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Die Pankreatitis ist eine relativ häufige gastrointestinale Erkrankung deren Pathomechanismus bisher nicht vollständig geklärt wurde. Besonders die Rolle des Immunsystems scheint einen wichtigen Einfluss auf den Verlauf dieser Erkrankung zu haben. Gut charakterisiert ist bereits die initiale lokale Immunantwort. Zerstörte Azinuszellen setzten DAMPs (engl. damage-associated molecular pattern) frei, die wiederum eine Infiltration von Zellen des angeborenen Immunsystems in das Pankreasgewebe induzieren und aktivieren. Zu diesen Zellen gehören Makrophagen und Neutrophile. T-Zellen, welche zum adaptiven Immunsystem gehören, wandern nicht in das Pankreas ein, sie werden jedoch systemisch aktiviert. Vor allem Th2-Zellen (T-Helferzellen Typ2) und Tregs (regulatorische T-Zellen) werden im Verlauf einer Pankreatitis induziert. In dieser Arbeit konnte gezeigt werden, dass Tregs während einer Pankreatitis nicht nur aktiviert werden, sondern ebenfalls eine höhere suppressive Kapazität besitzen.
Die genaue Rolle dieser antiinflammatorischen Immunantwort und im speziellen der Einfluss von Tregs sollte in dieser Arbeit mit Hilfe von DEREG Mäusen (engl. depletion of regulatory T cells) genauer charakterisiert werden. Durch gezielte Depletion von Tregs mittels DT (Diphtheria Toxin) kann die Auswirkung der Abwesenheit von Tregs im Pankreatitis-Mausmodell untersucht werden. Im akuten Modell kommt es zu einem systemischen Anstieg der T-Effektor-Immunantwort. Die Depletion von Tregs hat zudem eine Auswirkung auf den Schweregrad der Erkrankung. Unter Abwesenheit von Tregs sinkt im akuten Pankreatitis-Modell der pankreatische Schaden. Als eine mögliche Ursache konnte die Dysbalance der Treg/Th17 regulierten intestinalen Immunantwort identifiziert werden, welche zu einer Zerstörung der Darmbarriere führt und eine Translokation kommensaler Mikroorganismen ins nekrotische Pankreasgewebe initiiert.
Im chronischen Pankreatitis-Modell konnte gezeigt werden, dass die T-Zelldifferenzierung einen wichtigen Einfluss auf die Makrophagenpolarisation hat und dadurch den Verlauf der Chronifizierung der Pankreatitis mitbestimmt. Eine Depletion von Tregs in der chronischen Pankreatitis führt zu einer ungebremsten Th2-Antwort. Über die freigesetzten Zytokine, wie z.B. IL4, wird die Makrophagenpolarisation in Richtung der antiinflammatorischen Makrophagen verschoben. Diese Makrophagen induzieren über IL10 und TGFβ die Aktivierung ruhender PSCs (pankreatische Sternzelle) und regulieren somit Regenerationsprozesse. Kommt es zu einer Dysregulation dieser Makrophagenpolarisation, kann dieser Regenerationsprozess unkontrolliert erfolgen. Als Folge dessen kommt es nicht nur zu einer gesteigerten Aktivierung von PSCs, sondern auch zu einer exzessiven Kollagenproduktion, welche zu einer pathologische Fibrose führt. Die Ergebnisse dieser Arbeit zeigen deutlich, dass Tregs einen entscheidenden Einfluss auf die Gewebeumstrukturierung des Pankreas haben. Eine Depletion von Tregs im chronischen Pankreatitis-Modell induziert über die Aktivierung antiinflammatorischer Makrophagen eine Expression von PSCs. Diese unkontrollierte Induktion führt zu einer gesteigerten Kollagenproduktion und Bildung von fibrotischem Pankreasgewebe unter gleichzeitigem Verlust von Azinuszellen. Diese exzessive Gewebeumstrukturierung resultiert in einem Funktionsverlust des exokrinen Gewebes. Mäuse deren Tregs depletiert wurden verloren im chronischen Pankreatitis-Modell bereits nach 14 Tagen signifikant an Gewicht.
Weitere wichtige Faktoren, die im Regenerationsprozess eine Rolle spielen, sind Wachstumsfaktoren. Genexpressionsanalysen und histologische Färbungen verdeutlichen, dass Tregs die Induktion von Wachstumsfaktoren mitbestimmen.
Zusammengefasst bedeutet dies, dass Tregs im akuten Pankreatitis-Modell die T-Effektor-Immunantwort supprimieren und dadurch den Verlauf der Pankreatitis verschlechtern. Im chronischen Pankreatitis-Modell sorgen Tregs dahingegen für eine Balance der Makrophagenpolarisation, und regulieren den Remodeling-Prozess, indem sie z.B. die Bildung fibrotischem Gewebes limitieren.
Acute pancreatitis (AP) is a major, globally increasing gastrointestinal disease and a biliary origin is the most common cause. However, the effects of bile acids (BAs), given systemically, on the pancreas and on disease severity remains elusive. In this study, we have investigated the roles of different circulating BAs in animal models for AP to elucidate their impact on disease severity and the underlying pathomechanisms. BAs were incubated on isolated acini and AP was induced through repetitive injections of caerulein or L-arginine; pancreatic duct ligation (PDL); or combined biliopancreatic duct ligation (BPDL). Disease severity was assessed using biochemical and histological parameters. Serum cholecystokinin (CCK) concentrations were determined via enzyme immunoassay. The binding of the CCK1 receptor was measured using fluorescence-labeled CCK. In isolated acini, hydrophobic BAs mitigated the damaging effects of CCK. The same BAs further enhanced pancreatitis in L-arginine- and PDL-based pancreatitis, whereas they ameliorated pancreatic damage in the caerulein and BPDL models. Mechanistically, the binding affinity of the CCK1 receptor was significantly reduced by hydrophobic BAs. The hydrophobicity of BAs and the involvement of CCK seem to be relevant in the course of AP. Systemic BAs may affect the severity of AP by interfering with the CCK1 receptor.
Objective
Acute pancreatitis (AP) is an inflammatory disorder, the severe form of which is burdened with multi-organ dysfunction and high mortality. The pathogenesis of life –threatening organ complications, such as respiratory and renal failure, is unknown.
Design
Organ dysfunction was investigated in a mouse model of AP. The influence of monocytes and neutrophils on multi organ dysfunction syndrome (MODS) was investigated in vivo by antibody depletion. Using real-time-fluorescence and deformability-cytometry (RT-DC) analysis we determined the mechanical properties of neutrophils and monocytes during AP. Furthermore, blood samples of pancreatitis patients were used to characterize severity-dependent chemokine profiles according to the revised Atlanta classification.
Results
Similar to AP in humans, severe disease in the mouse model associates with organ dysfunction mainly of lung and kidney, which is triggered by a mobilisation of Ly6g-/CD11b+/Ly6c hi monocytes, but not of Ly6g+/CD11b+ neutrophils. Monocyte depletion by anti-CCR2 antibody treatment ameliorated lung function (oxygen consumption) without interfering with the systemic immune response. RT-DC analysis of circulation monocytes showed a significant increase in cell size during SAP, but without a compensatory increase in elasticity. Patient chemokine profiles show a correlation of AP severity with monocyte attracting chemokines like MCP-1 or MIG and with leukocyte mobilisation.
Conclusion
In AP, the physical properties of mobilized monocytes, especially their large size, result in an obstruction of the fine capillary systems of the lung and of the kidney glomeruli. A selective depletion of monocytes may represent a treatment strategy for pancreatitis as well as for other inflammation-related disorders.
Acute pancreatitis (AP), which is characterized by self-digestion of the pancreas by its own prematurely activated digestive proteases, is a major reason for hospitalization. The autodigestive process causes necrotic cell death of pancreatic acinar cells and the release of damage associated molecular pattern which activate macrophages and drive the secretion of pro-inflammatory cytokines. The MYD88/IRAK signaling pathway plays an important role for the induction of inflammatory responses. Interleukin-1 receptor associated kinase-3 (IRAK3) is a counter-regulator of this pathway. In this study, we investigated the role of MYD88/IRAK using Irak3−/− mice in two experimental animal models of mild and severe AP. IRAK3 is expressed in macrophages as well as pancreatic acinar cells where it restrains NFκB activation. Deletion of IRAK3 enhanced the migration of CCR2+ monocytes into the pancreas and triggered a pro-inflammatory type 1 immune response characterized by significantly increased serum levels of TNFα, IL-6, and IL-12p70. Unexpectedly, in a mild AP model this enhanced pro-inflammatory response resulted in decreased pancreatic damage, whereas in a severe AP model, induced by partial pancreatic duct ligation, the increased pro-inflammatory response drives a severe systemic inflammatory response syndrome (SIRS) and is associated with an increased local and systemic damage. Our results indicate that complex immune regulation mechanism control the course of AP, where moderate pro-inflammation not necessarily associates with increased disease severity but also drives tissue regenerative processes through a more effective clearance of necrotic acinar cells. Only when the pro-inflammation exceeds a certain systemic level, it fuels SIRS and increases disease severity.
Chronic pancreatitis (CP) is characterized by chronic inflammation and the progressive fibrotic replacement of exocrine and endocrine pancreatic tissue. We identify Treg cells as central regulators of the fibroinflammatory reaction by a selective depletion of FOXP3-positive cells in a transgenic mouse model (DEREG-mice) of experimental CP. In Treg-depleted DEREG-mice, the induction of CP results in a significantly increased stroma deposition, the development of exocrine insufficiency and significant weight loss starting from day 14 after disease onset. In CP, FOXP3+CD25+ Treg cells suppress the type-2 immune response by a repression of GATA3+ T helper cells (Th2), GATA3+ innate lymphoid cells type 2 (ILC2) and CD206+ M2-macrophages. A suspected pathomechanism behind the fibrotic tissue replacement may involve an observed dysbalance of Activin A expression in macrophages and of its counter regulator follistatin. Our study identified Treg cells as key regulators of the type-2 immune response and of organ remodeling during CP. The Treg/Th2 axis could be a therapeutic target to prevent fibrosis and preserve functional pancreatic tissue.
Acute pancreatitis (AP) is one of the most common inflammatory diseases of the gastrointestinal tract and a steady rising diagnosis for inpatient hospitalization. About one in four patients, who experience an episode of AP, will develop chronic pancreatitis (CP) over time. While the initiating causes of pancreatitis can be complex, they consistently elicit an immune response that significantly determines the severity and course of the disease. Overall, AP is associated with a significant mortality rate of 1-5%, which is caused by either an excessive pro-inflammation, or a strong compensatory inhibition of bacterial defense mechanisms which lead to a severe necrotizing form of pancreatitis. At the time-point of hospitalization the already initiated immune response is the only promising common therapeutic target to treat or prevent a severe disease course. However, the complexity of the immune response requires fine-balanced therapeutic intervention which in addition is limited by the fact that a significant proportion of patients is in danger of development or progress to recurrent and chronic disease. Based on the recent literature we survey the disease-relevant immune mechanisms and evaluate appropriate and promising therapeutic targets for the treatment of acute and chronic pancreatitis.
Objective: In acute pancreatitis (AP), bacterial translocation and subsequent infection of pancreatic necrosis are the main risk factors for severe disease and late death. Understanding how immunological host defence mechanisms fail to protect the intestinal barrier is of great importance in reducing the mortality risk of the disease. Here, we studied the role of the Treg/Th17 balance for maintaining the intestinal barrier function in a mouse model of severe AP.
Design: AP was induced by partial duct ligation in C57Bl/6 or DEREG mice, in which regulatory T-cells (Treg) were depleted by intraperitoneal injection of diphtheria toxin. By flow cytometry, functional suppression assays and transcriptional profiling we analysed Treg activation and characterised T-cells of the lamina propria as well as intraepithelial lymphocytes (IELs) regarding their activation and differentiation. Microbiota composition was examined in intestinal samples as well as in murine and human pancreatic necrosis by 16S rRNA gene sequencing.
Results: The prophylactic Treg-depletion enhanced the proinflammatory response in an experimental mouse model of AP but stabilised the intestinal immunological barrier function of Th17 cells and CD8+/γδTCR+ IELs. Treg depleted animals developed less bacterial translocation to the pancreas. Duodenal overgrowth of the facultative pathogenic taxa Escherichia/Shigella which associates with severe disease and infected necrosis was diminished in Treg depleted animals.
Conclusion: Tregs play a crucial role in the counterbalance against systemic inflammatory response syndrome. In AP, Treg-activation disturbs the duodenal barrier function and permits translocation of commensal bacteria into pancreatic necrosis. Targeting Tregs in AP may help to ameliorate the disease course.