967 resultados para INNATE IMMUNE-SYSTEM
Resumo:
In the first part of my thesis I studied the mechanism of initiation of the innate response to HSV-1. Innate immune response is the first line of defense set up by the cell to counteract pathogens infection and it is elicited by the activation of a number of membrane or intracellular receptors and sensors, collectively indicated as PRRs, Patter Recognition Receptors. We reported that the HSV pathogen-associated molecular patterns (PAMP) that activate Toll-like receptor 2 (TLR2) and lead to the initiation of innate response are the virion glycoproteins gH/gL and gB, which constitute the conserved fusion core apparatus across the Herpesvirus. Specifically gH/gL is sufficient to initiate a signaling cascade which leads to NF-κB activation. Then, by gain and loss-of-function approaches, we found that αvβ3-integrin is a sensor of and plays a crucial role in the innate defense against HSV-1. We showed that αvβ3-integrin signals through a pathway that concurs with TLR2, affects activation/induction of interferons type 1, NF-κB, and a polarized set of cytokines and receptors. Thus, we demonstrated that gH/gL is sufficient to induce IFN1 and NF-κB via this pathway. From these data, we proposed that αvβ3-integrin is considered a class of non-TLR pattern recognition receptors. In the second part of my thesis I studied the capacity of human mesenchymal stromal cells isolated by fetal membranes (FM-hMSCs) to be used as carrier cells for the delivery of retargeted R-LM249 virus. The use of systemically administrated carrier cells to deliver oncolytic viruses to tumoral targets is a promising strategy in oncolytic virotherapy. We observed that FM-hMSCs can be infected by R-LM249 and we optimized the infection condition; then we demonstrate that stromal cells sustain the replication of retargeted R-LM249 and spread it to target tumoral cells. From these preliminary data FM-hMSCs resulted suitable to be used as carrier cells
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L’osteomielite associata all’impianto è un processo infettivo a carico del tessuto osseo spesso accompagnato dalla distruzione dell’osso stesso. La patogenesi delle osteomieliti associate all’impianto si basa su due concetti fondamentali: l’internalizzazione del patogeno all’interno degli osteoblasti e la capacità dei batteri di formare il biofilm. Entrambi i meccanismi consentono infatti di prevenire l’eliminazione del batterio da parte delle difese immunitarie dell’ospite e di ostacolare l’azione della maggior parte degli antibiotici (che non penetrano e non agiscono pertanto su microrganismi intracellulari), così sostenendo ed alimentando l’infezione. Il saggio di invasione messo a punto su micropiastra ha consentito di investigare in modo approfondito e dettagliato il ruolo ed il peso dell’internalizzazione nella patogenesi delle infezioni ortopediche peri-protesiche causate da S. aureus, S. epidermidis, S. lugdunensis ed E. faecalis. Lo studio ha evidenziato che l’invasione delle cellule MG-63 non rappresenta un meccanismo patogenetico delle infezioni ortopediche associate all’impianto causate da S. epidermidis, S. lugdunensis ed E. faecalis; al contrario, in S. aureus la spiccata capacità invasiva rappresenta un’abile strategia patogenetica che consente al patogeno di sfuggire alla terapia sistemica e alla risposta immunitaria dell’ospite. È stato studiato inoltre il ruolo dell’immunità innata nella difesa contro il biofilm batterico. In seguito all’incubazione del biofilm opsonizzato di S. epidermidis con i PMN è stato possibile osservare la formazione delle NETs. Le NETs rappresentano ottime armi nella difesa contro il biofilm batterico, infatti le trappole sono in grado di limitare la diffusione batterica e quindi di confinare l’infezione. La comprensione del ruolo dell’internalizzazione nella patogenesi delle osteomieliti associate all’impianto e lo studio della risposta immunitaria innata a questo tipo di infezioni, spesso caratterizzate dalla presenza di biofilm, sono presupposti per identificare e affinare le migliori strategie terapeutiche necessarie ad eradicare l'infezione.
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Adhesion, immune evasion and invasion are key determinants during bacterial pathogenesis. Pathogenic bacteria possess a wide variety of surface exposed and secreted proteins which allow them to adhere to tissues, escape the immune system and spread throughout the human body. Therefore, extensive contacts between the human and the bacterial extracellular proteomes take place at the host-pathogen interface at the protein level. Recent researches emphasized the importance of a global and deeper understanding of the molecular mechanisms which underlie bacterial immune evasion and pathogenesis. Through the use of a large-scale, unbiased, protein microarray-based approach and of wide libraries of human and bacterial purified proteins, novel host-pathogen interactions were identified. This approach was first applied to Staphylococcus aureus, cause of a wide variety of diseases ranging from skin infections to endocarditis and sepsis. The screening led to the identification of several novel interactions between the human and the S. aureus extracellular proteomes. The interaction between the S. aureus immune evasion protein FLIPr (formyl-peptide receptor like-1 inhibitory protein) and the human complement component C1q, key players of the offense-defense fighting, was characterized using label-free techniques and functional assays. The same approach was also applied to Neisseria meningitidis, major cause of bacterial meningitis and fulminant sepsis worldwide. The screening led to the identification of several potential human receptors for the neisserial adhesin A (NadA), an important adhesion protein and key determinant of meningococcal interactions with the human host at various stages. The interaction between NadA and human LOX-1 (low-density oxidized lipoprotein receptor) was confirmed using label-free technologies and cell binding experiments in vitro. Taken together, these two examples provided concrete insights into S. aureus and N. meningitidis pathogenesis, and identified protein microarray coupled with appropriate validation methodologies as a powerful large scale tool for host-pathogen interactions studies.
Resumo:
Regulatorische T-Zellen sind essentiell für die Aufrechterhaltung der peripheren Toleranz. Hierbei sorgen diese hocheffektiven Suppressorzellen für ein immunologisches Gleichgewicht, indem sie Immunantworten gegen Autoantigene sowie harmlose Nahrungs- und Umweltantigene verhindern. Andererseits können diese bei chronischen Infekten Immunantworten reduzieren sowie effektive Antitumor-Immunantworten hemmen. Aufgrund ethischer Erwägungen ist die Erforschung regulatorischer T-Zellen und deren Rolle bei der Tumorentwicklung weitestgehend auf Mausmodelle oder humane in vitro oder ex vivo Analysen beschränkt. Um diese Limitationen zu überwinden und translationale immunologische Experimente zu ermöglichen, wurde hier ein humanisiertes Mausmodell verwendet. T- und B-Zell-defiziente NOD-scid IL2Rgammanull (NSG) Mäuse wurden mit humanen CD34+ hämatopoetischen Stammzellen aus Nabelschnurblut rekonstituiert. Aus diesen Stammzellen entstanden in den Tieren vielfältige humane Immunzellen. Im murinen Thymus der NSG Tiere entwickelten sich CD4+ und CD8+ einzelpositive T-Zellen, welche als funktionelle Effektorpopulationen in die Peripherie auswanderten. Humane regulatorische T-Zellen (CD4+ CD25+ Foxp3+ CD127-) entwickelten sich ebenfalls im murinen Thymus der Tiere und machten ca. 10% der humanen peripheren CD4+ T-Zellen in den Mäusen aus. Diese humanen regulatorischen T-Zellen zeigten vorwiegend einen HLA-DR+ Phänotyp, welcher mit höchster Suppressivität assoziiert ist. Weiter verhielten sich die regualtorischen T-Zellen anergisch und bewiesen ihre Funktionalität unter anderem durch die Inhibition der Proliferation von Effektor-T-Zellen in vitro. rnSubkutan injizierte Tumorzellen eines humanen undifferenzierten pleomorphen Sarkoms wurden in den humanisierten Mäusen nicht abgestoßen und der Tumor konnte, trotz Infiltration humaner Immunzellen, ungehindert wachsen. Als mögliche Ursache hierfür zeigte sich die selektive Akkumulation regulatorischer T-Zellen im Tumor. Zusammen mit dem erhöhten Anteil humaner regulatorischer T-Zellen in der Peripherie, weisen diese Beobachtungen deutliche Parallelen mit Befunden aus humanen Patienten auf. Dies bietet somit erstmalig die Option in vivo die Rolle humaner regulatorischer T-Zellen im undifferenzierten pleomorphen Sarkom zu analysieren. Die hier gezeigten Daten machen deutlich, dass es das humanisierte Mausmodell ermöglicht, die Entstehung und Funktion humaner regulatorischer T-Zellen in vivo zu analysieren, deren Bedeutung in klinisch relevanten Modellen zu charakterisieren und somit innovative Therapien zu etablieren.
Resumo:
Die Kontrolle der Infektion mit dem humanen Cytomegalovirus (HCMV) wird primär durch antivirale CD8 T-Zellen vermittelt. Während der Koevolution zwischen Virus und Wirt wurden Immunevasionsmechanismen entwickelt, die direkt die Expression der Peptid-MHC-Klasse-I-Komplexe an der Zelloberfläche beeinflussen und es dem Virus ermöglichen, der Immunkontrolle des Wirtes zu entkommen. Da HCMV und das murine CMV (mCMV) zum Teil analoge Strategien zur Modulation des MHC-Klasse-I-Antigen-Präsentationswegs entwickelt haben, wurde in der vorliegenden Arbeit auf das experimentelle Modell mit mCMV zurückgegriffen. Die für die Immunevasion verantwortlichen Genprodukte m04/gp34, m06/gp48 und m152/gp40 werden aufgrund ihres regulatorischen Einflusses auf die Antigenpräsentation als vRAPs (viral regulators of antigen presentation) bezeichnet. Diese interferieren mit dem Transport Peptid-beladener MHC-Klasse-I-Moleküle und reduzieren in ihrer konzertierten Wirkung die Präsentation viraler Peptide an der Zelloberfläche.rnDie Transplantation hämatopoietischer Zellen nach Immunoablation stellt eine etablierte Therapieform bei malignen hämatologischen Erkrankungen dar. Zwischen Immunoablation und der Rekonstitution des Immunsystems sind die Empfänger der transferierten Zellen stark immunsupprimiert und anfällig für eine CMV-Erkrankung bei Reaktivierung des Virus. Neben der Gabe antiviraler Medikamente ist der adoptive Transfer antiviraler CD8 T-Zellen eine vielversprechende Therapiemöglichkeit, um reaktivierende CMV zu kontrollieren, bis das körpereigene Immunsystem wieder funktionsfähig ist. Obwohl im murinen Modell sehr wohl etabliert, stellen im humanen System die eingeschränkte Wirkung und die Notwendigkeit der konsequenten Gabe hoher Zellzahlen gewisse logistische Schwierigkeiten dar, welche die Methode bisher von der klinischen Routine ausschließen.rnDas murine Modell sagte eine Rolle von IFN-γ voraus, da Depletion dieses Zytokins zu einer verminderten Schutzwirkung gegen die mCMV-Infektion führt.rnIm ersten Teil dieser Arbeit sollte ein möglicher inhibitorischer Effekt von m04 auf m152 untersucht werden, der bei der Rekombinanten Δm06W beobachtet wurde. Mit neu generierten Viren (Δm06L1+2) konnte dieser Effekt allerdings nicht bestätigt werden. Bei Δm06W fehlte jedoch eine höher N-glykosylierte Isoform des m152-Proteins. Um zu untersuchen, ob die N-Glykosylierung von m152 für seine Funktion notwendig ist, wurde ein rekombinantes Virus generiert, das in Folge einer Deletion aller 3 N-Glykosylierungssequenzen nur eine nicht-glykosylierte Isoform des m152-Proteins bilden kann. In Übereinstimmung mit der zwischenzeitlich publizierten Kristallstruktur das Komplexes von m152 und dem Liganden RAE-1 des aktivierenden NK-Zellrezeptors NKG2D konnte erstmals gezeigt werden, dass die Funktionen von m152 in der adaptiven und in der angeborenen Immunität auch von der nicht N-glykosylierten Isoform wahrgenommen werden können.rnIm zweiten Teil der Arbeit sollte mit Hilfe eines Sets an vRAP Deletionsmutanten der Einfluss von IFN γ auf die einzeln oder in Kombination exprimierten vRAPs untersucht werden. Es zeigte sich, dass Vorbehandlung der Zellen mit IFN-γ die Antigenprozessierung nach Infektion stark erhöht und die vRAPs dann nicht mehr in der Lage sind, die Präsentation aller Peptid-beladener MHC-Klasse-I-Komplexe zu verhindern. Des Weiteren konnte gezeigt werden, dass vorher nicht-schützende CD8 T-Zellen Schutz vermitteln können, wenn das Gewebe der Rezipienten konstitutiv mit IFN-γ versorgt wird. Die zusätzliche Gabe von IFN-γ stellt daher eine vielversprechende Möglichkeit dar, den adoptiven Transfer als Therapie in der klinischen Routine einzusetzen.
Resumo:
Neugeborene begegnen nach der Geburt einer Vielzahl von Mikroorganismen, wie Bakterien und Pilzen, wodurch nach und nach eine Besiedelung ihrer Haut und Schleimhäute stattfindet. In diesem Kontext muss jedoch verhindert werden, dass es zu schädliche Überreaktionen gegen die neuen Antigenen kommt. Die in der Kindheit erhöhte Infektionsanfälligkeit stellt somit eine essentielle Adaptation des neonatalen Immunsystems an die Herausforderungen der ersten Lebensphase dar. Dennoch wird das neonatale Immunsystem häufig als unreif bezeichnet, da insbesondere Th1-Antworten weniger stark ausfallen, als bei Erwachsenen. Während bekanntermaßen bei neonatalen DCs ein Defekt in der Produktion von IL-12 vorliegt, wird das ebenfalls als Th1-Zytokin geltende IL-27 von neonatalen DCs verstärkt gebildet, und dies bereits im unstimulierten Zustand der Zellen. rnDas Ziel der vorliegenden Arbeit war die Untersuchung des Einflusses von IL-27 auf die Kapazität der DCs, angeborene und adaptive Immunantworten zu modulieren. Da DCs den Rezeptor für IL-27 auch auf ihrer eigenen Oberfläche tragen, lag der Schwerpunkt der Untersuchungen auf den primären und sekundären autokrinen Wirkungen des IL-27. Hierbei wurde beobachtet, dass im Vergleich zu adulten DCs bei neonatalen DCs stärkere durch IL-27 ausgelöste autokrine Effekte auftraten. Die primäre autokrine Wirkung zeigte sich darin, dass IL-27 seine eigene Produktion, sowohl auf der Transkriptions- als auch auf der Proteinebene, anregte. Auf Proteinebene fielen diese Effekte bei Neonaten stärker aus, als bei Adulten.rnDarüber hinaus konnten, insbesondere bei neonatalen DCs, sekundäre autokrine Effekte von IL-27 bezüglich der Expression proinflammatorischer Zytokine, Chemokine, kostimulatorischer Moleküle und antiviraler Gene nachgewiesen werden. rnNeonatale DCs sind demnach nicht nur dazu in der Lage, größere Mengen an IL-27 zu bilden, sie können auch in vielfältiger Weise auf das Zytokin reagieren, was eine zentrale Rolle von IL-27 im Immungeschehen Neugeborener verdeutlicht. rn
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Humans harbour nearly 100 trillion intestinal bacteria that are essential for health. Millions of years of co-evolution have moulded this human-microorganism interaction into a symbiotic relationship in which gut bacteria make essential contributions to human nutrient metabolism and in return occupy a nutrient-rich environment. Although intestinal microorganisms carry out essential functions for their hosts, they pose a constant threat of invasion owing to their sheer numbers and the large intestinal surface area. In this Review, we discuss the unique adaptations of the intestinal immune system that maintain homeostatic interactions with a diverse resident microbiota.
Resumo:
We generated Fas-activated serine threonine phosphoprotein (FAST)-deficient mice (FAST(-/-)) to study the in vivo role of FAST in immune system function. In a model of house dust mite-induced allergic pulmonary inflammation, wild type mice develop a mixed cellular infiltrate composed of eosinophils, lymphocytes, and neutrophils. FAST(-/-) mice develop airway inflammation that is distinguished by the near absence of neutrophils. Similarly, LPS-induced alveolar neutrophil recruitment is markedly reduced in FAST(-/-) mice compared with wild type controls. This is accompanied by reduced concentrations of cytokines (TNF-alpha and IL-6 and -23) and chemoattractants (MIP-2 and keratinocyte chemoattractant) in bronchoalveolar lavage fluids. Because FAST(-/-) neutrophils exhibit normal chemotaxis and survival, impaired neutrophil recruitment is likely to be due to reduced production of chemoattractants within the pulmonary parenchyma. Studies using bone marrow chimeras implicate lung resident hematopoietic cells (e.g., pulmonary dendritic cells and/or alveolar macrophages) in this process. In conclusion, our results introduce FAST as a proinflammatory factor that modulates the function of lung resident hematopoietic cells to promote neutrophil recruitment and pulmonary inflammation.
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Chronic lung infections by Pseudomonas aeruginosa strains are a major cause of morbidity and mortality in cystic fibrosis (CF) patients. Although there is no clear evidence for a primary defect in the immune system of CF patients, the host is generally unable to clear P. aeruginosa from the airways. PTX3 is a soluble pattern recognition receptor that plays nonredundant roles in the innate immune response to fungi, bacteria, and viruses. In particular, PTX3 deficiency is associated with increased susceptibility to P. aeruginosa lung infection. To address the potential therapeutic effect of PTX3 in P. aeruginosa lung infection, we established persistent and progressive infections in mice with the RP73 clinical strain RP73 isolated from a CF patient and treated them with recombinant human PTX3. The results indicated that PTX3 has a potential therapeutic effect in P. aeruginosa chronic lung infection by reducing lung colonization, proinflammatory cytokine levels (CXCL1, CXCL2, CCL2, and IL-1β), and leukocyte recruitment in the airways. In models of acute infections and in in vitro assays, the prophagocytic effect of PTX3 was maintained in C1q-deficient mice and was lost in C3- and Fc common γ-chain-deficient mice, suggesting that facilitated recognition and phagocytosis of pathogens through the interplay between complement and FcγRs are involved in the therapeutic effect mediated by PTX3. These data suggested that PTX3 is a potential therapeutic tool in chronic P. aeruginosa lung infections, such as those seen in CF patients.
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Toll-like receptors are pattern recognition receptors with which hosts recognize pathogen-associated molecular patterns (PAMP). This recognition process is translated rapidly into a meaningful defense reaction. This form of innate host defense is preserved in the animal kingdom: invertebrates heavily depend on it; higher vertebrates also have an adaptive immune system. Both adaptive and innate immune systems are intertwined in that the former also depends on an intact innate recognition and response system. Members of the TLR system cover recognition of parasitic, bacterial or viral germs. Due to the constraints imposed by the necessity to recognize PAMP and to interact with downstream signaling molecules, the TLR system is relatively conserved in evolution. Nevertheless, subtle species differences have been reported for several mammalian TLR members. Examples of this will be given. In all mammalian species investigated, part of the coding sequence is available for the most important TLR members, thus allowing study of expression of these TLR members in various tissues by reverse-transcription polymerase chain reaction in its classical (RT-PCR) and quantitative real time RT-PCR (qRT-PCR) form. In some species, the whole coding sequences of the most important or even all TLR members are known. This allows construction of cDNA and transfection of common host cells, thus permitting functional studies. Extensive investigations were devoted to the study of non-synonymous single nucleotide polymorphisms. In a few cases, expression of a given amino acid in the extracellular (ligand-binding) portion of TLR members could be associated with infectious diseases. This will be discussed below.
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Different pathogens, such as Escherichia coli and Staphylococcus aureus, can be responsible for different outcomes of mastitis; that is, acute and severe or chronic and subclinical. These differences in the disease could be related to different mammary responses to the pathogens. The objective of this study was to determine if intramammary challenge with the endotoxins lipopolysaccharide (LPS), from E. coli, and lipoteichoic acid (LTA), from Staph. aureus, induce different immune responses in vivo in milk cells and mammary tissue. To provide a reference level for comparing the challenge and to show the different stimulation of the mammary immune system on a quantitatively similar level, dosages of LPS and LTA were chosen that induced an increase of somatic cells in milk to similar maxima. One udder quarter in each of 21 lactating dairy cows was challenged with 0.2 mug of LPS or 20 mug of LTA. From these quarters and from respective control quarters, milk cells or tissue biopsies were obtained at 0, 6, and 12h relative to the challenge to measure mRNA expression of tumor necrosis factor-alpha (TNFalpha), IL-1beta, IL-8, lactoferrin, and RANTES (regulated upon activation, normal T-cell expressed and secreted). Furthermore, if no biopsies were performed, hourly milk samples were taken for measurement of somatic cell count, lactate dehydrogenase (LDH), and TNFalpha. Somatic cell count increased in all treatments to similar maxima with LPS and LTA treatments. Concentrations of TNFalpha in milk increased with LPS but not with LTA. The activity of LDH in milk increased in both treatments and was more pronounced with LPS than with LTA. The mRNA expression of TNFalpha, IL-1beta, IL-8, and RANTES showed increases in milk cells, and LPS was a stronger inducer than LTA. Lactoferrin mRNA expression decreased in milk cells with LPS and LTA treatments. The measured factors did not change in either treatment in mammary tissue. Challenge of udder quarters with dosages of LPS and LTA that induce similar increases in SCC stimulate the appearance of different immune factor patterns. This dissimilar response to LPS and LTA may partly explain the different course and intensity of mastitis after infection with E. coli and Staph. aureus, respectively.
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Eosinophils play an important role in the mucosal immune system of the gastrointestinal tract under resting and under inflammatory conditions. Under steady-state conditions, the mucosa of the digestive tract is the only organ harboring a substantial number of eosinophils, which, if need be, get activated and exert several effector and immunoregulatory functions. The precise function of these late-phase inflammatory cells is not yet completely understood. Nevertheless, it has recently been demonstrated that lipopolysaccharides from gram-negative bacteria activate eosinophils to rapidly release mitochondrial DNA in the extracellular space. Released mitochondrial DNA and eosinophil granule proteins form extracellular structures able to bind and inactivate bacteria. These findings suggest a novel mechanism of eosinophil-mediated innate immune responses that might be important in maintaining the intestinal barrier function. Moreover, eosinophils also play a crucial role in several inflammatory conditions, such as intestinal infections, immune-mediated inflammations and hypersensitivity reactions. Under chronic inflammatory conditions, the ability of the eosinophils to induce repair can lead to pathological sequelae in the tissue, such as esophageal remodeling in eosinophilic esophagitis. It is established that the uncontrolled eosinophilic inflammation induces fibrosis, esophageal wall thickening and strictures leading to damage that results in a loss of esophageal function. One potential mechanism of this remodeling is so-called 'epithelial mesenchymal transition', which is triggered by eosinophils and is potentially reversible under successful anti-eosinophil treatment. Therefore, eosinophils may act either as friends or as foes, depending on the microenvironment.
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Thymic stromal lymphopoietin (TSLP) that is released by epithelial cells upon certain environmental triggers activates cells of the innate and adaptive immune system resulting in a preferential T helper 2 immune response. By releasing eosinophil extracellular traps (EETs), eosinophils achieve an efficient extracellular bacterial killing. Eosinophil extracellular traps release, however, has been observed in both infectious and noninfectious eosinophilic diseases. Here, we aim to investigate whether eosinophils generate functional EETs as a direct response to TSLP, and further to study the extra- and intracellular mechanisms involved in this process as well as TSLP receptor (TSLPR) expression by eosinophils in vitro and in vivo.
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Low somatic cell count (SCC) is a reliable indicator of high-quality milk free of pathogenic microorganisms. Thus, an important goal in dairy practice is to produce milk with low SCC. Selection for cows with low SCC can sometimes lead to extremely low SCC in single quarters. The cells in milk are, however, predominantly immune cells with important immune functions. To investigate the mammary immune competence of quarters with very low SCC, healthy udder quarters of cows with normal SCC of (40-100) x 10(3) cells/ml and very low SCC of < 20 x 10(3) cells/ml were challenged with lipopolysaccharide (LPS) from Escherichia coli. In the first experiment, SCC and cell viability after a challenge with 50 ng of LPS/quarter was investigated. In the second experiment, tumour necrosis factor alpha (TNF-alpha) concentration and lactate dehydrogenase (LDH) activity in milk, and mRNA expression of various innate immune factors in milk cells were measured after a challenge with 100 mug LPS/quarter. LPS challenge induced an increase of SCC. SCC levels reached were higher in quarters with normal SCC and maximum SCC was reached 1 h earlier than in very low SCC quarters. The increase of TNF-alpha concentrations in milk in response to LPS challenge was lower in quarters with very low SCC than in quarters with normal SCC. The viability of cells and the LDH activity in milk increased in response to LPS challenge, however, without a difference between the groups. The mRNA expression of IL-1beta and IL-8 was increased in milk cells at 12 h after LPS challenge, whereas that of TNF-alpha and lactoferrin was not increased at the measured time points (12, 24 and 36 h after LPS challenge). No differences of mRNA expression of measured immune factors between normal and very low SCC samples were detected. The study showed that udder quarters with very low SCC responded with a less marked increase of SCC compared with quarters with normal SCC. This difference corresponded with simultaneously lower TNF-alpha concentrations in milk. However, the immune competence of the cells themselves based on mRNA expression of TNF-alpha, IL-8, IL-1beta, and lactoferrin, did not differ. The results may indicate that very low SCC can impair the immune competence of udder quarters, because the immune response in udder quarters with lower SCC is less efficient as fewer cells contribute to the production of immunoregulators.
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Environmental changes affecting the relationship between the developing immune system and microbial exposure have been implicated in the epidemic rise of allergic disease in developed countries. While early developmental differences in T cell function are well-recognised, there is now emerging evidence that this is related to developmental differences in innate immune function. In this study we sought to examine if differences associated with innate immunity contribute to the altered immune programming recognised in allergic children. Here, we describe for the first time, the association of carriage of the T allele of the tagging single nucleotide polymorphism rs12979860 3 kb upstream of IL28B, encoding the potent innate immune modulator type III interferon lambda (IFN-λ3), and allergy in children (p = 0.004; OR 4.56). Strikingly, the association between rs12979860 genotype and allergic disease is enhanced in girls. Furthermore, carriage of the T allele at rs12979860 correlates with differences in the pro-inflammatory profile during the first five years of life suggesting this contributes to the key differences in subsequent innate immune development in children who develop allergic disease. In the context of rising rates of disease, these immunologic differences already present at birth imply very early interaction between genetic predisposition and prenatal environmental influences.