PubMed HealthSearch

Biomedical subjects

P G Holt

Publications and source records attributed to P G Holt.

At least 19 recordsLinked to original sources

Genetic 'risk' for atopy is associated with delayed postnatal maturation of T-cell competence.

Recent in vitro studies suggest that IgE production in adults is co-ordinately regulated by negative signals from gamma IFN-producing CD4+ T-helper-1 (TH-1) and positive signals from IL-4 producing (TH-2) T-cells. Additionally, seroepidemiological evidence has pinpointed infancy as the period of maximum lifetime risk for T-cell sensitization to ubiquitous environmental antigens. The present study sought to elucidate the relationship between these observations, by examination of CD4+ T-cell function in normal children and those genetically at 'high risk' for atopy, spanning the age range (up to 4 years) in which IgE responses to environmental allergens is typically manifest. Immunocompetent T-cell precursor frequencies (determined by cloning at limiting dilution) were markedly reduced in 'high risk' children relative to normals (0.53 +/- 0.29 vs 0.26 +/- 0.19; P = 0.0025). Consistent with reports from other laboratories employing bulk T-cell culture techniques, the gamma IFN producing capacity of CD4+ T-cell clones from both groups of children were markedly reduced relative to adults, and was lowest in the high risk group (P < 0.02). IL-4 production by CD4+ T-cell clones from the normal children was within the adult range, but again was significantly lower in the high risk group (P < 0.00005). This indicates that initial immune responses to environmental allergens in early childhood occur against a background of maturational 'deficiency' in CD4+ T-cell function, and suggests the possibility that variations in the rate of postnatal maturation of T-cell competence may be a contributing factor in the development of differing patterns of immunological responsiveness to environmental allergens.

Adult

Regulation of IgE production in pre-sensitized animals: in vivo elimination of alveolar macrophages preferentially increases IgE responses to inhaled allergen.

Intratracheal inoculation of dichloromethylene diphosphonate encapsulated in liposomes leads to the rapid accumulation of this drug in alveolar macrophage (AM) phagolysosomes, and the death of the majority of these cells over the ensuing 24-48 hr. The technique is highly selective for phagocytes and has no detectable side-effects on other cells in the lung. The present experiments demonstrate that following AM depletion, pre-sensitized animals respond to aerosol challenge via secondary serum IgE (but not IgG) responses, and the accumulation of large numbers of allergen-specific and non-specific antibody forming cells in respiratory tract regional lymph nodes and in lung and airway tissues; the latter comprise both IgE and IgG plasma cells, which were detected in the approximate ratio of 2.5:1. Moreover, aerosol challenged AM-depleted animals develop large mononuclear cell infiltrates in the lung and airways, which includes a substantial CD4+ T-cell component. These results suggest a major role for AM in regulating the magnitude of secondary IgE responses to inhaled allergen.

Administration, Inhalation

The distribution of IgE plasma cells in lymphoid and non-lymphoid tissues of high-IgE responder rats: differential localization of antigen-specific and 'bystander' components of the IgE response to inhaled antigen.

Repeated exposure of high-IgE responder rats to antigen-containing aerosols stimulates IgE responses which last for several weeks, and are eventually terminated with the onset of immunological tolerance. Studies on the distribution of total and antigen-specific IgE plasma cells and IgE mRNA during antibody production, identified the lymph nodes draining the lower respiratory tract as the primary site for initiation of the IgE response to inhaled antigen; subsequently the response seeded to mucosa-associated lymph nodes but not to central lymphoid organs. A vigorous 'bystander' IgE response (approx. x 10 the specific response) was also observed, but this was restricted to areas directly draining sites of deposition of inhaled antigen, including non-lymphoid respiratory mucosal tissues. Despite the rapid termination of the specific IgE response after the fourth week of exposure, the bystander component persisted. These results are discussed in relation to the role of cognate/non-cognate T-B interactions in the IgE response to inhaled antigens, and the relative susceptibility of each component to T-cell regulation in vivo.

Aerosols

A clonal analysis of lung T cells derived by bronchoalveolar lavage of healthy individuals.

The characteristics of the T-cell population in the healthy human lung have been investigated by analysing the properties of T-cell clones derived from bronchoalveolar lavage (BAL) samples and comparing them with T cells cloned from the blood of the same individuals. The proportions of CD4+ and CD8+ T cells in the starting populations from BAL and blood were similar although only 14% of BAL T cells were CD45RA+ compared to 70% of blood T cells. The precursor frequency of T-cell clones derived from BAL was less than from blood. The cytokine profiles [after phytohaemagglutinin (PHA) stimulation] of the clones derived from both sources were markedly different and these differences lay in the CD4+ population. BAL-derived CD4+ clones produced interferon-gamma (IFN-gamma) more frequently than did those from blood while blood-derived clones were more likely to produce interleukin-2 (IL-2) than those from BAL. IL-4 was produced by the majority of BAL- or blood-derived clones (93% and 88% respectively) either along with IFN-gamma (BAL) or IL-2 (blood). The cytokine profiles of BAL-derived T-cell clones are consistent with those derived from lung interstitium and suggest that the BAL T-cell populations reflect those in the lung wall. Whether the unique properties of lung T cells are acquired after leaving the blood or whether there is selective entry of T-cell subpopulations into the lung remains to be determined.

Adult

Class II major histocompatibility complex (Ia) antigen-bearing dendritic cells within the iris and ciliary body of the rat eye: distribution, phenotype and relation to retinal microglia.

The density, distribution and surface phenotype of dendritic cells (DC) and macrophage populations within the ciliary body and iris of Wistar Furth rats were studied by a combination of flat mounting, tangential sectioning, pre-embedding fixation, with a single and double immunohistochemical techniques. Monoclonal antibodies included anti-Ia (OX6) and other dendritic cell/macrophage (ED1 and ED8) or mature tissue macrophage markers (ED2). Single and double staining revealed a network (approximately 400 cells/mm2) of Ia+ cells within the epithelium of the ciliary processes with the morphological and surface phenotypic characteristics of DC populations in other tissues. A minor proportion of DC co-expressed ED1 and ED8, but not ED2. In contrast the immunopositive cells in the lamina propria displayed a more generalized phenotype, including ED2 expression, and pleiomorphic morphology suggesting a preponderance of cells of macrophage lineage. Flat mounts of iris revealed a remarkably regular network of Ia+ DC at a density of 450 cells/mm2. The network of DC in the ciliary epithelium terminated at the cilioretinal junction where they formed a continuous syncytium with retinal microglia which did not display Ia staining. The demonstration of networks of cells with relevant morphological and phenotypical properties of professional antigen-presenting cells at strategic locations within the eye has important implications in relation to ocular immune regulation and on the theories of the mechanism of anterior chamber-associated immune deviation (ACAID). Namely, until now it has been assumed that 'immune privilege' in the anterior chamber of the eye is partly a consequence of there being a paucity of class II+ cells in the surrounding tissues. Dendritic cells in the eye may function as antigen-presenting cells, sampling endogenous and exogenous intraocular antigens and possibly migrating from the eye to draining lymphoid organs (the spleen) where they may generate systemic immune responses. Equally dendritic cells could potentially regulate local immune responses for example in various forms of autoimmune uveoretinal inflammatory disease.

Animals

Studies on the surface phenotype and functions of dendritic cells in parenchymal lung tissue of the rat.

Immunohistochemical analysis of frozen sections of rat lung tissue identified a widely distributed population of highly pleiomorphic Ia+ cells in alveolar septal walls, which are negative for the pan-macrophage marker ED4 and the related markers ED1, ED2 and ED9. Semi-purified dendritic cells (DC) prepared from lungs of rats exposed to an aerosol of ovalbumin (OA) triggered modest levels of proliferation of OA-immune T cells in vitro, demonstrating the potential of these cells in surveillance for inhaled antigens in vivo. Lung wall also exhibited modest stimulatory activity in mixed lymphocyte/leucocyte reaction (MLR) assays. Overnight incubation of the DC in T-cell culture supernatant markedly increased their T-cell stimulatory properties, concomitant with increased expression of Ia. These results suggest that analogous to epidermal Langerhans' cells, lung wall DC can effectively bind inhaled antigens in situ, but require additional maturation/activation signals before they can efficiently present the antigen to T cells.

Animals

Postnatal maturation of mast cell subpopulations in the rat respiratory tract.

The distribution and enumeration of mast cell subpopulations within the respiratory tract of a high- and low-Ige responder rat strain was determined during postnatal development. Mast cells were identified in adjacent sections by the alcian blue (AB)/safranin (SAF) staining sequence, or using immunoperoxidase to detect the rat mast cell proteinases I (RMCPI) or II (RMCPII). At birth both mucosal mast cells (MMC) and connective tissue mast cells (CTMC) were represented in very low numbers at distinct locations throughout the respiratory tract. The total number of mast cells increased with age. MMC (AB+/RMCPII+ mast cells) were the predominant phenotype in the epithelium and lamina propria of the trachea and the major conducting airways of the lung in all age groups. In contrast, CTMC (AB+/RPMCPI+ and SAF+/RMCPI+ mast cells) predominated in the submucosa of the trachea and major conducting airways as well as in the parenchyma and visceral pleura of the peripheral lung. Both phenotypes co-exist in similar proportions in peribronchial adventitial tissue and adventitia surrounding large blood vessels in neonates as well as adults. In rats the tracheal epithelium is densely populated by MMC from around the time of weaning (3 weeks) and a small but generalized increase in the number of MMC at all sites within the respiratory tract is noted from this time. This increase in MMC frequency in tissue sections with increasing age is mirrored by the levels of circulating serum RMCPII. The number of bone marrow-derived MMC also increased with increasing age prior to weaning, with a significant drop (P less than 0.01) at 4 weeks of age before returning to the peak numbers in 3-week-old rats. The high-IgE responder Brown Norwegian (BN) rat strain constitutively produces significantly more IgE than the low-IgE responder White albino Glaxo (WAG) strain (P less than 0.001) at all ages studied. In contrast, only minor differences between the number and distribution of mast cells in the two strains were observed.

Aging

Studies on the density, distribution, and surface phenotype of intraepithelial class II major histocompatibility complex antigen (Ia)-bearing dendritic cells (DC) in the conducting airways.

Conventional immunohistochemical analysis of airway intraepithelial class II major histocompatibility complex (Ia) expression demonstrates a morphologically heterogeneous pattern of staining, suggestive of the presence of a mixed population of endogenous antigen presenting cells. Employing a novel tissue sectioning technique in conjunction with optimal surface antigen fixation, we now demonstrate that virtually all intraepithelial Ia staining throughout the respiratory tree in the normal rat, can be accounted for by a network of cells with classical dendritic cell (DC) morphology. The density of DC varies from 600-800 per mm2 epithelial surface in the large airways, to 75 per mm2 in the epithelium of the small airways of the peripheral lung. All the airway DC costain for CD4, with low-moderate expression of a variety of other leukocyte surface markers. Both chronic (eosinophilic) inflammation and acute (neutrophilic) inflammation, caused respectively by inhalation of chemical irritants in dust or aerosolised bacterial lipopolysaccharide (LPS), are shown to be accompanied by increased intraepithelial DC density in the large airways (in the order of 50%) and up to threefold increased expression of activation markers, including the beta chain of CD11/18. The kinetics of the changes in the DC network in response to LPS mirrored those of the transient neutrophil influx, suggesting that airway intraepithelial DC constitute a dynamic population which is rapidly upregulated in response to local inflammation. These findings have important theoretical implications for research on T cell activation in the context of allergic and infectious diseases in the respiratory tract.

Animals

Regulation of immune response to inhaled antigen by alveolar macrophages: differential effects of in vivo alveolar macrophage elimination on the induction of tolerance vs. immunity.

A single intratracheal instillation of liposomes containing dichloro methylene diphosphonate into rats eliminated greater than 80% of the alveolar macrophage (AM phi) population, and the population was not significantly renewed during the ensuing week. AM phi depletion markedly increased local antibody production in the lung wall in pre-primed animals exposed to antigen aerosols. However, AM phi depletion did not affect the normal development of protective tolerance (particularly in the IgE antibody class) to inhaled antigen in immunologically naive rats. These results are discussed in relation to regional control of immune responses in the upper vs. the lower respiratory tract.

Aerosols

Regulation of IgE responses to inhaled antigens: cellular mechanisms underlying allergic sensitization versus tolerance induction.

Previous research from our laboratory has established that the natural response of the respiratory mucosal immune system to inhaled allergens involves initial 'recognition' accompanied by transient low-level IgE production, followed by the development of protective immunological tolerance. Recent studies indicate that the crucial cellular events in this process occur at the level of the upper respiratory mucosa and in the local draining lymph nodes. Salient findings from ongoing studies, detailed below, include identification of a highly developed network of dendritic antigen-presenting cells within the airway epithelium which trap inhaled antigen, and definition of the surface phenotype of the suppressor T cells mediating tolerance as TcR gamma + delta +.

Administration, Oral

The surface phenotypic characterization of lung macrophages in C3H/HeJ mice.

We have investigated the surface phenotypic profile of murine lung macrophages in frozen tissue sections, in single-cell suspensions obtained by endobronchial lavage, and in collagenase digests of parenchymal lung tissue, using a panel of monoclonal antibodies directed against pan macrophage markers and antigens present on distinct lymphoid-associated macrophage subpopulations. Our results indicate that lung macrophages from specific pathogen-free (SPF), lipopolysaccharide (LPS) hyporesponsive C3H/HeJ mice are relatively homogeneous no matter what lung tissue compartment they are obtained from. Their predominant surface phenotype was F4/80weak, M1/70-, MOMA-2+, NLDC-145+, MOMA-1+, SER-4+, which resembles the pattern of expression by lymphoid macrophages rather than representative tissue macrophages such as those found in the peritoneal cavity. These results are consistent with the current paradigm that lung macrophages, like lymphoid macrophages, play an important immunoregulatory role within their microenvironment.

Animals

Regulation of T-cell sensitization at epithelial surfaces in the respiratory tract: suppression of IgE responses to inhaled antigens by CD3+ Tcr alpha-/beta- lymphocytes (putative gamma/delta T cells).

Repeated exposure of Brown Norway rats to an aerosol of ovalbumin (OVA) induced a state of antigen-specific immunological tolerance, particularly in the IgE isotype. Tolerance was transferable to naive syngeneic animals by inoculation of splenic T cells from tolerant rats. Sequential depletion of tolerant spleen cells by sorting techniques prior to adoptive transfer, employing T-cell subset-specific monoclonal antibodies, indicated that the cells mediating tolerance were CD3+, CD4-, CD5+ and CD8+, but lacked alpha or beta chains in the T-cell receptor (TcR), suggesting that they may be part of the gamma/delta T-cell lineage. Consistent with this suggestion, the sorted population demonstrated considerable enrichment for TcR gamma chain-specific mRNA. As few as 2 x 10(3) cells are sufficient to adoptively transfer tolerance in 200-g adult rats in this model.

Administration, Inhalation

Immunoregulation of asthma: control of T-lymphocyte activation in the respiratory tract.

Allergic asthma results ultimately from inappropriate responses to non-pathogenic airborn antigens by the respiratory tract T-cell system. In order to understand how sensitization to inhaled antigens develops, it is necessary to precisely define the tissue microenvironments within which T-cells occur in the respiratory tract, and to analyse the factor(s) which regulate their local activation. This review focuses upon recent data on the distribution of T-cells and antigen presenting cells within the lung and airway tissues of man and experimental animals, and examines the available information on their responses to antigenic stimulation. We argue that in the steady state, respiratory tract T-cells are tightly regulated by a series of inherent and acquired immunosuppressive control mechanisms, which normally limit local T-cell activation to situations where antigenic exposure is accompanied by an inflammatory stimulus, such as the case with incoming pathogenic microorganisms.

Allergens

Dendritic cells in the respiratory tract.

Studies from several laboratories on lung tissue samples from human and experimental animals have identified Ia+ cells with characteristic pleiomorphic (dendritic) morphology in the epithelium and underlying connective tissue, in both the conducting airways and in the distal lung. These dendritic cells (DC) are particularly prominent within the airway epithelium, forming a contiguous network equivalent to the Langerhans cells network of the epidermis. They may be readily concentrated from enzymatically disrupted respiratory tract tissue samples on the basis of their physical properties (notably non-adherence, lack of Fc-receptors and ultra-low density on percoll), and function as highly effective antigen presenting cells in vitro. Evidence is also accumulating that respiratory tract DC populations respond dynamically to local tissue inflammation, and as such may play a prominent role in immunoinflammatory disease processes in the airways and the distal lung.

Animals

Increased blood monocyte procoagulant activity in cotton mill workers.

Blood monocyte procoagulant activity has previously been related to delayed type hypersensitivity. In this study, cotton workers exposed to cotton dust containing endotoxin and subjects not exposed to organic dusts, were examined. Blood mononuclear cells from the two groups were incubated with and without endotoxin and the recalcification time was measured. Mononuclear cells from cotton workers had a decreased baseline procoagulant activity but an increased response to endotoxin, suggesting cellular sensitization to the endotoxin present in cotton dust.

Blood Coagulation Factors

Selective attrition of non-recirculating T cells during normal passage through the lung vascular bed.

Transient arrest of T lymphocytes in the lung vascular bed following infusion of cells subjected to in vitro manipulations has been recognized for many years as a troublesome 'artefact', and has generally been attributed to trauma-induced changes in lymphocyte surface membranes. However, a number of laboratories have reported that the trapping process also occurs under situations where lymphocyte surface damage is minimal or absent, suggesting that the phenomenon may represent an intrinsic component of normal lymphocyte circulation. Consistent with these suggestions, recent studies from our laboratory have demonstrated the presence of large numbers of T cells in collagenase digests of normal peripheral lung tissue, which cannot be removed by broncho-alveolar lavage or perfusion of the tissue vascular bed. In the present experiments we have characterized these lung T cells in SPF rats. The properties common to this population include hydroxyurea sensitivity, high CD8:CD4 ratio and high frequency of cells recently derived from the thymus, and saturation thymidine-labelling studies indicated that greater than 90% of the lung T cells had divided within a 14-day test period. Additionally, cloning studies under conditions of limiting dilution indicate markedly reduced capacity for proliferation, relative to T cells in blood or spleen. We interpret these data to indicate that selective trapping and subsequent down-regulation of non-recirculating T cells is a normal consequence of passage through the lung vascular bed.

Animals