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The pancreas is the key organ for the maintenance of euglycemia. This is regulated in particular by α-cell-derived glucagon and β-cell-derived insulin, which are released in response to nutrient deficiency and elevated glucose levels, respectively. Although glucose is the main regulator of insulin secretion, it is significantly enhanced by various potentiators.
Platelets are anucleate cell fragments in the bloodstream that are essential for hemostasis to prevent and stop bleeding events. Besides their classical role, platelets were implemented to be crucial for other physiological and pathophysiological processes, such as cancer progression, immune defense, and angiogenesis. Platelets from diabetic patients often present increased reactivity and basal activation. Interestingly, platelets store and release several substances that have been reported to potentiate insulin secretion by β-cells. For these reasons, the impact of platelets on β-cell functioning was investigated in this thesis.
Here it was shown that both glucose and a β-cell-derived substance/s promote platelet activation and binding to collagen. Additionally, platelet adhesion specifically to the microvasculature of pancreatic islets was revealed, supporting the hypothesis of their influence on glucose homeostasis. Genetic or pharmacological ablation of platelet functioning and platelet depletion consistently resulted in reduced insulin secretion and associated glucose intolerance. Further, the platelet-derived lipid fraction was found to enhance glucose-stimulated insulin secretion, with 20-hydroxyeicosatetraenoic acid (20-HETE) and possibly also lyso-precursor of platelet-activating factor (lysoPAF) being identified as crucial factors. However, the acute platelet-stimulated insulin secretion was found to decline with age, as did the levels of platelet-derived 20-HETE. In addition to their direct stimulatory effect on insulin secretion, specific defects in platelet activation have also been shown to affect glucose homeostasis by potentially influencing islet vascular development. Taking together, the results of this thesis suggest a direct and indirect mechanism of platelets in the regulation of insulin secretion that ensures glucose homeostasis, especially in young individuals.
Diabetes mellitus is an incurable, metabolic disease, which is associated with severe long-term complications. The in vitro generation of pancreatic β-cells from human induced pluripotent stem cells (hiPSCs) represent a promising strategy for a curative therapy of diabetes mellitus. However, current differentiation strategies largely fail to produce functional β-cells in vitro and require an additional in vivo transplantation to achieve terminal maturation. Previous studies demonstrated a beneficial effect of the extracellular matrix (ECM) on the survival and sustained function of adult, isolated islets of Langerhans. This raises the question whether organ-specific cell-ECM interactions might represent the missing link driving the final stage of β-cell development. In order to address this issue, this study investigated the impact of the pancreas ECM on in vitro β-cell differentiation and its use for the establishment of a pancreatic endocrine organ model.
To this purpose, a pancreas-specific ECM scaffolds (PanMa) was derived from porcine pancreata using whole organ decellularization with Sodium Deoxycholate. In a first step, the generated PanMa was thoroughly characterized using (immuno-) histological stainings, scanning electron microscopy and DNA quantification as well as perfusion and recellularization experiments with endothelial cells. Based on these data, a scoring system (PancScore) for a standardized PanMa generation was developed. Next, the generated PanMa was tested for the presence of tissue-specific ECM features. Therefore, the biophysical and physico-structural characteristics, such as rigidity, porosity and hygroscopy were analyzed using rheological measurements, particle diffusion analyses as well as a water evaporation assay and compared to the properties of ECM scaffolds derived from porcine small intestine (SISser) and lung (LungMa) to examine organ-specific scaffold cues. Following the thorough scaffold characterization, the impact of the PanMa on pluripotency and early development of hiPSC was studied. To this purpose, gene and protein expression of hiPSCs during maintenance culture and spontaneous differentiation on the PanMa were assessed. In a next step, the impact of the PanMa on the pancreatic endocrine differentiation of hiPSCs was tested. Therefore, the PanMa was used as a liquid media supplement or as a solid scaffold during the directed differentiation of hiPSC towards either pancreatic hormone-expressing cells (Rezania et al. 2012; Rezania et al. 2014) or maturing β-cells (Rezania et al. 2014). The impact of the PanMa on the generated cells was examined by gene expression analysis, immunohistochemical staining of important stage markers, as well as glucose stimulated insulin secretion assays. In a last part of this study, the potential of the PanMa for the prolonged culture of hiPSC derived endocrine cells for the establishment of an in vitro organ model of the endocrine pancreas was examined. Therefore, a PanMa-derived hydrogel was generated and used for the encapsulation and culture of hiPSC-derived hormone-expressing cells (HECs). The influence of the PanMa-hydrogel culture was analyzed on gene, protein and functional level by gene expression analysis, immunohistochemical stainings and glucose stimulated insulin secretion.
Whole organ decellularization resulted in the generation of an acellular PanMa scaffold, with low amounts of residual DNA and a preserved ECM micro- and ultrastructure, including important ECM components, such as collagen I, III and IV. Furthermore, the PanMa maintained an intact vessel system and was verified as cytocompatible as demonstrated by the successful recellularization of the arterial system with human endothelial cells. In comparison to SISser and LungMa, the PanMa was characterized as a relative soft, hygroscopic scaffold with a collagen-fiber based structure. Furthermore, the findings indicate that the ECM-specific properties have a relevant effect on the stem cell character and early multi-lineage decisions of hiPSCs. In this regard, maintenance of hiPSCs on the PanMa resulted in a slightly changed expression of pluripotency genes (OCT4, SOX2 and NANOG) and a weak immunohistochemical signal for NANOG protein, indicating a PanMa-dependent impact on hiPSC pluripotency. Strikingly, this presumption was corroborated by the finding that culture on the PanMa promoted an endodermal development of hiPSCs during spontaneous differentiation. In line with that, pancreatic differentiation of hiPSC on both the PanMa and SISser resulted in a significant decrease of glucagon and somatostatin gene expression as well as an unaltered insulin expression, suggesting an ECM-driven suppression of the development of non β-cell endocrine cells. However, this change did not result in an improved glucose stimulated insulin secretion of the generated HECs. Moreover, use of the PanMa as a hydrogel allowed prolonged culture of these cells in a defined culture system. HECs were viable after 21 days of culture, however already showed an altered islet morphology as well as a slightly decreased glucose stimulated insulin secretion.
Altogether, this study demonstrates a relevant biological effect of tissue specific ECM cues on the in vitro differentiation of hiPSCs. More specifically, the data indicate an involvement of the ECM in the endocrine commitment of hiPSC-derived pancreatic cells during directed differentiation highlighting the ECM as an important regulator of pancreatic development. Collectively, these findings emphasize the relevance of the ECM for the fabrication of functional hiPSC-derived cell types and suggest a much stronger consideration of organ specific ECM cues for tissue engineering approaches as well as clinical translation in regenerative medicine.
The pancreas and the small intestine are pivotal organs acting in close synergism to regulate glucose metabolism. After absorption and processing of dietary glucose within the small intestine, insulin and glucagon are released from pancreatic islet cells to maintain blood glucose homeostasis. Malfunctions affecting either individual, organ-specific functions or the sophisticated interplay of both organs can result in massive complications and pathologic conditions. One of the most serious metabolic diseases of our society is diabetes mellitus (DM) that is hallmarked by a disturbance of blood glucose homeostasis. Type 1 (T1DM) and type 2 (T2DM) are the main forms of the disease and both are characterized by chronic hyperglycemia, a condition that evokes severe comorbidities in the long-term. In the past, several standard treatment options allowed a more or less adequate therapy for diabetic patients. Albeit there is much effort to develop new therapeutic interventions to treat diabetic patients in a more efficient way, no cure is available so far. In view of the urgent need for alternative treatment options, a more systemic look on whole organ systems, their biological relation and complex interplay is needed when developing new therapeutic strategies for DM.
T1DM is hallmarked by an autoimmune-mediated destruction of the pancreatic β-cell mass resulting in a complete lack of insulin that is in most patients restored by applying a life-long recombinant insulin therapy. Therefore, novel regenerative medicine-based concepts focus on the derivation of bioartificial β-like cells from diverse stem cell sources in vitro that survive and sustain to secrete insulin after implantation in vivo. In this context, the first part of this thesis analyzed multipotent intestinal stem cells (ISCs) as alternative cell source to derive bioartificial, pancreatic β-like cells in vitro. From a translational perspective, intestinal stem cells pose a particularly attractive cell source since intestinal donor tissues could be obtained via minimal invasive endoscopy in an autologous way. Furthermore, intestinal and pancreatic cells both derive from the same developmental origin, the endodermal gut tube, favoring the differentiation process towards functional β-like cells. In this study, pancreas-specific differentiation of ISCs was induced by the ectopic expression of the pancreatic transcription factor 1 alpha (Ptf1a), a pioneer transcriptional regulator of pancreatic fate. Furthermore, pancreatic lineage-specific culture media were applied to support the differentiation process. In general, ISCs grow in vitro in a 3D Matrigel®-based environment. Therefore, a 2D culture platform for ISCs was established to allow delivery and ectopic expression of Ptf1a with high efficiency. Next, several molecular tools were applied and compared with each other to identify the most suitable technology for Ptf1a delivery and expression within ISCs as well as their survival under the new established 2D conditions. Success of differentiation was investigated by monitoring changes in cellular morphology and induction of pancreatic differentiation-specific gene expression profiles. In summary, the data of this project part suggest that Ptf1a harbors the potential to induce pancreatic differentiation of ISCs when applying an adequate differentiation media. However, gene expression analysis indicated rather an acinar lineage-determination than a pancreatic β-cell-like specification. Nevertheless, this study proved ISCs not only as interesting stem cell source for the generation of pancreatic cell types with a potential use in the treatment of T1DM but alsoPtf1a as pioneer factor for pancreatic differentiation of ISCs in general.
Compared to T1DM, T2DM patients suffer from hyperglycemia due to insulin resistance. In T2DM management, the maintenance of blood glucose homeostasis has highest priority and can be achieved by drugs affecting the stabilization of blood glucose levels. Recent therapeutic concepts are aiming at the inhibition of the intestinal glucose transporter Na+-D-Glucose cotransporter 1 (SGLT1). Pharmacological inhibition of SGLT1 results in reduced postprandial blood glucose levels combined with a sustained and increased Glucagon-like peptide 1 (GLP-1) secretion. So far, systemic side effects of this medication have not been addressed in detail. Of note, besides intestinal localization, SGLT1 is also expressed in various other tissues including the pancreas. In context of having a closer look also on the interplay of organs when developing new therapeutic approaches for DM, the second part of this thesis addressed the effects on pancreatic islet integrity after loss of SGLT1. The analyses comprised the investigation of pancreatic islet size, cytomorphology and function by the use of a global SGLT1 knockout (SGLT1-/-) mouse model. As SGLT1-/- mice develop the glucose-galactose malabsorption syndrome when fed a standard laboratory chow, these animals derived a glucose-deficient, fat-enriched (GDFE) diet. Wildtype mice on either standard chow (WTSC) or GDFE (WTDC) allowed the discrimination between diet- and knockout-dependent effects. Notably, GDFE fed mice showed decreased expression and function of intestinal SGLT1, while pancreatic SGLT1 mRNA levels were unaffected. Further, the findings revealed increased isled sizes, reduced proliferation- and apoptosis rates as well as an increased α-cell and reduced β-cell proportion accompanied by a disturbed cytomorphology in islets when SGLT1 function is lost or impaired. In addition, pancreatic islets were dysfunctional in terms of insulin- and glucagon-secretion. Moreover, the release of intestinal GLP-1, an incretin hormone that stimulates insulin-secretion in the islet, was abnormal after glucose stimulatory conditions. In summary, these data show that intestinal SGLT1 expression and function is nutrient dependent. The data obtained from the islet studies revealed an additional and new role of SGLT1 for maintaining pancreatic islet integrity in the context of structural, cytomorphological and functional aspects. With special emphasis on SGLT1 inhibition in diabetic patients, the data of this project indicate an urgent need for analyzing systemic side effects in other relevant organs to prove pharmacological SGLT1 inhibition as beneficial and safe.
Altogether, the findings of both project parts of this thesis demonstrate that focusing on the molecular and cellular relationship and interplay of the small intestine and the pancreas could be of high importance in context of developing new therapeutic strategies for future applications in DM patients.
Purpose: Early identification of aggressive disease could improve decision-support in pancreatic neuroendocrine tumor (pNET) patients prior to peptide receptor radionuclide therapy (PRRT). The prognostic value of intratumoral textural features (TF) determined by baseline somatostatin receptor (SSTR)-PET before PRRT was analyzed.
Procedures: 31 patients with G1/G2 pNET were enrolled (G2, n=23/31). Prior to PRRT with [\(^{177}\)Lu]DOTATATE (mean, 3.6 cycles), baseline SSTR-PET/CT was performed. By segmentation of 162 (median per patient, 5) metastases, intratumoral TF were computed. The impact of conventional PET parameters (SUV\(_{mean/max}\)), imaging-based TF as well as clinical parameters (Ki67, CgA) for prediction of both progression-free (PFS) and overall survival (OS) after PRRT was evaluated.
Results: Within a median follow-up of 3.7y, tumor progression was detected in 21 patients (median, 1.5y) and 13/31 deceased (median, 1.9y). In ROC analysis, the TF Entropy, reflecting derangement on a voxel-by-voxel level, demonstrated predictive capability for OS (cutoff=6.7, AUC=0.71, p=0.02). Of note, increasing Entropy could predict a longer survival (>6.7, OS=2.5y, 17/31), whereas less voxel-based derangement portended inferior outcome (<6.7, OS=1.9y, 14/31). These findings were supported in a G2 subanalysis (>6.9, OS=2.8y, 9/23 vs. <6.9, OS=1.9y, 14/23). Kaplan-Meier analysis revealed a significant distinction between high- and low-risk groups using Entropy (n=31, p<0.05). For those patients below the ROC-derived threshold, the relative risk of death after PRRT was 2.73 (n=31, p=0.04). Ki67 was negatively associated with PFS (p=0.002); however, SUVmean/max failed in prognostication (n.s.).
Conclusions: In contrast to conventional PET parameters, assessment of intratumoral heterogeneity demonstrated superior prognostic performance in pNET patients undergoing PRRT. This novel PET-based strategy of outcome prediction prior to PRRT might be useful for patient risk stratification.
Die Insulinbiosynthese in ß-Zellen des endokrinen Pankreas wird auf transkriptioneller Ebene durch die Aktivität des Insulingenpromotors reguliert. Die detaillierte Analyse der Aktivität des humanen Insulingenpromotors erfolgte bisher nur in speziesdifferenten ß-Zelllinien, da glukosesensitive ß-Zelllinien aus dem Pankreas des Menschen nicht verfügbar sind. Es ist jedoch bekannt, dass signifikante Unterschiede in der transkriptionellen Regulation der Genexpression in unterschiedlichen Spezies existieren. Deshalb wurde im Rahmen dieser Arbeit eine Methode entwickelt, mit deren Hilfe die spezifische Untersuchung der Regulation des humanen Insulingenpromotors hochsensitiv in primären humanen ß-Zellen des endokrinen Pankreas des Menschen möglich ist. Dazu wurde ein Vektor kloniert, der das SEAP (secreted alkaline phosphatase)-Reportergen unter der Kontrolle des -336 bp langen humanen Insulingenpromotors enthält. Im Laufe verschiedener Transfektionsexperimente mit dem Vektor p-336hInsP-SEAP, pSEAP2-Control (Positivkontrolle) und pSEAP2-Basic (Negativkontrolle) sowohl in INS-1-ß-Zellen, in beta-TC3-Zellen als auch in primären humanen ß-Zellen, zeigten sich in den luminometrisch bestimmten SEAP-Aktivitäten, die als Maß für die Aktivität des humanen Insulingenpromotors dienen, deutliche Unterschiede zwischen den transkriptionellen Aktivitäten der einzelnen Vektoren. Dieses System eignet sich also ausgezeichnet für die hochsensitive Analyse der Insulingenpromotoraktiviät. Zur detaillierteren Analyse wurden 5’-Deletionskonstrukte des Vektors p-336hInsP-SEAP konstruiert und damit INS-1- und beta-TC3-Zellen transient transfiziert. In beiden Zelllinien wurden Experimente bei unterschiedlichen Glukosekonzentrationen durchgeführt, um daraus Rückschlüsse auf die Glukoseresponsivität des humanen Insulingenpromotors ziehen zu können. Dabei zeigte der humane Insulingenpromotor die aus Versuchen mit dem RattenInsulingenpromotor 1 erwartete Glukoseresponsivität. Allerdings ließ sich keine Abnahme der transkriptionellen Aktivität des Promotors bei Abnahme der Länge der Konstrukte beobachten. Unter Verwendung von Effectene® als Transfektionsreagenz eignet sich das SEAP-System zur Analyse der Aktivität des humanen Insulingenpromotors in primären insulinproduzierenden Zellen aus dem menschlichen Pankreas.
Primäre Nestin-positive adulte Stamm-/Vorläuferzellen aus menschlichen Langerhans'schen Inseln besitzen einen mesenchymalen Charakter und das prinzipielle Potenzial zur in vitro-Differenzierung in Insulin produzierende Phänotypen. Allerdings ist die Entwicklung effektiver Differenzierungsstrategien bisher noch nicht gelungen. Dies ist unter anderem durch das limitierte Wachstumsverhalten dieser Primärzellen in Kultur begründet, das in der vorliegenden Arbeit ausführlich charakterisiert wurde. So besitzt die Gesamtpopulation aus pankreatischen humanen Langerhansschen Inseln auswachsender Zellen (hIZ) ein begrenztes Wachstumspotenzial von im Mittel 19 Passagen. Diese Tatsache limitiert zum einen die Entwicklung von Protokollen zur Differenzierung dieser Zellen und führt zum anderen zu einer Limitierung der Vision in vitro vermehrbaren und differenzierbaren Vorläuferzellmaterials, das nach Differenzierung transplantiert werden und in vivo die beta-Zellfunktion ersetzen könnte. Vor diesem Hintergrund zeigt die vorliegende Arbeit anhand des Nestin-positiven und mesenchymalen Zellmodells der menschlichen Knochenmarksstammzelllinie hMSC-TERT weiterhin, dass sich eine gentechnisch induzierte transiente und stabile Überex-pression des wachstums- und proliferationsassoziierten Proteins p8 fördernd auf das Wachstumsverhalten dieser Zelllinie auswirkt. Dieser Effekt beruht, wie an stabil generierten p8-überexprimierenden Zelllinien gezeigt werden konnte, zum einen auf der Steigerung der Proliferationsrate. Zum anderen ist das verbesserte Wachstumsverhalten jedoch auch auf eine bis dato unbekannte Verminderung der basalen Apoptoserate von hMSC-TERT zurückzuführen. Das Protein p8 konnte erstmals als molekularer Mediator des Wachstums und Überlebens mesenchymaler Nestin-positiver und zu beta-Zellähnlichen Phänotypen differenzierbarer Vorläuferzellen charakterisiert werden. Es kann somit einen entscheidenden Beitrag zur Lösung des Problems begrenzten differenzierbaren Stammzellmaterials auf der Suche nach einer zellbasierten kurativen, breit und risikoarm einsetzbaren Therapiestrategie für den Diabetes mellitus leisten.
Das Fettgewebshormon Leptin hemmt in Beta-Zellen des endokrinen Pankreas die Insulinbiosynthese und –sekretion. Insulin dagegen als adipogenes Hormon fördert die Leptinproduktion, so dass ein Regelkreis, die so genannte “Adipoinsuläre Achse“ entsteht. Fehlregulationen dieser Achse werden vor allem bei übergewichtigen Menschen mit einer Hyperleptinämie im Rahmen der Pathogenese des Diabetes mellitus Typ 2 diskutiert. Die genauen molekularen Mechanismen über die die transkriptionellen Effekte von Leptin auf die Proinsulingen Expression erfolgen sind bis dato nicht ausreichend verstanden. Die Signalübertragung von Leptin erfolgt über den JAK-STAT-Signalübertragungsweg. Dieser Signalübertragungsweg kann durch Moleküle aus der Familie der Suppressors of Cytokine Signalling (SOCS) gehemmt werden. Ziel dieser Arbeit war die Leptin vermittelte Signaltransduktion in Beta-Zellen des endokrinen Pankreas sowie die Insulingen Expression näher zu charakterisieren. Stimulation mit Leptin führt zu einer JAK2 abhängigen Phosphorylierung und zeitabhängigen nukleären Translokation von STAT3 und STAT5b in INS-1 Zellen. Sowohl STAT3 als auch STAT5b aktivieren den Proinsulingen Promotor in INS-1 Zellen. Für STAT5b konnte in INS-1 Zellen gezeigt werden, dass diese Aktivierung durch Interaktion mit PDX-1, dem zentralen Regulator der -Zelldifferenzierung und –funktion, und Koaktivator CBP/p300 erfolgt. Diese synergistische Aktivierung ist abhängig von der PDX-1 Bindungsstelle, dem A3/A4 Element im Ratten-Insulingenpromotor 1. Weiterhin konnte in INS-1 Zellen in vitro gezeigt werden, dass Leptin die mRNA Expression von SOCS3 induziert. Eine Aktivierung des Ratten SOCS3 Promotors konnte sowohl durch Leptin, als auch durch STAT3 und STAT5b nachgewiesen werden. Diese Aktivierung erfolgt über spezifische Bindung von STAT3 und STAT5b an bekannte STAT-Bindungsstellen im SOCS3 Promotor, was durch EMSAs mit Kernextrakten von INS-1 Zellen demonstriert werden konnte. SOCS3 wiederum hemmt sowohl die basale als auch die STAT3 und STAT5b vermittelte Aktivierung des Ratten-Insulinpromotors 1 in INS-1 Zellen. Zusammenfassend zeigen diese Ergebnisse, dass SOCS3 ein Leptin induzierter Inhibitor der Proinsulingen Expression in pankreatischen Beta-Zellen ist, im Sinne einer negativen Rückkoppelung. SOCS3 ist somit ein direkter Vermittler der Leptin Signalübertragung distal von JAK-STAT in Beta-Zellen des endokrinen Pankreas.
Diabetes mellitus ist die häufigste endokrine Störung des Glukosestoffwechsels und betrifft einen großen Teil der Bevölkerung. Der progressive Verlauf der Erkrankung führt zu schweren Sekundärschäden und schränkt die Lebensqualität der Betroffenen deutlich ein. Als einzige kausale Therapiemöglichkeiten stehen bislang nur die Pankreas- und Inseltransplantation zur Verfügung. Der Mangel an Spenderorganen und die erforderliche lebenslange Immunsuppression schränken die weite Verfügbarkeit dieser Behandlung für die überwiegende Anzahl der Diabetiker stark ein. Daher ist es sehr wichtig, neue Therapiestrategien des Diabetes mellitus zu entwickeln. Hierbei ist die Weiterentwicklung der Zelltherapie von zentraler Bedeutung, um durch Differenzierung und Expansion insulinproduzierender Zellen den Mangel an Zellen zur Transplantation zu überwinden. In dieser Arbeit wurde eine Analyse der Expression des proliferationsassoziierten Proteins P8 in Betazellen des endokrinen Pankreas durchgeführt. Es konnte eine spezifische Genexpression von P8 in Betazellen und duktalen Vorläuferzellen des endokrinen Pankreas nachgewiesen werden. Durch die Etablierung eines spezifischen Antiserums wurde P8 im Zellkern der Betazellen lokalisiert. Expressionsanalysen zeigten im Folgenden eine positive Regulation der P8-mRNA-Expression durch Glukose als bekannten Stimulus für die Insulinsekretion und Betazellreplikation. Gleiches wurde für das Inkretinhormon GLP-1, das die Genexpression von bedeutsamen Transkriptionsfaktoren für die Betazellproliferation und -differenzierung induziert, in Betazellen als auch deren Vorläuferzellen nachgewiesen. Anhand von Transfektionsexperimenten und Funktionsuntersuchungen mittels ELISA konnte eine Dedifferenzierung der Betazellen durch eine Überexpression des potentiell proliferationsinduzierenden Proteins P8 ausgeschlossen werden. Hierbei wurden betazellspezifische Differenzierungsmarker, PDX-1 und Proinsulin, sowie die Fähigkeit der Betazellen, Insulin zu produzieren, während einer Überexpression von P8 analysiert. Zusammenfassend wurde ein proliferationsassoziiertes Protein, das als möglicher Transkriptionsfaktor in Betazellen des endokrinen Pankreas fungieren könnte, näher charakterisiert, um damit neue Aspekte zur Expansion von Betazellen unter Erhalt ihrer Funktion im Rahmen der Zelltherapie beizutragen.