PubMed HealthSearch

Biomedical subjects

K Shortman

Publications and source records attributed to K Shortman.

At least 37 records · Page 2Linked to original sources

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.

Animals

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.

Animals

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.

Animals

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.

Animals

The kinetics of immature murine thymocyte development in vivo.

The dynamics of cell generation and turnover in the young adult murine thymus has been studied by in vivo administration of [6-3H]deoxythymidine, isolation of thymocyte subpopulations by negative depletion and cell sorting procedures, and assessment of dividing cells and their products by autoradiography. The flow of label through subpopulations of CD4-CD8- thymocytes defined by the markers heat stable antigen (HSA), phagocyte glycoprotein 1 (Pgp-1), interleukin 2 receptor (p55) (IL-2R), and CD3 was determined, to check the developmental sequence deduced from intrathymic transfer and molecular approaches. In addition, the flow of label 'downstream' into the CD4+CD8+ cortical populations was followed to check if cells expressing CD8 alone were obligatory intermediates. The main findings were: (i) support for the following sequence within the CD4-CD8- group: HSA++Pgp-1+IL-2R(-)----HSA++Pgp-1-IL-2R(+)----HSA++Pgp-1-IL- 2R-; (ii) the majority of cell generation and cell turnover within the CD4-CD8- population was due to the HSA++IL-2R-Pgp-1- subpopulation; (iii) the rate of cell output from the proposed intermediate CD3-CD4-CD8+ subpopulation was equivalent to only 55% of the cell output from its proposed precursor, the most mature CD4-CD8- subpopulation, suggesting that many double negatives differentiate directly (or via CD3-CD4+CD8- intermediates) into double positives; and (iv) the CD4-CD8-HSA- (and CD3+) thymic subpopulation contained very few cycling cells and turned over extremely slowly, indicating that these slowly accumulating product cells are off the mainstream of T cell development.

Animals

Clonal repertoire analysis of murine B cells specific for repeat sequence antigens of Plasmodium falciparum.

Clonal analysis of the murine B-cell repertoire has been used to investigate the possible role of tandem repeat sequence epitopes of Plasmodium falciparum in immune evasion. A limiting dilution culture system was used whereby murine spleen cells were stimulated with the B-cell mitogen lipopolysaccharide (LPS) in the presence of 3T3 fibroblast filler cells. One in three B cells were shown to produce clones secreting immunoglobulin measurable by an ELISA. The frequency of antibody forming cell precursors (AFCp) specific for the 3' repeat epitopes of the ring injected erythrocyte surface antigen (RESA) was estimated in non-primed mice and found to be low. However, an accurate frequency determination was not possible using this method since the detection of the few positive cultures was found to depend on the presence of more than one AFCp or its products. Limiting dilution analysis was used to assess the frequency and repertoire of splenic AFCp at various times after immunization with a synthetic peptide of the RESA 3' repeat epitope (8 x 4-mer), presented in various ways. There was no marked increase in LPS-responsive AFCp specific for this antigen at the level of either IgM or IgG secretion. This was in marked contrast to the antibody response in vivo, where moderate IgG antibody titres, normally indicative of a secondary response, were seen in the serum of the same mice used for AFCp assay. This discrepancy between serum titre and AFCp frequency following immunization was not apparent with a non-malarial antigen, keyhole limpet haemocyanin (KLH). It was concluded that the LPS-stimulated limiting dilution culture system was not registering RESA-specific memory AFCp. These results raise the possibility that the malarial antigens are deficient in memory B-cell generation, or that secondary responses to these determinants may arise from a distinct B-cell progenitor which is non-responsive to LPS in vitro.

Adjuvants, Immunologic

The generation and fate of thymocytes.

In the adult thymus the majority of thymocytes are at a non-proliferating end stage, during which 3% of all CD4+CD8+ cortical thymocytes are selected on the basis of appropriate T-cell antigen-receptor (TcR) specificity to become CD4-CD8+ or CD4+CD8- mature thymocytes. The selected mature cells gradually emigrate to the periphery. The 97% unselected, or positively rejected, CD4+CD8+ thymocytes die in the thymus. This 3-day end stage is, however, the product of around 2 weeks of proliferation by less mature thymocytes, which gives about a 10(5)-fold expansion from the hundred prothymocytes estimated to seed the thymus each day. Rearrangement and expression of TcR genes and a sequence of changes in surface antigens occurs during this prolonged period. Two sequential waves of expansion and differentiation appear to be involved. The first, about 1 week long, involves the less than 0.1% of thymocytes which still resemble the prothymocyte; this leads via a non-dividing interval to the second 1-week stage involving the 3% of CD4-CD8- thymocytes and then the CD4+CD8+ blasts.

Animals

IL-2 and IFN-gamma are two necessary lymphokines in the development of cytolytic T cells.

A filler cell-free limiting-dilution microculture system has been developed for the expansion and differentiation of a high proportion of single CD4-CD8+ T cells into cytolytic T cell (CTL) clones. The stimulus used was PMA together with the calcium ionophore ionomycin. The growth and differentiation factors were rIL-2, together with either a Con A-stimulated spleen cell supernatant (CAS) or rIFN-gamma. CTL activity was monitored by an autoradiographic 111In-release assay. With CAS and rIL-2 present, 50% of all potential precursors (CTL-p) produced cytolytic clones. Substitution of rIFN-gamma for CAS gave a similar efficiency with up to 42% of CTL-p producing cytolytic clones. rIL-2 alone allowed only a small proportion (6%) of CD4-CD8+ T cells to become cytolytic clones. Addition of rIL-2 and rIFN-gamma at various stages of the culture demonstrated that IL-2 was required throughout, but exogenous IFN-gamma was required only during the early stages. It is concluded that for at least 40% of all CTL-p, the lymphokines IL-2 and IFN-gamma are essential and act in synergy to induce proliferation and differentiation into CTL.

Animals

Definition of the thymic generative lineage by selective expression of high molecular weight isoforms of CD45 (T200).

Selective expression of CD45 isoforms distinguishes naive and memory T cells in peripheral blood. Paradoxically, although the most recent thymic emigrants are CD45R+ CD45 p180-, the majority of thymocytes are CD45 p180+. Speculating that the small subset of thymocytes selectively expressing only the high molecular weight isoforms of CD45 constitute the thymic generative lineage giving rise to peripheral T cells, we characterized the phenotypic and functional properties of CD45 p180- thymocytes. All cells bearing CD45 p180 were removed by rigorous depletion or all CD45R+ thymocytes were removed in a parallel depletion. CD45R- thymocytes were essentially the same in phenotype and CD4/CD8 subset distribution as unfractionated thymus, and dissimilar to naive peripheral blood lymphocyte (PBL) T cells. In contrast, CD45 p180- thymocytes, mainly CD45R+, were CD1- CD38- pgp 1+, corresponding closely to the phenotype of naive CD45R+ PBL T cells. This subset is enriched in CD4+ or CD8+ single positives, includes a high proportion of CD4-8- thymocytes which are predominantly CD3-, and appears to have a medullary location. Approximately 40%-50% of CD45 p180- thymocytes expressed a high density of CDw29 (4B4), which in the periphery is expressed at high density only on CD45 p180+ memory T cells and at low density on CD45R+ naive T cells. However, the expression of high density CDw29 in the absence of CD45 p180 indicates a close resemblance to fetal lymphocytes and suggests an essential role for CDw29 in both the least and the most mature of T cells. If CD45 p180- thymocytes constitute the generative lineage and CD45 p180+ cells are commited to intrathymic death, then the CD45 p180- subset should have enhanced proliferative potential. By combining depletion methods with a limiting dilution assay for clonogenic potential, we found that 100% of the clonogenic precursors present in unfractionated thymus were CD45R+ CD45 p180- cells. This indicates that the CD45 p180+ majority of thymocytes has a very limited capability for proliferation consistent with a commitment to intrathymic death. The clonogenic potential of CD45 p180- thymocytes indicates a greater functional resemblance to PBL T cells than to CD45 p180+ thymocytes. In so far as clonogenic potential in vitro reflects generative potential in vivo, expression of high molecular weight CD45 isoforms appears to define the generative thymic lineage. Our working hypothesis proposes that expression of CD45 p180 implements the mechanism for eliminating thymocytes with self-reactive receptor specificities.

Antigens, Differentiation

Nature of the thymocytes associated with dendritic cells and macrophages in thymic rosettes.

Thymic rosettes, structures consisting of 3-30 thymic lymphoid cells attached to a central macrophage or dendritic cell, were released from mouse thymus tissue by collagenase digestion. They were shown to be preexistent structures within the thymus, but to be subject to extensive exchange with free thymocytes under certain conditions. An isolation procedure was developed, using a new technique of zonal unit-gravity elutriation, which minimized exchange and produced a completely pure sample of the larger rosettes. The rosette-associated thymocytes were analyzed by two- and three-color immunofluorescent staining and flow cytometry. The dominant cell type was a small, CD4+CD8+, cortical-type thymocyte. However, all of the established thymus subpopulations defined by CD4 and CD8, including CD4-CD8+ and CD4+CD8- mature thymocytes and CD4-CD8- early thymocytes, were also present in rosettes. Very few of the cells present were of an intermediate or transitional phenotype. Rosette-associated thymocytes were somewhat enriched in large dividing thymocytes, in CD4-CD8- thymocytes, and in mature thymocytes expressing the T-cell antigen receptor-CD3 complex. Their most striking characteristic was a marked depletion in small thymocytes lacking surface H-2K expression, a major population among free thymocytes. The physiological role of the rosette structure is discussed, and it is suggested that the heterogeneity of the associated thymocytes in part reflects the existence of different types of rosettes in different areas of the thymus.

Animals

A murine early thymocyte developmental sequence is marked by transient expression of the interleukin 2 receptor.

Precursors of all T-lineage cells are found in the population of thymocytes that lacks the CD4 and CD8 surface markers. These "double-negative" thymocytes are heterogeneous and can be divided into discrete subpopulations based on their expression of other surface markers. We have determined the relative maturity of these subpopulations based on the extent of rearrangement and expression of their T-cell receptor genes, their cell cycle status, and their thymus reconstitution capacity. Within the subpopulation of double negatives expressing high levels of the heat-stable antigen, the additional markers phagocytic glycoprotein 1 (Pgp-1) and interleukin 2 receptor (IL-2R) can be used to define the sequence IL-2R- Pgp-1+----IL-2R+ Pgp-1-----IL-2R- Pgp-1-, which occurs before the expression of CD4 and CD8. Transient expression of the IL-2R marks an important developmental point in the sequence just prior to a burst of cell proliferation and a loss of thymus reconstitution ability. The earliest cells in this sequence are already partially rearranged for genes in the C beta 1 region. IL-2R expression marks a second wave of T-cell antigen receptor of beta-chain gene rearrangement and the initiation of T-cell antigen receptor alpha- and beta-chain gene expression.

Animals

The acquisition of CD4 and CD8 during the differentiation of early thymocytes in short-term culture.

Subpopulations of thymocytes known to represent early stages of T cell development were isolated from the adult mouse thymus, and their ability to differentiate during short periods of culture was assessed by their acquisition of surface CD4 and CD8. Virtually all cells of the most mature of the CD4-CD8- thymocyte subpopulations (other surface markers CD3- HSA++ IL-2R-Pgp-1-) and of the immature CD4-CD8+ thymocyte subpopulation (other surface markers also CD3- HSA++ IL-2R- Pgp-1-) became CD4+CD8+ in less than 1 day of culture without added stimuli or growth factors. This suggested they had already received signals initiating CD4 and CD8 acquisition. However, stimulation of these precursor cells with phorbyl ester and ionomycin prevented this acquisition of CD4 and CD8. No distinct CD4-CD8+ intermediate was detected as the CD4-CD8- cells became CD4+CD8+ in the non-stimulated cultures, thus questioning the assumption that these three groups of cells are sequential steps in one lineage. In contrast to this pre-programmed acquisition of CD4 and CD8, the less mature CD4-CD8- IL-2R+ subpopulation did not progress to the CD4+CD8+ stage in culture, although it is able to develop further on intrathymic transfer. It is likely that this subpopulation represents a control point requiring specific differentiation signals for further development.

Animals

T cell antigen receptor expression by subsets of Ly-2-L3T4- (CD8-CD4-) thymocytes.

The V beta 8-specific mAb F23.1 and KJ16 were used as fluorescent stains to test for TCR expression on the surface of subpopulations of early, CD4-CD8- (L3T4-Ly-2-) thymocytes from adult CBA mice. A surprisingly high proportion (27%) of Ly-2-L3T4- thymocytes were strongly F23.1 and KJ16 positive. No positive cells were detected among Ly-2-L3T4- thymocytes from V beta 8-negative SJL mice. In contrast to the adult thymus, Ly-2-L3T4- cells from embryonic CBA thymus lacked F23.1-positive cells. Subsets of adult CBA Ly-2-L3T4- thymocytes were separated to determine which expressed V beta 8. The major subset, Ly-1 low B2A2-M1/69+Thy-1+Pgp-1-, representing a phenotype similar to embryonic Ly-2-L3T4- thymocytes and the phenotype commonly isolated from adult thymocytes as Ly-1 "dull," lacked cells strongly positive for F23.1. In contrast, a series of subsets of adult CBA Ly-2-L3T4- thymocytes which were B2A2-M1/69- and Pgp-1+ all included strongly F23.1-positive cells. A minor subset, negative for most markers except Pgp-1 and presumed on the basis of this phenotype and some reconstitution studies to include the earliest intrathymic precursors, contained 28% F23.1-positive cells. However, no F.23.1-positive cells were detected in equivalent "prethymic" populations from bone marrow or from athymic mouse spleen. The subsets of Ly-2-L3T4- thymocytes which were Ly-1 high, B2A2-M1/69-, and Pgp-1+ all contained about 70% F23.1-positive cells, indicating a V beta 8 usage much higher than the mature T cell average. These results indicate that a series of distinct developmental events have occurred within these CD4-CD8- thymocytes previously considered as a single group of early precursor cells, and that some aspects of repertoire selection may be occurring amongst thymocytes which lack CD4 or CD8.

Aging

Subpopulations of early thymocytes. A cross-correlation flow cytometric analysis of adult mouse Ly-2-L3T4-(CD8-CD4-) thymocytes using eight different surface markers.

Putative early thymocytes, the Ly-2-L3T4-(CD8-CD4-) cells representing 3 to 4% of adult CBA mouse thymic lymphocytes, were isolated in high purity (99.5%). They were then stained by using mAb and analyzed by flow cytometry for the expression of six additional surface antigenic markers. Cross-correlation of the data obtained from a complete series of successive two-parameter analyses revealed the existence of about 11 discrete subsets, falling into four-main groups, within the Ly-2-L3T4- population. All subsets consisted of relatively large lymphoid cells. The most numerous group of Ly-2-L3T4- cells was Ly-1 low B2A2-M1/69 high Thy-1 high Pgp-1 low and by these markers resembled Ly-2+L3T4+ cortical blasts. Many of the cells in this group were positive for the IL-2R and/or for MEL-14. A second major group of Ly-2-L3T4- cells was Ly-1 high B2A2-M1/69 low Pgp-1 high, and resembled in some respects activated mature T cells. This group had previously been shown to be absent from the embryonic thymus. The group could be divided into Thy-1 high and Thy-1 low subsets. None of the cells in this group were positive for the IL-2R and very few expressed MEL-14. A third group, 13% of the Ly-2-L3T4- population, was Ly-1 low B2A2-M1/69 low Pgp-1 high, and could also be divided into Thy-1 high and Thy-1 low subsets. A final minor group, 9% of the Ly-2-L3T4- population, was Ly-1 high B2A2-M1/69 high Pgp-1 low Thy-1 high. The particular pattern of markers on these subsets, combined with subsequent information on their properties, makes it unlikely that they all represent sequential steps in one continuous developmental stream, and indicates that complex developmental steps have occurred, even at this supposedly early stage of T cell differentiation.

Aging

Subpopulations of CD4- CD8- murine thymocytes: differences in proliferation rate in vivo and proliferative responses in vitro.

Cell sorting and cytotoxic depletion procedures were used to subdivide the population of CD4- CD8- ("double-negative") thymocytes from adult CBA mice on the basis of expression of Ly-1, HSA (the "heat-stable antigen" M1/69 or B2A2), Pgp-1 glycoprotein, Thy-1, MEL-14 and the PC61 antigenic determinant on the IL2 receptor (IL2R). The level of dividing cells within these subsets was assessed by brief in vivo administration of [3H]-thymidine, followed by radioautography, or by flow cytometric cell cycle analysis after DNA staining. The capacity of the subsets to proliferate in culture, in response to stimulation with concanavalin A (Con A), or with phorbol myristate acetate (PMA) and the calcium ionophore ionomycin, was assessed in high cloning efficiency single-cell culture systems. In general, the proliferative response in culture was inversely related to the rate of cell division in vivo. Response of the double-negative subsets to Con A correlated with expression of the T cell antigen receptor complex; although a high cloning efficiency was obtained from the receptor-positive fractions, very few of the clones were cytotoxic. In particular, a major Ly-1+ HSA- Pgp-1+ double-negative subset, as well as minor Ly-1- HSA- Pgp-1+ subsets, contained very few cells in cycle in vivo, but showed a high cloning efficiency in both culture systems. Conversely, the other major double-negative subset, Ly-1- HSA+ Pgp-1-, included most of the cells in cycle, but showed a reduced cloning efficiency in response to PMA and ionomycin and failed to respond to Con A. The dividing cells within the Ly-1- HSA+ Pgp-1- group were strongly enriched in the IL2R- rather than in the IL2R+ subset, suggesting IL2 was not the growth factor maintaining their proliferation in vivo.

Animals

Immature CD4- CD8+ murine thymocytes.

Mature thymocytes are usually defined and separated from other less mature thymocytes on the basis of their mutually exclusive expression of either CD4 or CD8. However, such murine "single positives" include a subpopulation of immature cells with properties resembling CD4- CD8- thymocytes or CD4+ CD8+ cortical blasts. Most of these immature single positives are CD4- CD8+, some expressing relatively low levels of CD8. They are large, dividing cortisone-sensitive cells found in the outer cortex. They express high levels of the heat-stable antigen (recognized by the monoclonals M1/69, B2A2, and J11d) but they are MEL-14-. The absence of detectable surface CD3, the absence of alpha-chain messenger RNA, and the predominance of the truncated form of the beta-chain messenger RNA all indicate that they do not express the T-cell antigen-receptor complex. Strategies for eliminating such immature cells from preparations of mature thymocytes are given, and their developmental significance is discussed.

Animals

Subpopulations of mature murine thymocytes: properties of CD4-CD8+ and CD4+CD8- thymocytes lacking the heat-stable antigen.

The heat-stable antigen (HSA), recognized by the monoclonal antibodies M1/69, B2A2, and J11d, is low or absent on the surface of most murine peripheral T cells but present on all but 3% of thymocytes. The CD4-CD8+ and CD4+CD8- or "single positive" thymic populations may be divided into further subgroups based on surface HSA expression. One group, CD4-CD8+ and expressing very high levels of HSA (HSA++), is an immature, T cell antigen receptor (TcR) negative, outer cortical blast cell. However, a further subdivision of CD4-CD8+ and CD4+CD8- single positives may be made, into those negative to low for HSA (HSA-) and those expressing moderate amounts of HSA (HSA+). The proportion of HSA- single positives is low in the thymus of young mice, whereas the proportion of HSA+ single positives is similar to that of the adult. Both the HSA- and the HSA+ subsets of single positive thymocytes from adult mice are CD3+ and express the normal peripheral T cell incidence of V beta 8 determinants on the TcR. On stimulation with concanavalin A in limit-dilution culture both HSA- and HSA+ subsets of single positive thymocytes give a high frequency of proliferating clones, and the clones from both HSA- and HSA+ subsets of CD4-CD8+ thymocytes are cytotoxic. Thus both HSA- and HSA+ single positive thymocytes are functionally mature. The HSA- subsets of single positive thymocytes differ from the HSA+ subsets in being slightly larger in size, in expressing higher levels of MEL-14, in binding more peanut agglutinin, and in including a proportion of cells expressing high levels of the Pgp-1 glycoprotein. It is suggested that HSA- CD4-CD8+ and HSA- CD4+CD8- thymocytes are more mature than their HSA+ counterparts, and might represent a previously activated or "memory" thymic subpopulation.

Animals