominantly IL-2R alpha- CD3lo4+ 8+ typical cortical-type cells, and at least 5 d before the appearance of any mature single-positive cells (CD3hi4+ 8- or CD3hi4-8+). However, these Pgp-1- IL-2R alpha+ precursors do not differentiate further in unstimulated culture. The more mature Pgp-1- IL-2R alpha- CD3-4-8- subset becomes primarily CD3lo4+ 8+ within 1 d after transplantation, and some mature single-positive progeny are evident by day 3. By 5 d, most of these Pgp-1-IL-2R alpha- precursor cells have become CD3hi, and have lost or are downregulating either CD4 or CD8. In culture, these Pgp-1- IL-2R alpha- cells also acquire high levels of CD4 and CD8 within 1 d, and low levels of CD3 by 2 d. However, they do not progress further to mature single positives in vitro, and most of them die by day 3. These experiments directly confirm our previously proposed developmental sequence, and demonstrate the kinetics of T lymphocyte production in a low-stress, steady-state environment.

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Development of immature thymocytes: initiation of CD3, CD4, and CD8 acquisition parallels down-regulation of the interleukin 2 receptor alpha chain.

We have previously identified a developmental sequence among immature thymocytes, prior to their expression of the lineage markers CD3, CD4, and CD8. This sequence is marked by transient expression of the interleukin 2 receptor alpha chain (IL 2R alpha). The most mature cells in this sequence (surface phenotype heat-stable antigen (HSA)++ Pgp-1- IL 2R alpha-) are the immediate precursors to CD4+CD8+ small cortical thymocytes, and have by definition been considered to be CD4-CD8-. We now show that these cells display low levels of surface CD4 and CD8, but not CD3. This low-level expression begins to appear immediately after the loss of IL 2R alpha expression. Northern blot analysis for mRNA expression confirms that these IL 2R alpha- cells are transcribing CD4 and CD8 mRNA, in contrast to their immediate (IL 2R alpha+) precursor. Upon unstimulated culture, these IL 2R alpha- cells gradually acquire high levels of CD4 and CD8, as well as low levels of CD3, whereas IL 2R alpha+ cells do not. These findings suggest that the IL 2R alpha+ subset is the end of the true CD3-CD4-CD8- phase, and that the intracellular signals for CD3, CD4, and CD8 acquisition occur simultaneously with, or immediately prior to, the signal for down-regulation of IL 2R alpha.

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Kinetics of mature T-cell development in the thymus.

We have reexamined the balance between cell birth, cell maturation, and cell death in the thymus by labeling dividing thymocytes and their progeny in vivo with [3H]-thymidine, isolating clearly defined subpopulations by fluorescence-activated cell sorting, and determining the distribution of label by autoradiography. When mature thymocytes were precisely defined (as CD4+CD8- CD3+ or CD4-CD8+ CD3+) and separated from immature single positives (CD4+CD8- CD3- and CD4-CD8+ CD3-), a lag was observed in the rate of entry of [3H]thymidine into mature cells. Thus, many of the mature thymocytes appear to derive from a small nondividing cortical thymocyte pool, rather than originating directly from the earliest dividing CD4+CD8+ blasts. There was little evidence for cell division during or after mature thymocyte formation, suggesting a one-for-one differentiation from cortical cells rather than selective clonal expansion. The rate of production of mature single positive thymocytes agreed closely with estimates of the rate of export of mature T cells from the thymus and was only 3% of the rate of production of double-positive cortical thymocytes. This was compatible with a stringent selection process and extensive intrathymic cell death and suggested that no extensive negative selection occurred after the mature cells were formed.

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Ontogeny of a novel CD4+CD8-CD3- thymocyte subpopulation: a comparison with CD4- CD8+ CD3- thymocytes.

We have studied the ontogeny of a novel thymocyte subset, CD4+CD8-CD3-. Three-colour flow cytometric analysis demonstrated that these cells constituted approximately 1% of the total thymocyte content in adult CBA mice, and were not present in lymph nodes. They were mainly blastic, cortisone-sensitive, and localized in the outer thymic cortex. During foetal life they were first observed at day 15 and reached a maximum (6%) at day 17, beyond which they decreased to the adult level. This kinetic profile was similar to that of the CD4-CD8+CD3- subpopulation, except that the CD4+CD8-CD3- cells appeared slightly earlier and their percentage was lower. Both these populations appeared after the CD4-CD8-CD3- cells but before the CD4+CD8+CD3- cells. Similar observations were made during thymic reconstitution following dexamethasone treatment. In this case, both CD4+CD8-CD3- and CD4-CD8+CD3- thymocytes disappeared 48 h after the treatment. While their absolute number increased up to 14 days post-treatment, their percentage was maximal at day 7 post-treatment and returned to normal values by day 10 post-treatment. These results argue strongly that not only the CD4-CD8+CD3- population but also the CD4+CD8-CD3- population can be considered an intermediate precursor in CBA thymuses.

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