PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Adaptive Immunity”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 217 records · Page 12Linked to original sources

Natural type I interferon-producing cells as a link between innate and adaptive immunity.

Type I interferons (IFNs) are promptly produced upon invasion of pathogens, and activate a broad range of effector cells in the innate and adaptive immune system. Lin(-)CD4(+)CD11c(-) plasmacytoid dendritic cell precursors (plasmacytoid pre-DCs) produce enormous amounts of type I IFNs in response to viruses and CpG DNA, thus corresponding to the previously described but not fully defined natural type I IFN-producing cells (IPCs). Plasmacytoid pre-DCs strongly express toll-like receptor (TLR) 7 and TLR9, in contrast to monocytes, which mainly express TLR1, 2, 4, 5, and 8, suggesting that these two DC precursors recognize different microbial molecules and that they may have developed through different evolutionary trails. Three different stimuli, CpG DNA plus CD40 ligand, interleukin-3 (IL-3), and herpes simplex virus, stimulate plasmacytoid pre-DCs to differentiate into DCs that induce distinct types of T helper cells, i.e., Th1, Th2, and IFN-gamma- and IL-10-producing T cells, respectively. The remarkable versatility of plasmacytoid pre-DCs distinguishes them from other cell types in the immune system that have only limited functions, and suggests that these cells may play a key role in integrating the innate and adaptive aspects of various immune responses.

Cell Differentiation↗

Commentary: adaptive immunity in the absence of innate immune responses? The un-Tolled truth of the silent invaders.

The development and expression of effective adaptive immunity is currently thought to hinge entirely upon inductor and effector mechanisms furnished by cells of the innate immune system. An obligate intracellular bacterium, the causative agent of human granulocytic anaplasmosis, apparently defies this dogma: in a mouse model of infection, Anaplasma phagocytophilum is controlled by specific lymphocyte immunity even in the absence of Toll-like receptor (TLR)2, TLR4, the TLR-adaptor protein MyD88, inducible nitric oxide synthase or the gp91 component of the NADPH oxidase complex. A. phagocytophilum infection biology raises some interesting questions about the development of resistance to innate defense strategies by vector-borne pathogens, and challenges our current bias concerning the relative importance and the mode of interaction of the innate and adaptive arms of infection control in vertebrates.

Anaplasma phagocytophilum↗

PRMT5-mediated intron retention triggers innate and adaptive immunity against cancer.

PRMT5 is expressed at high levels in many cancers, where it regulates diverse cellular pathways that contribute to oncogenesis. Here, we have defined a new role for PRMT5 in regulating and coordinating the interplay between the innate and adaptive immune response. This occurs, in part, through the influence of PRMT5 and E2F1 on RNA splicing and the presence of retained introns (RIs). We found that RIs have a propensity to form double-stranded RNAs that contribute to the innate response. Furthermore, many RIs contain non-canonical open-reading frames (ncORFs), which can be translated and then processed into small peptides that assemble with the MHC class I complex. Significantly, RI-derived peptides are highly immunogenic and, as a murine cancer vaccine, carrying a string of antigenic RI peptides, delayed tumour growth and enhanced survival. RIs are present in human tumour cells, and we identified T lymphocytes in human cancer patients, with antigen specificity for RI-derived peptides, that killed human tumour cells in vitro. Regulating intron retention thus offers a new therapeutic approach to enhance tumour immunogenicity.

Animals↗

The adaptive immune response to major surgery in the neonate.

The effect of major surgery on components of the adaptive immune response in babies has not previously been reported. In a prospective study, eight neonates undergoing uncomplicated surgery for repair of esophageal atresia were investigated. They were compared with ten age-matched normal babies not undergoing surgery. The parameters of the immune response investigated were: total leukocytes (WBC), lymphocytes and their subsets (T-helper, T-suppressor, natural killer [NK], B-lymphocytes), monocytes, immunoglobulins (Ig) G and M, the cytokines tumor necrosis factor-alpha (TNF-alpha) and interleukin 1-beta (Il-1beta), and C-reactive protein (CRP), an acute-phase protein. When compared to the normal controls, the operated group showed a fall in all types of WBC following surgery, but only the falls in B-lymphocytes and NK cells were significant on postoperative day 3 (P < 0.05). The suppression in WBC was temporary, and by day 7 the operated group had significantly higher numbers of total WBC and T-helper cells than the controls (P < 0.05), who were undergoing their physiological postpartum fall in WBC. Within the operated group, there was a significant fall in the numbers of total lymphocytes, T-suppressors, and B-lymphocytes compared to preoperative levels (P < 0.01). The ratio of T-helper/T-suppressor cells increased significantly following surgery. There was a vigorous immune response in terms of the humoral factors: CRP, TNF-alpha, and Il-1beta all rose significantly postoperatively (P < 0.02).

C-Reactive Protein↗

A quasispecies approach to viral evolution in the context of an adaptive immune system.

A deeper understanding of the mechanisms that determine viral evolution in the context of an adaptive immune system is vital for the development of efficient strategies to defeat viral infections. The problem of describing these mechanisms is discussed using the concept of quasispecies. Conditions for both an optimal immune response and for highest viral viability are derived from theoretical models and are supported by empirical data.

Animals↗

Inflammatory bowel disease requires the interplay between innate and adaptive immune signals.

Inflammatory bowl disease (IBD) is a type 1 T helper cell (Th1)-mediated autoimmune disease. Various studies have revealed that environmental pathogens also play a significant role in the initiation and progression of this disease. Interestingly, the pathogenesis of IBD has been shown to be related to nitric oxide (NO) released from innate immune cells. Although NO is known to be highly toxic to the gut epithelia, there is very little information about the regulation of NO production, One major question in the etiology of IBD is how Th1 cells and pathogens interact in the induction of IBD. In present study, we focused on the regulation of NO. We show that macrophages require both interferon-gamma (IFN-gamma)-mediated and TLR4-mediated signals for the production of NO, which causes inflammation in the intestine and subsequently IBD. Thus, IBD is the result of concerted actions of innate immune signals, such as the binding of LPS to TLR-4, and adaptive immune signals, such as IFN-gamma produced by Th1 cells.

Animals↗

Innate and adaptive immunity in Candida albicans infections and saprophytism.

Underlying acquired immunity to the fungus Candida albicans is usually present in adult immunocompetent individuals and is presumed to prevent mucosal colonization progressing to symptomatic infection. Exploration of immunological events leading to Candida resistance or susceptibility has indicated the central role of the innate and adaptive immune systems, the relative contribution of which may vary depending on the site of the primary infection. Nevertheless, acquired resistance to infection results from the development of Th1 responses. Cytokines produced by Thl cells activate phagocytic cells to a candidacidal state. In contrast, cytokines produced by Th2 cells inhibit Th1 development and deactivate phagocytic effector cells. Because reciprocal influences have been recognized between innate and adaptive Th immunity, it appears that an integrated immune response determines the life-long commensalism of the fungus at the mucosal level, as well as the transition from mucosal saprophyte to pathogen.

Adult↗

Interleukin-12: a proinflammatory cytokine with immunoregulatory functions that bridge innate resistance and antigen-specific adaptive immunity.

Interleukin-12 (IL-12) is a heterodimeric cytokine produced mostly by phagocytic cells in response to bacteria, bacterial products, and intracellular parasites, and to some degree by B lymphocytes. IL-12 induces cytokine production, primarily of IFN-gamma, from NK and T cells, acts as a growth factor for activated NK and T cells, enhances the cytotoxic activity of NK cells, and favors cytotoxic T lymphocyte generation. In vivo IL-12 acts primarily at three stages during the innate resistance/adaptive immune response to infection: 1. Early in the infection, IL-12 is produced and induces production from NK and T cells of IFN-gamma, which contributes to phagocytic cell activation and inflammation; 2. IL-12 and IL-12-induced IFN-gamma favor Th1 cell differentiation by priming CD4+ T cells for high IFN-gamma production; and 3. IL-12 contributes to optimal IFN-gamma production and to proliferation of differentiated Th1 cells in response to antigen. The early preference expressed in the immune response depends on the balance between IL-12, which favors Th1 responses, and IL-4, which favors Th2 responses. Thus, IL-12 represents a functional bridge between the early nonspecific innate resistance and the subsequent antigen-specific adaptive immunity.

Adaptation, Physiological↗

The intracellular antigen transport machinery TAP in adaptive immunity and virus escape mechanisms.

The transporter associated with antigen processing (TAP) is a crucial element of the adaptive immune system, which translocates proteasomal degradation products into the endoplasmic reticulum, for transfer of these peptides on major histocompatibility complex (MHC) I molecules within a macromolecular peptide-loading complex. After loading and intracellular transport to the cell surface, these peptide/MHC complexes are monitored by cytotoxic T-lymphocytes. This review summarizes the structural organization and function of the ABC transporter TAP. Furthermore, we discuss human diseases and viral evasion strategies associated with TAP function.

ATP-Binding Cassette Transporters↗

Innate and adaptive immune responses of turbot, Scophthalmus maximus (L.), following experimental infection with Enteromyxum scophthalmi (Myxosporea: Myxozoa).

The innate and adaptive immune responses against Enteromyxum scophthalmi was studied in turbot (Scopthalmus maximus (L.)) experimentally exposed to the parasite by cohabitation. Haematological, histopathological, cellular and humoral factors were determined in samples taken from control (CTRL) and recipient (RCPT, naïve fish cohabited with donor infected fish) animals at 0, 20, 29, 40 and 43 days post exposure (p.e). Infection was first detected at day 20 p.e. and prevalence reached 100% at 40 days p.e, when first mortalities occurred. A significant reduction in weight and condition factor was found in RCPT, though no significant differences in haematocrit or serum protein levels were detected between CTRL and RCPT. Some immune effectors were clearly activated in RCPT: the percentage of circulating granulocytes was significantly increased, as well as the number of blood cells positive in the respiratory burst assay; leucocyte infiltration in intestine was found mainly on days 20 and 29 p.e.; total serum antiproteases and alpha-2-macroglobulin levels were higher in most of the samplings, with significant differences on the last sampling. Other effectors were clearly down regulated in RCPT: haematopoietic depletion appeared in head kidney from day 29 p.e. onwards, and the number of apoptotic cells and MMC increased in head kidney and spleen; the percentage of lymphocytes decreased progressively and significantly; a clear, but not statistically significant, drop in serum complement was registered at 40 days p.e.; also, a significant decrease occurred in serum lysozyme at 29 days p.e. No specific antibodies against the parasite were detected in any sampling.

Animals↗

The role of relB in regulating the adaptive immune response.

Dendritic cells (DCs), which represent a key type of antigen-presenting cell (APC), are important for the development of innate and adaptive immunity. DCs are involved in T cell activation in at least two main ways: priming via direct processing/presentation of soluble antigen taken up from the microenvironment (conventional priming), and processing/presentation of antigen released from other cells (cross-priming). relB, a component of the NF-kappaB complex of transcription factors, is a critical regulator of the differentiation of DCs. In mice, lack of relB impairs DCs derived from bone marrow both in number and function. Here relB (-/-) bone marrow chimera mice is used to study the APC function of residual DCs in presentation of soluble antigen and cross-priming. It is found that the DCs in these mice are profoundly deficient in their ability to both prime and cross-prime T cell responses. It was concluded that the relB gene is involved in regulating the APC function of DCs in vivo.

Adaptation, Physiological↗

Dendritic cells and complement: at the cross road of innate and adaptive immunity.

The interaction between different components of the immune system plays a pivotal role in the overall development of immune responses. Dendritic cells (DCs) and complement are essential components of innate immunity. They have been shown to be relevant both in the induction of adaptive immune responses and in maintenance of tolerance. However, hyperactivity of these systems has also been demonstrated to be detrimental in various disease states. Despite increased insight into dendritic cell biology, relatively little is known about possible interactions between dendritic cells and complement. This review focuses on novel findings, which have started to shed light on these intriguing components of the innate immune system.

Animals↗

[The phenomenon of adaptive immunity in exposure to nonionizing microwave radiation].

In experiments with albino rats exposed to microwaves (500 microW/cm2), a model of adaptive immunity was developed by transferring lymphoid cells of exposed animals. The effect of microwave radiation was shown to cause autoimmune disorders that were displayed against the background of the structural and functional disturbances of the hematoencephalic barrier.

Adaptation, Physiological↗

Regulation of RELM/FIZZ isoform expression by Cdx2 in response to innate and adaptive immune stimulation in the intestine.

Host immune responses to commensal flora and enteric pathogens are known to influence gene expression in the intestinal epithelium. Although the Cdx family of caudal-related transcription factors represents critical regulators of gene expression in the intestinal epithelium, the effect of intestinal immune responses on Cdx expression and function has not been determined. We have shown that bacterial colonization and Th2 immune stimulation by intestinal nematode infection induce expression of the intestinal goblet cell-specific gene RELM beta. In this study, we investigated the transcriptional regulation of resistin-like molecule/found in inflammatory zone (RELM/FIZZ, RELM beta) and its isoforms RELM alpha and RELM gamma to ascertain the role of Cdx in modifying intestinal gene expression associated with innate and adaptive immune responses. Analysis of the RELM beta promoter showed that Cdx2 plays a critical role in basal gene activation in vitro. This was confirmed in vivo using transgenic mice, where ectopic gastric and hepatic expression of Cdx2 induces expression of RELM beta, but not RELM alpha or RELM gamma, exclusively in the stomach. Although there was no quantitative change in colonic Cdx2 mRNA expression, protein distribution, or phosphorylation of Cdx2, bacterial colonization induced expression of RELM beta, but not RELM alpha or RELM gamma. In contrast, parasitic nematode infections activated colonic expression of all three RELM isoforms without alteration in Cdx2 expression. These results demonstrated that Cdx2 participates in directing intestine-specific expression of RELM beta in the presence of commensal bacteria and that adaptive Th2 immune responses to intestinal nematode infections can activate intestinal goblet cell-specific gene expression independent of Cdx2.

Animals↗

Chemokines: key players in innate and adaptive immunity.

Healthy individuals initiate an immediate immune response to microbes by using a set of germline-encoded receptors that recognize common molecular patterns found on the surface of pathogens that are distinct from self-antigens. This innate immune response is the first line of defense against microorganisms in vertebrates, and constitutes the only immune response in plants and invertebrates. The innate immune system includes cellular components, as well as a host of soluble products (antimicrobial peptides, complement fragments, cytokines, and chemokines). The adaptive immune response, which provides long-lasting protection, takes days to develop and requires somatic mutations leading to the development of antigen-specific T cell receptors (cell-mediated immunity) and immunoglobulins (humoral immunity). Members of the chemokine superfamily are crucially involved in both innate and adaptive responses. We review the biological actions of the chemokine superfamily, focusing on several functions that are relevant for both immune responses, such as cell recruitment, microbicidal activity, cell activation, polarization of CD4+ T cells, and effects on structural cells. In particular, we will illustrate the central role that chemokines play in host defense, best demonstrated by the tremendous number of chemokine and chemokine receptor homologs found in microbial genomes, which deflect the immune response of the host.

Animals↗

Natural killer cells wear different hats: effector cells of innate resistance and regulatory cells of adaptive immunity and of hematopoiesis.

Natural killer (NK) cells were originally defined by their ability to lyse tumor cells or virus-infected cells and identified as one type of effector cells of the non-antigen specific innate resistance. However, many recent studies have widened the interpretation of the role of NK cells in immunity and shown that NK cells have important regulatory roles in innate resistance, antigen-specific adaptive immunity, and, possibly, in hematopoiesis. These functions of NK cells more than on their cytotoxic activity, are probably dependent on their ability to produce lymphokines, particularly interferon-gamma (IFN-gamma). NK cells are important for antigen-independent activation of phagocytic cells early in infection and for favoring the development of antigen-specific T helper cells type I, producing IFN-gamma and IL-2. A role for NK cells in suppression of hematopoiesis and in induction of septic shock may represent a pathological exaggeration of the physiologic functions of NK cells in innate resistance.

Adaptation, Physiological↗

The NF-kappa B family member RelB is required for innate and adaptive immunity to Toxoplasma gondii.

The NF-kappa B family of transcription factors are associated with the regulation of innate and adaptive immunity to infection. Infection of C57BL/6 mice with Toxoplasma gondii resulted in up-regulation of NF-kappa B activity that included the NF-kappa B family member RelB. To assess the role of RelB in the regulation of the immune response to this infection, we challenged RelB-deficient mice (RelB-/-) and wild-type (WT) littermate controls with T. gondii. Although WT controls were resistant to T. gondii, RelB-/- mice succumbed 10-15 days after infection. Examination of accessory cell functions associated with resistance to T. gondii revealed that RelB-/- macrophages stimulated with IFN-gamma plus LPS or TNF-alpha produced IL-12 as well as reactive nitrogen intermediates and inhibited parasite replication similar to WT macrophages. Analysis of the systemic responses of RelB-/- and WT mice revealed that infected mice had similar serum levels of IL-12. However, RelB-/- mice challenged with T. gondii produced negligible levels of IFN-gamma and had reduced NK cell activity compared with WT mice. Similarly, splenocytes from uninfected RelB-/- mice stimulated with polyclonal stimuli were deficient in their ability to produce IFN-gamma. Together, our results demonstrate that RelB is essential for the development of innate NK and adaptive T cell responses that lead to the production of IFN-gamma and resistance to T. gondii.

Animals↗

Autophagy in innate and adaptive immunity.

Recently, several groups made a nearly simultaneous discovery that autophagic degradation represents a previously unrecognized effector of innate and adaptive immunity. Despite the fact that hints to these phenomena hail back to earlier sporadic reports, autophagy has, until now, received attention primarily as a fundamental cellular homeostasis pathway, whereby cytoplasm portions get sequestered by the membrane for delivery to lysosomes. This process leads to the removal of damaged or surplus organelles and digests stable, long-lived macromolecules. Autophagy has been implicated previously in both health-promoting and disease-associated states, in cancer, neurodegeneration, development and aging. A protective role has recently been demonstrated in infectious diseases, which represents a previously unrecognized immune mechanism acting against intracellular microbes. This review reviews autophagy as an immune mechanism.

Animals↗