TY - THES A1 - Lazariotou, Maria T1 - Gentechnologische Reduktion der Expression des Autoantigens Glutamatdecarboxylase (GAD) in insulinproduzierenden Zellen des endokrinen Pankreas T1 - Suppression of the immunogenic potential of pancreatic beta-cells by genetic reduction of autoantigenic glutamic acid decarboxylase (GAD) expression N2 - Im Rahmen der vorliegenden Arbeit sollte geprüft werden ob durch Reduktion der Glutamatdecarboxylase (GAD) Expression eine Reduktion des autoimmunogenen Potenzials in insulinproduzierenden Beta-Zellen des endokrinen Pankreas erreicht werden kann. Aus der Literatur ist bekannt, dass GAD als Autoantigen eine zentrale Stellung bei der Induktion der T-Zell vermittelten Insulitis einnimmt. Der Prozess, welcher zur Beta-Zell-Apoptose des Typ 1 Diabetes führt, ist ein bislang wenig verstandener komplexer Vorgang. Ein besseres Verständnis dieses Prozesses könnte zur Prävention der Beta-Zell-Zerstörung in der frühen Phase des Typ 1 Diabetes beitragen. In den für die Untersuchungen verwendeten INS-1 Zellen werden die beiden Isoformen der GAD exprimiert. Durch einen antisense Ansatz sollte in INS-1 Zellen die GAD Expression beider Isoformen supprimiert werden. In dieser Arbeit wurden zwei Methoden zur gezielten Suppression der Expression des Autoantigens GAD65 etabliert. Es konnte ein antisense Klon identifiziert werden, bei dem die endogene GAD65 mRNA fast nicht mehr detektierbar war. Auf Protein Ebene, im Westernblot konnte dieses Ergebnis jedoch nicht bestätigt werden. Im zweiten Teil der Arbeit wurde die Funktion der INS-1 Zellen mit supprimierter GAD65 Expression charakterisiert. Dieser Punkt beinhaltet die Analyse der Expression von Genen, welche die Beta-Zell-Funktion definieren, die Glukose-abhängige Insulinsekretion sowie die Regulation der Zytokin-induzierten Apoptose. Dabei zeigte sich aus Daten der RT-PCR, dass die mRNAs von anderen Beta-Zell-spezifischen Genen wie GLUT2, Glukokinase, Proinsulin, IDX1 und Nkx6.1 in unveränderter Menge nachweisbar sind. Also bleibt die Funktion der INS-1 Beta-Zellen erhalten, da selbst durch forcierte Reduktion der Expression des Autoantigens GAD65 die Glukose-induzierte Insulinsekretionskapazität im Wesentlichen nicht beeinträchtigt wird. In vitro Untersuchungen zeigten eine unveränderte Sensitivität der Zytokin-induzierten Apoptose nach GAD65 Suppression in INS-1 Zellen. Die zuvor genannten Resultate und die Tatsache, dass die GAD wohl eines der wichtigsten Autoantigene im Rahmen der Immunpathogenese des Typ 1 Diabetes ist, stellen die Grundlage für die Generierung GAD-supprimierter transplantierbarer Beta-Zellen mit guter Transplantatfunktion dar. Im Hinblick auf eine mögliche therapeutische Anwendung bei der Behandlung dieser humanen Autoimmunerkrankung demonstrieren die vorliegenden Daten, dass im Rahmen einer Inselzelltransplantation die Verwendung von GAD-supprimierten Beta-Zellen bei der Transplantation in das endokrine Pankreas des Menschen zu einer Verminderung von Autoimmunreaktionen führen könnte. N2 - In the present study we investigated genetic engineering approaches for the suppression of autoantigenic GAD expression in insulin producing pancreatic beta-cells. The enzyme glutamic acid decarboxylase (GAD) represents a major autoantigen in the early immunopathogenesis of T-cell-mediated destruction of pancreatic beta-cells in type 1 diabetes mellitus. The mechanisms which trigger the apoptotic destruction of insulin producing pancreatic beta-cells leading to autoimmune diabetes are incompletely understood. The exact mechanisms remain to be clarified. The enzyme glutamic acid decarboxylase (GAD), is expressed in INS-1 pancreatic beta-cells in two distinct isoforms GAD65 and GAD67. Thus, strategies to suppress GAD expression in INS-1 cell lines were tested. Two methods for suppression of autoantigenic GAD65 expression were established. One clone overexpression of GAD65 antisense mRNA yielded an almost complete suppression of endogenous GAD65 mRNA expression. In the second part of this thesis the characterization of INS-1 cells with suppressed autoantigenic GAD65 mRNA expression including beta-cell specific gene expression, glucose-dependent insulin secretion, and cytokine induced-apoptosis was tested. Expression of glucose transporter type 2, glucokinase, preproinsulin, islet/duodenum homeo box 1 transcription factor (IDX), and NK homeodomain transcription factor (Nkx6.1) were characterized by reverse transcription polymerase chain reaction. No differences in the amount of these beta-cell specific genes could be detected between GAD65 suppressed INS-1 cell clones and controls. Moreover, reduced GAD65 expression does not affect insulin secretory capacity in INS-1 cells. Suppression of GAD65 expression in INS-1 cells does not alter sensitivity to cytokine-induced apoptosis. The data presented here suggest that suppression of GAD expression may thus provide a therapeutical approach to prevent recurrence of autoimmune beta-cell destruction in transplanted pancreatic beta-cells in type 1 diabetic patients. KW - Glutamat-Decarboxylase KW - Diabetes mellitus KW - Transplantation KW - Insulin KW - B-Zelle KW - glutamic acid decarboxylase KW - type 1 diabetes mellitus KW - transplantation KW - insulin KW - pancreatic beta-cells Y1 - 2008 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-30878 ER - TY - JOUR A1 - Viera, Jonathan Trujillo A1 - El-Merahbi, Rabih A1 - Nieswandt, Bernhard A1 - Stegner, David A1 - Sumara, Grzegorz T1 - Phospholipases D1 and D2 Suppress Appetite and Protect against Overweight JF - PLoS ONE N2 - Obesity is a major risk factor predisposing to the development of peripheral insulin resistance and type 2 diabetes (T2D). Elevated food intake and/or decreased energy expenditure promotes body weight gain and acquisition of adipose tissue. Number of studies implicated phospholipase D (PLD) enzymes and their product, phosphatidic acid (PA), in regulation of signaling cascades controlling energy intake, energy dissipation and metabolic homeostasis. However, the impact of PLD enzymes on regulation of metabolism has not been directly determined so far. In this study we utilized mice deficient for two major PLD isoforms, PLD1 and PLD2, to assess the impact of these enzymes on regulation of metabolic homeostasis. We showed that mice lacking PLD1 or PLD2 consume more food than corresponding control animals. Moreover, mice deficient for PLD2, but not PLD1, present reduced energy expenditure. In addition, deletion of either of the PLD enzymes resulted in development of elevated body weight and increased adipose tissue content in aged animals. Consistent with the fact that elevated content of adipose tissue predisposes to the development of hyperlipidemia and insulin resistance, characteristic for the pre-diabetic state, we observed that Pld1\(^{-/-}\) and Pld2\(^{-/-}\) mice present elevated free fatty acids (FFA) levels and are insulin as well as glucose intolerant. In conclusion, our data suggest that deficiency of PLD1 or PLD2 activity promotes development of overweight and diabetes. KW - enzyme regulation KW - insulin resistance KW - body weight KW - mouse models KW - bioenergetics KW - insulin KW - hypothalamus KW - adipose tissue Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-179729 VL - 11 IS - 6 ER - TY - JOUR A1 - Tauscher, Sabine A1 - Nakagawa, Hitoshi A1 - Völker, Katharina A1 - Werner, Franziska A1 - Krebes, Lisa A1 - Potapenko, Tamara A1 - Doose, Sören A1 - Birkenfeld, Andreas L. A1 - Baba, Hideo A. A1 - Kuhn, Michaela T1 - β Cell-specific deletion of guanylyl cyclase A, the receptor for atrial natriuretic peptide, accelerates obesity-induced glucose intolerance in mice JF - Cardiovascular Diabetology N2 - Background: The cardiac hormones atrial (ANP) and B-type natriuretic peptides (BNP) moderate arterial blood pressure and improve energy metabolism as well as insulin sensitivity via their shared cGMP-producing guanylyl cyclase-A (GC-A) receptor. Obesity is associated with impaired NP/GC-A/cGMP signaling, which possibly contributes to the development of type 2 diabetes and its cardiometabolic complications. In vitro, synthetic ANP, via GC-A, stimulates glucose-dependent insulin release from cultured pancreatic islets and β-cell proliferation. However, the relevance for systemic glucose homeostasis in vivo is not known. To dissect whether the endogenous cardiac hormones modulate the secretory function and/or proliferation of β-cells under (patho)physiological conditions in vivo, here we generated a novel genetic mouse model with selective disruption of the GC-A receptor in β-cells. Methods: Mice with a floxed GC-A gene were bred to Rip-CreTG mice, thereby deleting GC-A selectively in β-cells (β GC-A KO). Weight gain, glucose tolerance, insulin sensitivity, and glucose-stimulated insulin secretion were monitored in normal diet (ND)- and high-fat diet (HFD)-fed mice. β-cell size and number were measured by immunofluorescence-based islet morphometry. Results: In vitro, the insulinotropic and proliferative actions of ANP were abolished in islets isolated from β GC-A KO mice. Concordantly, in vivo, infusion of BNP mildly enhanced baseline plasma insulin levels and glucose-induced insulin secretion in control mice. This effect of exogenous BNP was abolished in β GC-A KO mice, corroborating the efficient inactivation of the GC-A receptor in β-cells. Despite this under physiological, ND conditions, fasted and fed insulin levels, glucose-induced insulin secretion, glucose tolerance and β-cell morphology were similar in β GC-A KO mice and control littermates. However, HFD-fed β GC-A KO animals had accelerated glucose intolerance and diminished adaptative β-cell proliferation. Conclusions: Our studies of β GC-A KO mice demonstrate that the cardiac hormones ANP and BNP do not modulate β-cell's growth and secretory functions under physiological, normal dietary conditions. However, endogenous NP/GC-A signaling improves the initial adaptative response of β-cells to HFD-induced obesity. Impaired β-cell NP/GC-A signaling in obese individuals might contribute to the development of type 2 diabetes. KW - cylic GMP KW - guanylyl cyclase-A KW - insulin KW - natriuretic peptides KW - obesity KW - β-cells Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-176322 VL - 17 IS - 103 ER -