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H Moll

Publications and source records attributed to H Moll.

At least 55 records · Page 3Linked to original sources

The role of chemokines and accessory cells in the immunoregulation of cutaneous leishmaniasis.

The course of infection with Leishmania parasites is determined by the type of the developing CD4+ T cell immune response. Macrophages and Langerhans cells/dendritic cells play a decisive role in the interaction between the parasites and the host's immune system because they serve as host cells, as accessory cells that present parasite antigen, deliver costimulatory signals and secrete cytokines modulating the T cell activity and as effector cells eliminating the microorganisms. Therefore, we put particular emphasis on characterizing the role of these cells in cutaneous leishmaniasis and the factors regulating their activities. Our results show that (1) expression of the chemokine monocyte chemoattractant protein 1 (MCP-1) is associated with macrophage infiltration into the lesion and stimulation of leishmanicidal activity, (2) Langerhans cells are required for the transport of Leishmania from the infected skin to the draining lymph node and initiation of the specific T cell immune response in the early phase of infection, (3) lymph node dendritic cells containing persistent parasites may be involved in the maintenance of specific immunity, (4) Langerhans cells are able to present L. major LPG to T cells and (5) treatment of mice with antigen-pulsed Langerhans cells induces protective immunity against cutaneous leishmaniasis.

Animals↗

Structural study of a highly O-acetylated core of Legionella pneumophila serogroup 1 lipopolysaccharide.

A core oligosaccharide was obtained after mild acid degradation of Legionella pneumophila serogroup 1 lipopolysaccharide (LPS). On the basis of chemical, GLC-MS, 1H, and 13C NMR spectroscopic data, it was found that the oligosaccharide obtained is a highly O-acetylated heptasaccharide having the following structure: [formula: see text] where Kdo is 3-deoxy-D-manno-octulosonic acid and QuiNAc is 2-acetamido-2,6-dideoxyglucose. In the LPS, the O-specific polysaccharide chain is linked to position 3 of the terminal rhamnosyl group and is cleaved during degradation of the LPS. The degradation also induced partial migration and partial removal of the O-acetyl group from the terminal rhamnosyl group which, together with the occurrence of the reducing Kdo residue in multiple forms, contributes to the heterogeneity of the isolated core oligosaccharide. No such highly O-acetylated core oligosaccharide has been reported so far for LPS of Gram-negative bacteria.

Acetylation↗

Murine epidermal Langerhans cells do not express inducible nitric oxide synthase.

In Leishmania-infected macrophages (M phi), the formation of reactive nitrogen intermediates by the inducible isoform of nitric oxide synthase (iNOS) is critical for the killing of the intracellular parasites. We have recently shown that, in addition to M phi, epidermal Langerhans cells (LC) can phagocytose Leishmania major, but they do not allow parasite replication. Therefore, we analyzed whether LC and M phi display the same leishmanicidal effector mechanism. Unlike M phi, stimulation of unselected epidermal cells with interferon-gamma/lipopolysaccharide did not lead to the release of nitric oxide (NO), and inhibition of NO production had no effect on the rate of infection of LC. iNOS mRNA was clearly detectable in M phi as well as unselected epidermal cells (the majority of which consists of keratinocytes) after stimulation with different cytokines. In contrast, pure LC obtained by single-cell picking from cytokine-activated or L. major-infected epidermal cells did not express iNOS mRNA. Addition of the NO donor S-nitroso-N-acetylpenicillamine to already-infected LC did not alter their rate of infection, indicating that LC do not utilize exogenous NO for the control of intracellular Leishmania. These results suggest that in the L. major-infected skin, activated M phi and keratinocytes, but not LC have the ability to express iNOS activity. Therefore, an as yet unidentified, NO-independent mechanism appears to be responsible for the control of parasite replication in LC.

Animals↗

Cutaneous leishmaniasis: a model for analysis of the immunoregulation by accessory cells.

In the mammalian host, Leishmania are obligate intracellular parasites and invade macrophages and Langerhans cells. The accessory functions of both types of host cells are important for regulation of the specific cellular immune response and involve the following activities: infiltration into the site of infection, initiation of a T cell response, maintenance of immunity and the effector mechanisms that control intracellular parasite replication.

Animals↗

Leishmania major infection in major histocompatibility complex class II-deficient mice: CD8+ T cells do not mediate a protective immune response.

In order to evaluate the role of CD8+ T cells in cutaneous leishmaniasis, major histocompatibility complex (MHC) class II-deficient mice of C57BL/6 background lacking functional CD4+ T cells were infected with Leishmania major. In contrast to C57BL/6 wild-type mice which are resistant to infection with L. major, these mice developed severe skin lesions that did not heal. In comparison to susceptible BALB/c mice, however, lesion development in MHC class II-deficient mice was very much retarded, even though the increase in the parasite load in lymphoid organs was only slightly delayed. Lymph node cells from L. major-infected MHC class II-deficient mice produced very low levels of interferon-gamma upon stimulation with L. major antigen, whereas the response to the mitogen concanavalin A was not impaired. Interestingly, they did not release lymphokines associated with disease exacerbation (interleukin 4 and interleukin 10) either, suggesting that the delayed lesion development is caused by the lack of disease-promoting CD4+ cells rather than by the presence of protective CD8+ cells. The lack of L. major-reactive immunoglobulins in the serum of infected MHC class II-deficient mice indicates that B cells also cannot respond to parasite antigens in the absence of MHC class II-mediated helper signals. The data demonstrate that MHC class II-deficient mice are unable to restrict the spreading of L. major, although they contain highly increased proportions of CD8+ T cells. Thus, MHC class II-restricted immune responses, most likely mediated by functional CD4+ T cells, are essential for the control of primary infections with L. major.

Animals↗

Susceptibility to Leishmania major in IL-4 transgenic mice is not correlated with the lack of a Th1 immune response.

IL-4 transgenic mice of C3H genetic background expressing IL-4 under the control of an MHC class I promoter were infected with Leishmania major and the immune response was assessed. In contrast to littermate control mice, the transgenic mice were unable to restrict the growth of the parasites as shown by the strong increase in footpad swelling and parasite numbers in the spleen. The observed susceptibility was markedly less severe than that observed in BALB/c mice. Restimulation of lymph node cells with L. major antigen in vitro and subsequent analysis of cytokine secretion revealed that, in contrast to BALB/c mice, the cells from the IL-4 transgenic mice secreted more IL-5 and similar amounts of IFN-gamma as did the cells from litter mate control mice. These results demonstrate that the transgenic expression of IL-4 in vivo leads to the generation of more Th2 cells without affecting the generation of IFN-gamma-producing Th1 cells. This indicates that under certain conditions Th1 and Th2 immune responses during infection with L. major are not mutually exclusive, and that other factors besides the secretion of IL-4 determine whether only a Th1 or a Th2 immune response develops. The observed susceptibility of IL-4 transgenic mice to L major was not due to the lack of IFN-gamma production but presumably to the transgenic and Th2 cell-derived IL-4 counteracting the otherwise protective effect of IFN-gamma on infected macrophages. Our results might help explain why humans develop cutaneous leishmaniasis even though IFN-gamma-producing cells are readily detectable in the lesions.

Animals↗

Differential expression of chemokines in patients with localized and diffuse cutaneous American leishmaniasis.

The abundance of macrophages in localized cutaneous leishmaniasis (LCL) and diffuse cutaneous leishmaniasis (DCL) lesions and differences in the composition of T cell subsets indicate involvement of cell-specific chemotaxis processes. The expression of macrophage chemoattractant protein (MCP)-1, macrophage inflammatory protein (MIP)-1 alpha and -1 beta, RANTES (regulated on activation, normal T cell expressed and secreted), I-309, and interleukin-8 were investigated in lesions of patients with LCL or DCL. In LCL, high levels of MCP-1 and moderate levels of MIP-1 alpha were detected. In DCL, MCP-1 expression was significantly lower and MIP-1 alpha expression was predominant. All other chemokines investigated were minimally expressed or absent. These findings suggest that MCP-1 and MIP-alpha are responsible for the recruitment of macrophages and T cells in cutaneous leishmaniasis. The results show that self-healing LCL is associated with higher levels of MCP-1, which may stimulate macrophage microbicidal mechanisms, and nonhealing DCL is associated with higher levels of MIP-alpha.

Animals↗

Dendritic cells in Leishmania major-immune mice harbor persistent parasites and mediate an antigen-specific T cell immune response.

Upon infection with Leishmania major, a cause of human cutaneous leishmaniasis, mice of resistant strains are able to control the infection, with lesions resolving spontaneously. A long-lasting cell-mediated immunity protects them from reinfection. Nevertheless, small numbers of viable parasites persist in the lymph nodes of these mice. We have recently documented that, in addition to macrophages, epidermal Langerhans cells can ingest L. major. Furthermore, Langerhans cells have the unique ability to transport viable parasites from the infected skin to the draining lymph node for presentation to antigen-specific T cells and initiation of the cellular immune response. During migration, Langerhans cells develop into dendritic cells. In the present study, we analyzed whether dendritic cells support the persistence of parasites in immune hosts. Immunohistological studies and assays in vitro showed that in the lymph nodes of mice that have recovered from infection with L. major, both macrophages and dendritic cells harbor viable parasites. However, only dendritic cells were able to induce a vigorous T-cell immune response to L. major in vitro in the absence of exogenous antigen. Tracking experiments conducted in vivo suggested that the infected dendritic cells in the lymph nodes are derived from Langerhans cells that have emigrated from the skin. The data demonstrate that L. major-infected dendritic cells and macrophages in lymph nodes of immune animals represent long-term host cells, but only dendritic cells have the ability to present endogenous parasite antigen to T cells. Long-term infected dendritic cells may thus allow the sustained stimulation of a population of parasite-specific T cells, protecting the mice from reinfection. Our results favor the hypothesis that the persistence of antigen supports the maintenance of T cell memory and that dendritic cells are critically involved in this process.

Animals↗

Studies on the carbohydrate moieties of the timothy grass pollen allergen Phl p I.

Timothy grass pollen was investigated in order to determine the carbohydrate moieties of its major grass group I (Phl p I) and to study its impact on allergenicity. Based on computer calculations one N-glycosylation site was deduced from the cDNA data of Phl p I. After two-dimensional polyacrylamide gel electrophoresis, followed by blotting of pollen extract and by use of the monoclonal antibody IG 12 we identified at least six isoallergens of Phl p I with the main spots at a molecular mass of 35-37 kDa and a pI range of 6.5-7.3. Deglycosylation by trifluoromethanesulfonic acid resulted in a decrease of about 2 kDa. Treatment with N-glycosidase A resulted in a partial deglycosylation, while N-glycosidase F and O-glycosidase had no effect. Ten lectins were investigated for their binding to Phl p I components: Aleuria aurantia agglutinin showed strong reactivity (indicating fucose residues), while Galanthus nivalis agglutinin (indicating mannose residues) and concanavalin A (indicating mannose, glucose or N-acetylglucosamine residues) showed weak binding. By neutral sugar analysis we determined similar contents of the monosaccharides in the isoallergens. In order to study the influence of the carbohydrate structures of Phl p I on IgE reactivity we tested some patient sera for their reactivity with intact and deglycosylated Phl p I. Even though most of the IgE antibodies bind at the protein core, we detected one serum that recognized carbohydrate moieties on the Phl p I.

Allergens↗

Cutaneous leishmaniasis: co-ordinate expression of granzyme A and lymphokines by CD4+ T cells from susceptible mice.

We have recently demonstrated that the frequency of T cells expressing granzyme A is significantly higher in skin lesions and spleens of susceptible BALB/c mice compared with resistant C57BL/6 mice infected with Leishmania major, a cause of human cutaneous leishmaniasis. In the present study, we have performed in vitro studies to characterize the subpopulation, the antigen responsiveness and the lymphokine production pattern of granzyme A-expressing T cells in L. major-infected mice. Using a limiting dilution system for functional analysis of selected T cells at the clonal level, we could show that granzyme A activity in infected BALB/c mice can be assigned to L. major-reactive CD4+ T cells secreting interleukin-2 (IL-2) and IL-4. Granzyme A production was most pronounced in the early phase of infection. On the other hand, granzyme A expression could not be detected in C57BL/6-derived T cells responding to L. major. The data support the suggestion that granzyme A is produced by L. major-responsive CD4+ T cells facilitating lesion formation and the dissemination of infection.

Animals↗

4-O-(2-amino-2-deoxy-alpha-D-glucopyranosyl)-3-deoxy-D-manno-2-octulosonic acid, a constituent of lipopolysaccharides of the genus Pectinatus.

A disaccharide containing GlcN and 3-deoxy-D-manno-2-octulosonic acid (Kdo) was detected after acidic methanolysis and peracetylation of hydrofluoric-acid-treated smooth-type and rough-type lipopolysaccharide of Pectinatus cerevisiiphilus and Pectinatus frisingensis, which are strictly anaerobic bacteria capable of growing in packaged beer. The disaccharide was also found in alkali-treated lipopolysaccharide, but was not directly detectable from intact lipopolysaccharide. This suggested that the disaccharide carried a phosphate residue. The position of this phosphate was shown, by GLC/MS of appropriately degraded and derivatized samples, to be O6 of the GlcN. Methylation analysis of the purified disaccharide revealed that GlcN was linked to position 4 of Kdo. The acetylated derivative of the disaccharide was isolated in pure form, and, by 1H-NMR and 13C-NMR spectroscopy, it was confirmed to possess the structure alpha-D-GlcpN-(1'-->4)-Kdo. In the lipopolysaccharide the amino group of GlcN is free.

Carbohydrate Sequence↗

Long-chain alpha-hydroxy-(omega-1)-oxo fatty acids and alpha-hydroxy-1,omega-dioic fatty acids are cell wall constituents of Legionella (L. jordanis, L. maceachernii and L. micdadei).

Four long-chain fatty acids, 2-hydroxy-27-oxo-octacosanoic acid (n28:0(2-OH,27-oxo)), 2-hydroxy-29-oxo-triacontanoic acid (n30:0(2-OH,29-oxo)), 2-hydroxy-heptacosane-1,27-dioic acid (27:0(2-OH)-dioic) and 2-hydroxy-nonacosane-1,29-dioic acid (29:0(2-OH)-dioic) were identified by GLC-MS analysis in the phenol-chloroform-petroleum ether (PCP) extracts of Legionella jordanis, L. maceachernii and L. micdadei indicating that they are constituents of lipopolysaccharide. Moreover, five long-chain fatty acids (28:0(27-OH), 28:0(27-oxo), 30:0(29-oxo), 27:0-dioic and 29:0-dioic) previously identified in L. pneumophila (Moll, H. et al., FEMS Microbiol. Lett., 97 (1992), 1-6) were also found in these species. This is to our knowledge the first report on the existence of long chain 2-hydroxylated (omega-1)-oxo fatty acids and 2-hydroxylated 1,omega-dioic fatty acids.

Cell Wall↗

Langerhans cells transport Leishmania major from the infected skin to the draining lymph node for presentation to antigen-specific T cells.

Murine epidermal Langerhans cells (LC) have been shown to internalize Leishmania major, a cause of human cutaneous leishmaniasis, and to stimulate a vigorous parasite-specific T cell response. The present study emphasizes the critical role of LC in leishmaniasis by documenting directly that LC have the ability to transport L. major from the skin to the draining lymph node (LN). This was revealed by irreversible labeling of LC with a fluorescent cell linker and in vivo tracking. In contrast, no migration to the LN was seen with L. major-infected macrophages. These findings were consistent with the results of mixed labeling immunohistology showing that early in infection the expression of parasite antigen in the LN draining the lesion was confined to dendritic cells and could not be detected in macrophages. Furthermore, dendritic cells in LN draining the site of cutaneous infection stimulated L. major-primed T cells in vitro and, most notably, were able to activate unprimed T cells capable of mediating parasite-specific delayed-type hypersensitivity reactivity in vivo. Taken together, the results indicate that LC capture L. major in the skin and transport it to the regional LN for initiation of the specific T cell immune response.

Animals↗