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Signaling triggered by glucocorticoid-induced tumor necrosis factor receptor family-related gene: regulation at the interface between regulatory T cells and immune effector cells.

Mammals and other higher vertebrates have developed an adaptive immune system to defy effectively countless pathogens and cancerous cells encountered during the lifetime of an individual. B and T lymphocytes, which are essential in orchestrating adaptive immune responses, express surface receptors specific for foreign and abnormal self-antigens. Genesis of this antigen receptor repertoire poses significant risks for autoimmunity caused by self-reactive lymphocytes. Therefore, organisms with adaptive immune systems have evolved central and peripheral tolerance mechanisms. In peripheral tissues, regulatory T (Treg) cells function in a dominant, cell-extrinsic manner to limit inflammatory responses and autoimmune disorders. To tap the potential clinical utility of these specialized lymphocytes, advances have been made in understanding how Treg cell-mediated suppression of immune effector cells is achieved and regulated. Importantly, signaling induced by a recently identified member of the tumor necrosis factor receptor (TNFR) family, termed glucocorticoid-induced TNFR family-related gene (GITR), abrogates the suppressive effects of Treg cells. GITR plays a pivotal role in controlling T cell-mediated responses in experimental models of organ-specific autoimmunity, chronic infection, and anti-tumor immunity. These findings highlight the importance of elucidating the molecular underpinnings of GITR-induced signaling. We propose that GITR employs adapter proteins, including TNFR-associated factors (TRAFs), to regulate diverse signaling pathways and transcriptional programs that control the interplay between Treg cells and immune effector cells.

Animals↗

Natural history of chronic hepatitis B in co-infected patients.

HIV co-infection influences the course and natural history of hepatitis B virus (HBV) infection by impairing the quantity and quality of the innate and adaptive immune response. The rates of spontaneous resolution after acute infection and spontaneous anti-HBe and anti-HBs seroconversions are decreased, and levels of HBV replication are increased in HIV-infected patients. A more rapid progression of liver fibrosis and a higher rate of cirrhosis decompensation (but not hepatocellular carcinoma) have been demonstrated in co-infected patients. The risk of HBV-associated end-stage liver disease and liver-related mortality may be increased by HIV co-infection. Antiretroviral therapy may trigger spontaneous anti-HBe and anti-HBs seroconversion and/or a better immune control of HBV replication by restoring adaptive immunity, but can also increase hepatitis flares. Reactivation of chronic hepatitis B has been observed after suspension of anti-retrovirals with anti-HBV activity or after occurrence of HBV resistance to lamivudine. Future research should focus on: the impact of HIV-induced changes in innate and adaptive immune response and modifications induced by anti-retroviral therapy that may impact on progression of advanced chronic hepatitis B; the association between HBV genotype and clinical course of disease; and the role of occult HBV infection as a co-factor with other causes of liver injury.

Disease Progression↗

IgG-derived Fc down-regulates virus-induced plasmacytoid dendritic cell (pDC) IFNalpha production.

Interferon alpha (IFNalpha) produced primarily by plasmacytoid dendritic cells (pDC) is a potent component of the anti-viral innate immune response, and modulates adaptive immunity. Primary control of IFNalpha production occurs at a cellular level and is highly dependent upon regulatory factors and their products. Recent studies have identified up-regulation of IFNalpha production mediated by the adaptive immune response in the form of immune specific IgG. These studies establish a role for the external control of IFNalpha production. The current work demonstrates that the Fc portion of IgG is a potent inhibitor of IFNalpha produced by pDCs in response to HIV, HSV, and VSV. Fc down-regulation occurs after IFNalpha production can be detected by bioassay, and suggests the existence of late regulatory events in the control of IFNalpha production. Down-regulation of IFNalpha is not caused by Fc-induced necrosis, apoptosis or neutralization of IFNalpha activity. Demonstration of Fc-mediated down-regulation of IFNalpha provides additional evidence of the role of IgG in the regulation of IFNalpha production.

Apoptosis↗

Schistosoma mansoni: sex-specific modulation of parasite growth by host immune signals.

Development of female schistosomes from infectious cercariae to mature egg-producing adults requires both male schistosomes and an intact adaptive immune system. By examining single sex infections in immunodeficient mice, we provide evidence that female schistosome development is not directly influenced by the adaptive immune system, whereas male development is. Our data are consistent with a sequential model of schistosome development, where the adaptive immune system signals development of mature males, which subsequently stimulate development of mature females. The male schistosome therefore appears to play a central role both in transducing signals from the adaptive immune system and in facilitating female development.

Animals↗

Influence of ultra-endurance exercise on immunoglobulin isotypes and subclasses.

BACKGROUND: Strenuous exercise is associated with tissue damage. This activates the innate immune system and local inflammation. Interaction between innate and adaptive immunity is essential for maintaining health, suggesting that the adaptive immune system may also be altered by exercise. OBJECTIVES: To determine exercise induced changes in the adaptive immune system by measuring the immunoglobulin isotype and subclass response to an ultra-marathon. METHODS: Venepuncture was performed on 11 experienced volunteers (six men, five women; mean (SD) age 43 (9.8) years) 24 hours before the projected finishing time and immediately after and 3, 24, and 72 hours after an ultra-marathon (90 km). Serum was stored at -80 degrees C. IgM, IgD, IgA, IgG, IgG1, 2, 3, and 4, and total IgE were measured. RESULTS: The following immunoglobulins were significantly (p< or =0.05) altered after the race: IgD, immediately (-51%) and 24 hours (-41%) after; IgM 24 hours after (-23%); total IgG immediately after (+12%). There were no reports of symptoms of upper respiratory tract infections after the ultra-marathon. CONCLUSIONS: In experienced ultra-endurance runners, alterations in immunoglobulin concentrations after a race suggest an enhanced immune response, including isotype switching, interactions with the innate immune system, and a secondary antibody response. These alterations may have a role in the maintenance of subject health after an ultra-marathon.

Adult↗

Immunity in plants and animals: common ends through different means using similar tools.

A comparative approach is potentially useful for understanding the role of mammal innate immunity role in stimulating adaptive immunity as well as the relationship between these two types of immune strategies. Considerable progress has been made in the elucidation of the co-ordinated events involved in plant perception of infection and their mobilisation of defence responses. Although lacking immunoglobulin molecules, circulating cells, and phagocytic processes, plants successfully use pre-formed physical and chemical innate defences, as well as inducible adaptive immune strategies. In the present paper, we review some shared and divergent immune aspects present in both animals and plants.

Animal Population Groups↗

Dendritic cells in transplantation and immune-based therapies.

Dendritic cells (DCs) are specialized, bone marrow-derived leukocytes critical to the onset of both innate and adaptive immunity. The divisions of labor among distinct human DC subtypes achieve the most effective balance between steady-state tolerance and the induction of innate and adaptive immunity against pathogens, tumors, and other insults. Maintenance of tolerance in the steady state is an active process involving resting or semimature DCs. Breakdowns in this homeostasis can result in autoimmunity. Perturbation of the steady state should first lead to the onset of innate immunity mediated by rapid responders in the form of plasmacytoid and monocyte-derived DC stimulators and natural killer (NK) and NK T-cell responders. These innate effectors then provide additional inflammatory cytokines, including interferon-gamma, which support the activation and maturation of resident and circulating populations of DCs. These are critical to the onset and expansion of adaptive immunity, including Th1, Th2, and cytotoxic T-lymphocyte responses. Rodent models are now revealing important data about distinct DC precursors, homeostasis of tissue-resident DCs, and DC turnover in response to inflammation and pathological conditions like graft-versus-host disease. The use of defined DC subtypes to stimulate both innate and adaptive immunity, either in combination or in a prime-boost vaccine sequence, may prove most useful clinically by harnessing both effector cell compartments.

Animals↗

Complement regulates inhalation tolerance at the dendritic cell/T cell interface.

Pulmonary exposure to innocuous aeroallergens is a common event leading to inhalation tolerance. Distinct subsets of pulmonary dendritic cells (DC) and regulatory T cells (T(Reg)) play critical roles in mediating and maintaining such tolerance. In asthmatics, the same aeroallergens drive a maladaptive, Th2-biased immune response resulting in airway inflammation and airway hyper-reactivity. The mechanisms underlying the breakdown of inhalation tolerance, leading to the Th2-driven inflammation in rising numbers of asthmatic patients from industrialized countries remain elusive. The recent resurgence of interest in the role of the innate immune mediators in regulating adaptive immune response has sparked studies aimed at identifying the role of complement in allergic asthma. In this context, an unexpected role for the anaphylatoxin C5a receptor in allergic sensitization has been found. In models of experimental allergic asthma, ablation of C5aR signaling during initial allergen exposure either induced or enhanced Th2 sensitization. Mechanistically, C5aR signaling directly affected the function of distinct pulmonary DC subsets that induce or control allergen-induced adaptive immune responses. Signaling pathways downstream of C5 may also impact the function of T(Reg), as T(Reg) from C5 sufficient, but not from C5 deficient mice, suppress DC activation and subsequent development of Th2-driven inflammation. The emerging paradigm is that constitutive local generation of C5a and C5aR signaling in airway DCs controls inhalation tolerance directly as well as indirectly through sensitization of airway DCs for T(Reg)-mediated immunosuppression.

Allergens↗

[Bacterial aggression].

In all living species, the first line of defence against microbial aggressions is constituted by innate immunity. During Evolution, it appears in invertebrates and plants, long before adaptive immunity, which appears in vertebrate. Adaptive immunity induces acquired resistance against microorganisms through random somatic rearrangements of genes encoding immunoglobulins and T cell receptors, thus generating a high level of diversity of receptors (>10(9)) in response to microbial aggressions. Acquired resistance is not vertically transmitted and reflects the "infectious history" of every individual. In contrast, innate immunity relies on recognition of antigens by a small number of weakly specific receptors (>10(2)) designated Pattern-Recognition Receptors (PRR) and is vertically transmitted by germinal cells. The PRR are expressed on macrophages dendritic cells and B lymphocytes and recognize antigenic structures highly conserved in the living world, termed Pathogen-Associated Molecular Patterns (PAMP), as lipopolysaccharides peptidoglycanes and lipoteichoic acids. PRR are secreted (complement, lectins), or expressed at the cell surface of cells to induce endocytosis or signaling (Toll-like receptors or TLRs). The recognition of antigens induces an immediate inflammatory response and triggers adaptive immunity. Among secreted PRR, the system of complement plays a major role in the immediate inflammatory response, controlling infections by its major role in opsonization, chemotactism and activation of leucocytes. TLRs induce the inflammatory response against microorganisms through NF-kB, a cytoplasmic factor controlling transcription of many genes, including cytokines (TNF, INF, IL-1, IL-2, IL-8, IL-12.) and defensines. So, within few minutes following microbial aggression, the inflammatory response is rapidly triggered to destroy infectious agents and to generate a long-term memory against pathogens.

Animals↗

Effects of opioids on the immune system.

Both therapeutic and chronic uses of opioids compromise the optimal functioning of the immune system. Overwhelming evidence suggests that opioid use affects both innate immunity and adaptive immunity. Chronic administration of opioids decreases the proliferative capacity of macrophage progenitor cells and lymphocytes. Additionally, the differentiated function of immune cells is significantly affected by opioids. These effects are mediated by either a direct action of opioids on the target cells or by indirect centrally mediated pathways. Molecular biological and biochemical characterization suggest that immune cells differentially express classical opioid receptors. Interestingly, these studies also reveal the presence of a novel class of opioid receptors in immune cells. We believe that this low affinity morphine binding site mediates the antiproliferative effects of morphine.

Animals↗

Cytokines and regulation of allergic sensitization to chemicals.

Sensitization to chemicals and the elicitation of allergic reactions results from the stimulation of specific immune responses. Adaptive immunity is orchestrated by cytokines, a family of inducible glycoproteins that influence in many ways the behaviour of, and interaction between, cells which mediate immune and inflammatory responses. In this article the role of cytokines in the development of cutaneous immune responses to chemical allergens and in directing the quality of immune responses provoked by such materials is discussed.

Animals↗

Immunosuppressant triptolide inhibits dendritic cell-mediated chemoattraction of neutrophils and T cells through inhibiting Stat3 phosphorylation and NF-kappaB activation.

Triptolide, an active component purified from the medicinal plant Tripterygium wilfordii Hook F., is potent in anti-inflammation and immunosuppression. Dendritic cells (DC), one of important targets of immunosuppressants, play crucial roles in linking the innate immunity and adaptive immunity. However, the effects of triptolide on DC have not been fully elucidated. Chemoattraction of neutrophils and T cells by DC may favor their interactions and initiation of immune response. Here we demonstrate that triptolide significantly impairs DC-mediated chemoattraction of neutrophils and T cells both in vitro and in vivo by suppressing DC production of CC and CXC chemokines including MIP-1alpha, MIP-1beta, MCP-1, RANTES, TARC, and IP-10 in response to LPS. Furthermore, triptolide-mediated inhibition of NF-kappaB activation, Stat3 phosphorylation and increase of SOCS1 expression in DC may be involved in the inhibitory effect of triptolide. Our study provides a novel mechanistic explanation for the anti-inflammatory and immunosuppressive activities of triptolide.

Animals↗

Peroxisome proliferator-activated receptor alpha regulates B lymphocyte development via an indirect pathway in mice.

Peroxisome proliferator-activator receptor alpha (PPARalpha), a member of the nuclear receptor superfamily, has been implicated in the regulation of inflammation and immune response. Adaptive immune responses are suppressed by exposure to PPARalpha agonists, resulting in severe thymus and spleen atrophy. In addition, the decline in both T and B cells is due in part to the loss of splenocytes upon exposure to PPARalpha agonists. Thus, the current study was designed to examine the effect of Wy-14,643, a potent PPARalpha agonist, on B cell development in bone marrow from wild-type and PPARalpha-null mice. Significantly decrease in pro/pre-B cell and total B220(+) cell was observed in wild-type mice in bone marrow upon Wy-14,643 treatment, but not in PPARalpha-null mice. Immature and mature B cell populations are not affected. This suggests that PPARalpha is involved in the development of B cell during lymphoid lineage. However, surprisingly, PPARalpha mRNA was absent in bone marrow as revealed by RT-PCR. Therefore, the effect of PPARalpha on B cell development is by an indirect mechanism.

Animals↗

Co-stimulation and plaque-antigen-specific T-cell responses in atherosclerosis.

Atherosclerosis is a chronic inflammatory disease of the arterial wall, and T-cell-mediated immune responses to plaque antigens are a prominent component of the inflammatory process. In addition to antigen stimulation, T-cell responses require co-stimulatory signals, the best defined of which are delivered by B7 family molecules on antigen-presenting cells binding to CD28 on T cells. T-cell co-stimulation directly influences the CD40/CD154 immunoregulatory pathway, which is well known to influence atherosclerosis. This review discusses recent progress in understanding the role of B7 family molecules in atherosclerosis, and T-cell co-stimulation as an important link between innate immunity and adaptive immune responses to plaque antigens.

Antigen-Presenting Cells↗

Cell biology of T cell activation and differentiation.

T cells are major components of the adaptive immune system. They can differentiate into two different populations of effector cells-type one and type two-and may also become tolerant. T cells respond to immune challenges by interacting with antigen-presenting cells of the innate immune system. These latter cells can identify the nature of any immune challenge and initiate adaptive immune responses. Dendritic cells are the most important antigen-presenting cells in the body. The T cell recognizes both peptides associated with MHC molecules on the antigen-presenting cells and also other molecules in a complex structure known as an immunological synapse. The nature of the antigen, the cytokine environment, and other molecules on the dendritic cell surface instruct the T cells as to the response required. A better understanding of the biology of T cell responses offers the prospect of more effective therapeutic interventions.

Animals↗

Some thoughts on the response to antigens that are effector T-helper independent ('thymus independence')

The Self-Non-Self discrimination is germline-selected for defence mechanisms ('innate immune systems') whereas it is somatically learned for immune systems ('adaptive immune systems'). It is proposed that immune system evolved from defence mechanisms by adding large recognitive repertoires that, by aggregating with antigens, were able to trigger the already existent effector functions of defence mechanisms. Thus today there are two pathways to triggering each class of effector function (macrophage opsonization, complement lysis or natural killer/-natural cytotoxic cell activity). The antigen-antibody complex and the T-cell antigen-receptor interaction trigger the immune pathway: the receptors of the defence mechanism trigger the 'alternate' or 'innate' pathway. The evolutionary selection pressure on defence mechanisms was to increase the size of the recognitive repertoire, which in turn, necessitated the emergence of a somatically learned Self-Non-Self discrimination. By contrast with defence mechanisms that are triggered effector T-helper (eTh) independently by polymers (Signal[3]), immune systems can be activated by monomers, a pathway that requires associative recognition of monomer and the reading of two Signals, Signal[1] resulting from the binding of an epitope to the antigen-receptor complex, Signal[2] delivered by an eTh cell. The evolving immune system hijacked part of this eTh-independent pathway (Signal[3]) into which Signal ([1] + [2]) merged. A model of these relationships is proposed.

Animals↗

Sequence variants in Toll-like receptor gene cluster (TLR6-TLR1-TLR10) and prostate cancer risk.

BACKGROUND: Chronic inflammation plays an important role in several human cancers and may be involved in the etiology of prostate cancer. Toll-like receptors (TLRs) are important in the innate immune response to pathogens and in cross-talk between innate immunity and adaptive immunity. Our previous finding of an association of TLR4 gene sequence variants and prostate cancer risk provides evidence for a role of TLRs in prostate cancer. In this study, we investigated whether sequence variants in the TLR6-TLR1-TLR10 gene cluster, residing within a 54-kb region on 4p14, were associated with prostate cancer risk. METHODS: We selected 32 single-nucleotide polymorphisms (SNPs) covering these three genes and genotyped these SNPs in 96 control subjects from the Cancer Prostate in Sweden (CAPS) population-based prostate cancer case-control study. Five distinct haplotype blocks were inferred at this region, and we identified 17 haplotype-tagging SNPs (htSNPs) that could uniquely describe >95% of the haplotypes. These 17 htSNPs were then genotyped in the entire CAPS study population (1383 case subjects and 780 control subjects). Odds ratios of prostate cancer for the carriers of a variant allele versus those with the wild-type allele were estimated using unconditional logistic regression. RESULTS: The allele frequencies of 11 of the 17 SNPs were statistically significantly different between case and control subjects (P = .04-.001), with odds ratios for variant allele carriers (homozygous or heterozygous) compared with wild-type allele carriers ranging from 1.20 (95% confidence interval [CI] = 1.00 to 1.43) to 1.38 (95% CI = 1.12 to 1.70). Phylogenetic tree analyses of common haplotypes identified a clade of two evolutionarily related haplotypes that are statistically significantly associated with prostate cancer risk. These two haplotypes contain all the risk alleles of these 11 associated SNPs. CONCLUSION: The observed multiple associated SNPs at the TLR6-TLR1-TLR10 gene cluster were dependent and suggest the presence of a founder prostate cancer risk variant on this haplotype background. The TLR6-TLR1-TLR10 gene cluster may play a role in prostate cancer risk, although further functional studies are needed to pinpoint the disease-associated variants in this gene cluster.

Case-Control Studies↗

Toll receptors modulate allergic responses: interaction with dendritic cells, T cells and mast cells.

PURPOSE OF REVIEW: The discovery of Toll-like receptors has generated much interest in understanding the impact of innate immunity on adaptive immune responses, including allergic diseases. RECENT FINDINGS: Recent studies suggest that Toll-like receptor pathways may mediate interactions between dendritic cells, T lymphocytes and mast cells, thus modulating allergic immune responses. Toll-like receptor signaling triggers dendritic cell maturation, which primes naive T lymphocytes towards specific T helper cell types 1 and 2 immune responses. Although a T helper cell type 1/2 balance may be important in modulating allergic responses, T regulatory cells that suppress certain immune responses may be critical in immune regulation. SUMMARY: With the identification of different subsets of dendritic cells and the discovery of Toll-like receptors on T regulatory cells and mast cells, the manipulation of Toll-like receptor signaling may lead to novel therapeutic options in allergic diseases.

Dendritic Cells↗