@phdthesis{Melichar2002, author = {Melichar, Volker O.}, title = {Einfluß der Atherosklerose auf den NO:cGMP Signalweg am Modell des cholesteringef{\"u}tterten Kaninchen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-3833}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2002}, abstract = {Atherosklerose ist Volkskrankheit und Todesursache Nummer Eins in den sogenannten entwickelten L{\"a}ndern. Ursachen f{\"u}r die meisten Folgeerkrankungen sind Minderperfusion und Gef{\"a}ßverschluß, verursacht durch Ablagerungen und Verdickung der Gef{\"a}ßwand und durch einen pathologisch erh{\"o}hten Gef{\"a}ßtonus. Mehrere zellul{\"a}re Signalwege, die im Gesunden eine Vasodilatation hervorrufen k{\"o}nnen, sind in atherosklerotischen Gef{\"a}ßen gest{\"o}rt, so auch der NO:cGMP-Signalweg. Der Einfluß der Atherosklerose auf den NO-abh{\"a}ngigen Teil des Signalwegs, also NO-Produktion und -Abbau, sowie Diffusion von NO zu den glatten Muskelzellen, ist seit l{\"a}ngerem bekannt. In dieser Studie zeigen wir, daß im fortgeschrittenen Stadium der Erkrankung auch der NO-unabh{\"a}ngige Teil des Signalwegs in erheblichen Maße gest{\"o}rt ist. Die Expression und Aktivit{\"a}t der Enzyme l{\"o}sliche Guanylatzyklase (sGC) und cGMP-abh{\"a}ngige Proteinkinase-I ist vor allem in der neugebildeten Neointima reduziert. P-VASP, ein Indikator der Aktivit{\"a}t des gesamten NO:cGMP-Signalwegs, ist in eindrucksvoller Weise reduziert. Die Enzyme des NO-unabh{\"a}ngigen Teils des NO:cGMP-Signalwegs werden in zunehmenden Maße pharmakologisch beeinflußbar. Die Ergebnisse dieser Studie stellen somit eine wichtige Grundlage f{\"u}r neue Therapieans{\"a}tze der Atherosklerose dar.}, language = {de} } @phdthesis{Goerg2006, author = {G{\"o}rg, Maria}, title = {Die Angiotensin II induzierte Vasokonstriktion isolierter Arterien und deren Beeinflussung durch OxLDL}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-16504}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2006}, abstract = {Atherosklerose und Hypercholesterin{\"a}mie f{\"u}hren zu einer deutlichen Beeintr{\"a}chtigung der vaskul{\"a}ren Funktion. Neben der bereits vielf{\"a}ltig beschriebenen Hemmung der endothelvermittelten Vasodilatation durch oxidierte Lipoproteine, fanden sich in den vergangenen Jahren auch zunehmend Hinweise f{\"u}r ein ver{\"a}ndertes Kontraktionsverhalten von Arterien unter dem Einfluss von oxidiertem LDL. In der vorliegenden Arbeit wurde untersucht, ob oxidiertes Lipoprotein die Angiotensin II induzierte Vasokonstriktion ver{\"a}ndert, durch welche Mechanismen dies geschieht und ob sich durch den Einsatz bereits bekannter und etablierter antihypertensiver Medikamente und neuerer Substanzen ein Einfluss hierauf nehmen l{\"a}sst. Hierf{\"u}r wurden Kontraktionsexperimente an isolierten Kaninchenaorten durchgef{\"u}hrt. Zu Beginn der Arbeit wurde zun{\"a}chst die Angiotensin II induzierte Vasokonstriktion studiert, hierbei zeigte sich, dass Angiotensin II selbst bei repetitiver Stimulation zu einer Zunahme der Kontraktilit{\"a}t isolierter Kaninchenaorten f{\"u}hrt. Wie weiterf{\"u}hrende Untersuchungen zeigten, konnte dieser Effekt durch die Blockade von Calciumkan{\"a}len nur teilweise beeinflusst werden. Hiervon ausgehend kann festgestellt werden, dass Angiotensin II zu einer Zunahme der Kontraktilit{\"a}t durch eine Sensibilisierung des kontraktilen Apparates gegen{\"u}ber Calcium f{\"u}hrt. Der Mechanismus der Ca2+- Sensibilisierung ist noch nicht vollst{\"a}ndig gekl{\"a}rt, in vorangehenden Studien unterschiedlicher Arbeitsgruppen fanden sich jedoch viele Hinweise auf eine Rho-Kinase vermittelte Aktivit{\"a}tsmodulierung der Myosin-Leichtketten-Phosphastase. Die Beteiligung der Rho-Kinase an der Angiotensin II induzierten Vasokonstriktion konnte durch den Einsatz des Rho-Kinase Hemmers Y27632 gezeigt werde. Nach Inkubation kam es zu einer signifikant verringerten Auspr{\"a}gung der Angiotensin II induzierten Vasokonstriktion. Auch durch die Blockade des AT1-Rezepors konnte die Angiotensin II induzierte Vasokonstriktion verhindert werden, w{\"a}hrend der Einsatz eines Angiotensin-Converting-Enzym-Inhibitors ohne Einfluss auf die Vasomotorik blieb. Im Anschluss wurde der Effekt des oxidierten Low Density Lipoproteins auf die Angiotensin II induzierte Vasokonstriktion untersucht. OxLDL steigerte die durch eine Schwellenkonzentration von Angiotensin II hervorgerufene Kontraktion isolierter Kaninchenaortenringe um das 2,9 fache, w{\"a}hrend es den Basaltonus unkontrahierter Gef{\"a}ße nicht beeinflusste. Dabei war zun{\"a}chst unklar, {\"u}ber welchen Mechanismus diese Potenzierung der Angiotensin II induzierten Vasokonstriktion vermittelt wird. Durch den Einsatz eines Calciumkanalantagonisten konnte gezeigt werden, dass die OxLDL induzierte Zunahme der Kontraktilit{\"a}t nicht einzig durch eine Steigerung der intrazellul{\"a}ren Calciumionenkonzentration vermittelt ist, da dieser nur eine partiellen Effekt von etwa 40\% hatte. Der Rho-Kinase-Inhibitor Y27632 f{\"u}hrte jedoch zu einem Ausbleiben bzw. R{\"u}ckgang der Potenzierung. Daher bleibt festzustellen, dass sowohl bei Angiotensin II induzierten Vasokonstriktion als auch deren Potenzierung durch OxLDL die Rho-Kinase beteiligt ist. Auch eine Hemmung der Angiotensin II induzierten Vasokonstriktion durch einen AT1-Rezeptorblocker verhinderte den potenzierenden Einfluss von OxLDL. In der Hypertonus Therapie bei hypercholesterin{\"a}mischen Patienten k{\"o}nnte der Einsatz von AT1-Rezeptorblockern und Rho-Kinase-Hemmern erfolgsversprechend sein.}, language = {de} } @phdthesis{Miller2011, author = {Miller, Nadja Katrin}, title = {Pleiotrope Effekte der Therapie mit Simvastatin und Ezetimib auf die Endothelfunktion in LDL-Rezeptor-Knockout M{\"a}usen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-70010}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2011}, abstract = {Hypercholesterin{\"a}mie und andere Risikofaktoren tragen zur Entstehung von Atherosklerose bei. Ein entscheidendes Merkmal der Pathogenese ist eine gest{\"o}rte Endothelfunktion. Hierbei kommt es zu einer reduzierten Bioverf{\"u}gbarkeit von NO (Stickstoffmonoxid), welches vasodilatativ und atheroprotektiv wirkt. NO kann jedoch auch abh{\"a}ngig vom vaskul{\"a}ren Milieu proatherogen wirken. Es ist Produkt verschiedener NO-Synthasen (NOS). Die potenten Cholesterinsenker Simvastatin und Ezetimib haben vermutlich zus{\"a}tzliche pleiotrope Effekte auf die Endothelfunktion, deren Untersuchung Gegenstand der vorliegenden Arbeit ist. Hierzu wurden an LDL-R-KO M{\"a}usen - neben Bestimmung der Plasmacholesterinspiegel und atherosklerotischer Plaquel{\"a}sionen - Messungen von NO und eNOS, korrelativen Parametern der endothelialen Funktion, durchgef{\"u}hrt. Endovaskul{\"a}re Messungen von NO zeigten erh{\"o}hte NO-Werte in direkter N{\"a}he atherosklerotischer Plaques. Diese sind am ehesten als Korrelat einer erh{\"o}hten iNOS-Aktivit{\"a}t in den L{\"a}sionen anzusehen. Im Sinne der mehrdimensionalen Funktion von NO ist hier von einer proatherogenen Wirkung des NO auszugehen. Messungen der ubiquit{\"a}ren, im Blut zirkulierenden NO-Mengen dagegen zeigten eine signifikant erh{\"o}hte NO-Bioverf{\"u}gbarkeit in mit Simvastatin behandelten Tieren. Dies belegt die bereits in der Literatur beschriebene Pleiotropie von Statinen, NO kommt hier eine atheroprotektive Bedeutung zu. Die rein quantitative Bestimmung der eNOS-Expression zeigte zum Zeitpunkt der Untersuchung keine signifikanten Unterschiede in allen Versuchsgruppen. Hierbei sind jedoch keine R{\"u}ckschl{\"u}sse auf die Enzymaktivit{\"a}t oder die Genexpression in anderen Zielgeweben m{\"o}glich. Simvastatin und Ezetimib wirken sowohl in Mono- als auch in Kombinationstherapie {\"u}ber ihre cholesterinsenkende Wirkung hinaus atheroprotektiv. Die Untersuchungen zeigen, dass bei der Betrachtung der Endothelfunktion die verschiedenen NO-Produktionsquellen sowie der Funktionszustand des NO von entscheidender Bedeutung sind.}, subject = {Atherosklerose}, language = {de} } @phdthesis{Chaudhari2013, author = {Chaudhari, Sweena M.}, title = {Role of Hypoxia-Inducible Factor (HIF) 1α in Dendritic Cells in Immune Regulation of Atherosclerosis}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-91853}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Atherosclerosis is the underlying cause of cardiovascular diseases and a major threat to human health worldwide. It involves not only accumulation of lipids in the vessel wall but a chronic inflammatory response mediated by highly specific cellular and molecular responses. Macrophages and dendritic cells (DCs) play an essential role in taking up modified lipids and presenting them to T and B lymphocytes, which promote the immune response. Enhanced activation, migration and accumulation of inflammatory cells at the local site leads to formation of atherosclerotic plaques. Atherosclerotic plaques become hypoxic due to reduced oxygen diffusion and high metabolic demand of accumulated cells. The various immune cells experience hypoxic conditions locally and inflammatory stimuli systemically, thus up-regulating Hypoxia-inducible factor 1α. Though the role of HIF1α in macrophages and lymphocytes has been elucidated, its role in DCs still remains controversial, especially with respect to atherosclerosis. In this project work, the role of HIF1α in DCs was investigated by using a cell specific knockout mouse model where HIF1α was deleted in CD11c+ cells. Aortic root sections from atherosclerotic mice showed presence of hypoxia and up-regulation of HIF1α which co-localized with CD11c+ cells. Atherosclerotic splenic DCs also displayed enhanced expression of HIF1α, proving non-hypoxic stimulation of HIF1α due to systemic inflammation. Conditional knockout (CKO) mice lacking HIF1α in CD11c+ cells, under baseline conditions did not show changes in immune responses suggesting effects of HIF1α only under inflammatory conditions. When these mice were crossed to the Ldlr-/- line and placed on 8 weeks of high fat diet, they developed enhanced plaques with higher T-cell infiltration as compared to the wild-type (WT) controls. The plaques were of a complex phenotype, defined by increased percent of smooth muscle cells (SMCs) and necrotic core area and reduced percent of macrophages and DCs. The mice also displayed enhanced T-cell activation and a Th1 bias in the periphery. The CKO DCs themselves exhibited increased expression of IL 12 and a higher capacity to proliferate and polarize naive T cells to the Th1 phenotype in vitro. The DCs also showed decreased expression of STAT3, in line with the inhibitory effects of STAT3 on DC activation seen in previous studies. When STAT3 was overexpressed in DCs in vitro, IL 12 was down-regulated, but its expression increased significantly on STAT3 inhibition using a mutant vector. In addition, when STAT3 was overexpressed in DCs in vivo using a Cre regulated lentiviral system, the mice showed decreased plaque formation compared to controls. Interestingly, the effects of STAT3 modulation were similar in WT and CKO mice, intending that STAT3 lies downstream of HIF1α. Finally, using a chromatin immunoprecipitation assay (ChIP), it was confirmed that HIF1α binds to hypoxia responsive elements (HREs) in the Stat3 gene promoter thus regulating its expression. When DCs lack HIF1α, STAT3 expression is not stimulated and hence IL 12 production by DCs is uninhibited. This excessive IL 12 can activate naive T cells and polarize them to the Th1 phenotype, thereby enhancing atherosclerotic plaque progression. This project thus concludes that HIF1α restrains DC activation via STAT3 generation and prevents excessive production of IL 12 that helps to keep inflammation and atherosclerosis under check.}, subject = {Dendritische Zelle}, language = {en} } @phdthesis{Li2014, author = {Li, Xiang}, title = {Molecular imaging of inflammation in atherosclerosis: Preclinical study in Apolipoprotein E-Deficient mice and preliminary evaluation in human using positron emission tomography}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-104622}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {Motivation and Aim: Cardiovascular disease has been the leading cause of mortality and morbidity throughout the world. In developed countries, cardiovascular diseases are already responsible for a majority of deaths and will become the pre-eminent health problem worldwide (1,2). Rupture of atherosclerotic plaque accounts for approximately 70\% of fatal acute myocardial infarction and sudden heart deaths. Conventional criterias for the diagnosis of "vulnerable plaques" are calcified nodules, yellow appearance of plaque, a thin cap, a large lipid core, severe luminal stenosis, intraplaque hemorrhage, inflammation, thrombogenicity, and plaque injury (3-5). Noninvasive diagnosis of vulnerable plaque still remains a great challenge and a huge research prospect, which triggered us to investigate the feasibility of PET imaging on the evaluation of atherosclerosis. Nuclear imaging of atherosclerosis, especially co-registered imaging modalities, could provide a promising diagnostic tool including both anatomy and activities to identify vulnerable atherosclerotic plaque or early detection of inflammatory endothelium at risk. Furthermore, the development of specific imaging tracers for clinical applications is also a challenging task. The aim of this work was to assess the potential of novel PET imaging probes associated with intra-plaque inflammation on animal models and in human respectively. Methods In this work, several molecular imaging modalities were employed for evaluation of atherosclerosis. They included Positron emission tomography / Computed tomography (PET/CT) for human studies, and micro-PET, autoradiography and high-resolution magnetic resonance imaging (MRI) for animal studies. Radiotracers for PET imaging included the glucose analogue 18F-Fluorodeoxyglucose (18F-FDG), the somatostatin receptor avide tracer 68Ga-DOTATATE, and the Gallium-68 labeled fucoidan (68Ga-Fucoidan), which was developed as a PET tracer to detect endothelial P-selectin, which overexpressed at early stage of atherosclerosis and endothelial overlying activated plaque. Tracer's capabilities were firstly assessed on cellular level in vitro. Subsequently, Animal studies were conducted in two animal models: 1, Apolipoprotein E (ApoE-/-) mice having severe atherosclerotic plaque; 2, Lipopolysaccharide (LPS) -induced mice for receiving acute vascular inflammation. Corresponding analyses on protein and histological level were conducted as well to confirm our results. In human study, 16 patients with neuroendocrine tumors (NETs) were investigated on imaging vascular inflammation. These patients had undergone both 68Ga-DOTATATE PET/CT and 18F-FDG PET/CT for staging or restaging within 6 weeks. 16 patients were randomized into two groups: high-risk group and low-risk group. Uptake ratio of both tracers from two groups were compared and correlated with common cardiovascular risk factors. Results and Conclusion In murine study, the expression of somatostatin receptor 2, which is the main bio-target of 68Ga-DOTATATE on macrophage/monocyte was confirmed by flow cytometry and immunohistochemistry. Prospectively, high specific accumulation of 68Ga-DOTATATE to the macrophage within the plaques was observed in aorta lesions by autoradiography and by micro-PET. In study with 68Ga-fucoidan, a strong expression of P-selectin on active endothelium overlying on inflamed plaque but weaker on inactive plaques was confirmed. Specific focal uptake of 68Ga-fucoidan were detected at aorta segments by micro-PET, and correlated with high-resolution magnetic resonance imaging (MRI), which was used to characterize the morphology of plaques. 68Ga-fucoidan also showed a greater affinity to active inflamed plaque in comparison of inactive fibrous plaque, which was assessed by autoradiography. Specificity of 68Ga-DOTATATE and 68Ga-fucoidan were confirmed by ex-vivo blocking autoradiography and in vivo blocking PET imaging respectively. In human study, focal uptake of both 18F-FDG and 68Ga-DOTATATE was detected. Analyzing concordance of two tracers' uptake ratio, Out of the 37 sites with highest focal 68Ga-DOTATATE uptake, 16 (43.2\%) also had focal 18F-FDG uptake. Of 39 sites with highest 18F-FDG uptake, only 11 (28.2\%) had a colocalized 68Ga-DOTATATE accumulation. Correlated tracers' uptake and calcium burden and risk factors, Mean target-to-background ratio (TBR) of 68Ga-DOTATATE correlated significantly with the presence of calcified plaques (r=0.52), hypertension (r=0.60), age (r=0.56) and uptake of 18F-FDG (r=0.64). TBRmean of 18F-FDG correlated significantly only with hypertension (r=0.58; p<0.05). Additionally, TBRmean of 68Ga-DOTATATE is significant higher in the high risk group while TBRmean of 18F-FDG is not. In conclusion, we evaluated vascular inflammation of atherosclerosis non-invasively using the two PET tracers: 68Ga-DOTATATE and 68Ga-Fucoidan. 68Ga-DOTATATE show specific affinity to infiltrated macrophage within the plaques. 68Ga-Fucoidan may hold the potential to discriminate between active and inactive atherosclerotic plaques in terms of variant accumulation on different-types of plaques. PET as leading molecular imaging technique provides superiority in assessing cellular activity, which is pivotal for understanding internal activity of atherosclerotic plaques. Since diagnosis of atherosclerosis is a complex and multi-dimensional task. More integrated imaging technology such as PET/MRI, faster imaging algorithm, more efficient radiotracer are required for further development of atherosclerosis imaging,}, subject = {Arteriosklerose}, language = {en} } @article{GotschyBauerWinteretal.2017, author = {Gotschy, Alexander and Bauer, Wolfgang R. and Winter, Patrick and Nordbeck, Peter and Rommel, Eberhard and Jakob, Peter M. and Herold, Volker}, title = {Local versus global aortic pulse wave velocity in early atherosclerosis: An animal study in ApoE\(^{-/-}\) mice using ultrahigh field MRI}, series = {PLoS ONE}, volume = {12}, journal = {PLoS ONE}, number = {2}, doi = {10.1371/journal.pone.0171603}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-171824}, year = {2017}, abstract = {Increased aortic stiffness is known to be associated with atherosclerosis and has a predictive value for cardiovascular events. This study aims to investigate the local distribution of early arterial stiffening due to initial atherosclerotic lesions. Therefore, global and local pulse wave velocity (PWV) were measured in ApoE\(^{-/-}\) and wild type (WT) mice using ultrahigh field MRI. For quantification of global aortic stiffness, a new multi-point transit-time (TT) method was implemented and validated to determine the global PWV in the murine aorta. Local aortic stiffness was measured by assessing the local PWV in the upper abdominal aorta, using the flow/area (QA) method. Significant differences between age matched ApoE\(^{-/-}\) and WT mice were determined for global and local PWV measurements (global PWV: ApoE\(^{-/-}\): 2.7 ±0.2m/s vs WT: 2.1±0.2m/s, P<0.03; local PWV: ApoE\(^{-/-}\): 2.9±0.2m/s vs WT: 2.2±0.2m/s, P<0.03). Within the WT mouse group, the global PWV correlated well with the local PWV in the upper abdominal aorta (R\(^2\) = 0.75, P<0.01), implying a widely uniform arterial elasticity. In ApoE\(^{-/-}\) animals, however, no significant correlation between individual local and global PWV was present (R\(^2\) = 0.07, P = 0.53), implying a heterogeneous distribution of vascular stiffening in early atherosclerosis. The assessment of global PWV using the new multi-point TT measurement technique was validated against a pressure wire measurement in a vessel phantom and showed excellent agreement. The experimental results demonstrate that vascular stiffening caused by early atherosclerosis is unequally distributed over the length of large vessels. This finding implies that assessing heterogeneity of arterial stiffness by multiple local measurements of PWV might be more sensitive than global PWV to identify early atherosclerotic lesions.}, language = {en} } @phdthesis{GilPulido2018, author = {Gil Pulido, Jes{\´u}s}, title = {The role of Batf3-dependent dendritic cells and the IL-23 receptor in atherosclerosis}, doi = {10.25972/OPUS-16720}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-167203}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {Cardiovascular diseases represent the leading cause of death worldwide, with myocardial infarction and strokes being the most common complications. In both cases, the appearance of an enlarged artery wall as a consequence of a growing plaque is responsible for the disturbance of the blood flow. The formation of plaques is driven by a chronic inflammatory condition known as atherosclerosis, characterized by an initial step of endothelial cell (EC) dysfunction followed by the recruitment of circulating immune cells into the tunica intima of the vessel. Accumulation of lipids and cells lead to the formation of atheromatous plaques that will define the cardiovascular outcome of an individual. The role of the immune system in the progression of atherosclerosis has been widely recognized. By far, macrophages constitute the most abundant cell type in lesions and are known to be the major source of the lipid-laden foam cell pool during the course of the disease. However, other immune cells types, including T cells, dendritic cells (DCs) or mast cells, among others, have been described to be present in human and mouse plaques. How these populations can modulate the atherogenic process is dependent on their specialized function. DCs constitute a unique population with the ability to bridge innate and adaptive immune responses, mainly by their strong capacity to present antigens bound to a major histocompatibility complex (MHC) molecule. Given their ability to polarize T cells and secrete cytokines, their role in atherosclerosis has gained attention for the development of new therapeutic approaches that could impact lesion growth. Hence, knowing the effect of a specific subset is an initial key step to evaluate its potential for clinical purposes. For example, the basic leucine zipper ATF-like 3 transcription factor (Batf3) controls the development of conventional dendritic cells type 1 (cDCs1), characterized by the expression of the surface markers CD8 and CD103. Initially, they were described to promote both T-helper 1 (Th1) and regulatory T cell (Treg) responses, known to accelerate and to protect against atherosclerosis, respectively. The first part of this thesis aimed to elucidate the potential role of Batf3-dependent DCs in atherosclerosis and concluded that even though systemic immune responses were mildly altered they do not modify the course of the disease and may not represent an attractive candidate for clinical studies. DCs also have the ability to impact lesion growth through the release of a broad range of cytokines, which can either directly impact atherosclerotic plaques by modulating resident cells, or by further polarizing T cell responses. Among others, interleukin (IL) 23, a member of the IL-12 family of cytokines, has received much attention during the past year due to its connection to autoimmunity. IL-23 is known to induce pathogenicity of Th17 cells and is responsible for the development of several autoimmune diseases including multiple sclerosis, psoriasis or rheumatoid arthritis. Interestingly, these patients often present with an accelerated course of atherosclerosis and thus, are at higher risk of developing cardiovascular events. Several epidemiological studies have pointed toward a possible connection between IL-23 and its receptor IL-23R in atherosclerosis, although their exact contribution remains to be elucidated. The second part of this thesis showed that resident antigen-presenting cells (APCs) in the aorta produced IL-23 during the steady state but this secretion was greatly enhanced after incubation with oxidized low-density lipoprotein (oxLDL). Furthermore, disruption of the IL-23R signaling led to decreased relative necrotic plaque area in lesions of Ldlr-/-Il23r-/- mice fed a high-fat diet (HFD) for 6 and 12 weeks compared to Ldlr-/- controls. A proposed mechanism involves that increased IL-23 production in the context of atherosclerosis may promote the pathogenicity of IL-23-responding T cells, especially IL-23R+ γδ T cells in the aortic root. Response to IL-23 might increase the release of granulocyte-macrophage colony-stimulating factor (GM-CSF) and IL-17 and alter the pro- and anti-inflammatory balance of cytokines in the aortic root. Altogether, these data showed that the IL-23 / IL-23R axis play a role in plaque stability.}, subject = {Arteriosklerose}, language = {en} } @phdthesis{Knochenhauer2023, author = {Knochenhauer, Tim}, title = {Die Rolle von HIF-1α in T-Zellen bei kardiovaskul{\"a}ren Erkrankungen}, doi = {10.25972/OPUS-32275}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-322758}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {Die Atherosklerose ist als Ursache kardiovaskul{\"a}rer Erkrankungen, welche die h{\"a}ufigste Todesursache weltweit darstellen, von großer klinischer und wissenschaftlicher Relevanz. Atherosklerose ist charakterisiert durch Einlagerungen von Lipiden in die Gef{\"a}ßwand, welche zur Ausbildung von Plaques f{\"u}hren. Als Folge wird eine chronische Entz{\"u}ndungsreaktion eingeleitet, die durch spezifische Immunzellen, unter anderem T-Lymphozyten, und komplexe molekulare Prozesse aufrechterhalten wird. Durch eine verminderte Sauerstoffdiffusionskapazit{\"a}t und eine hohe Zelldichte ist das Milieu in den Plaques hypoxisch. Zur zellul{\"a}ren Anpassung an ein solches hypoxisches Milieu werden Hypoxie-induzierbare Faktoren (HIF) in den Immunzellen stabilisiert. Der Transkriptionsfaktor HIF-1 ist ein heterodimeres Protein, welches die Transkription bestimmter Zielgene initiiert, die den Zellen notwendige Adaptationen des Zellstoffwechsels an ein vermindertes Sauerstoffangebot erm{\"o}glichen. Das Ziel der vorliegenden Arbeit bestand darin zu untersuchen, inwiefern sich ein Ausschalten des Transkriptionsfaktor HIF-1α selektiv in T-Lymphozyten auf Atherosklerose und Myokardinfarkt auswirkt. Die funktionelle Bedeutung von HIF-1α in T-Zellen in der Pathogenese dieser Erkrankungen wurde an zwei Mausmodellen untersucht. Im Atherosklerose Modell wurde Biomaterial von LDLR-/- M{\"a}usen mit T-Zell spezifischem Knockout von HIF-1α nach achtw{\"o}chiger fettreicher Western-Typ Di{\"a}t untersucht. Histologisch zeigte sich eine vermehrte Plaqueauspr{\"a}gung und ein verminderter Makrophagenanteil in den Plaques. Durchflusszytometrisch und mittels qPCR konnten keine Unterschiede in der Lymphozytendifferenzierung in Milz und Lymphknoten dieser M{\"a}use nachgewiesen werden. Im Myokardinfarkt-Modell mit T-Zell spezifischem HIF-1α Knockout konnte in fr{\"u}heren Untersuchungen der Arbeitsgruppe eine vergr{\"o}ßerte Infarktzone mit eingeschr{\"a}nkter kardialer Funktion nachgewiesen werden. Histologisch konnte im Rahmen dieser Arbeit hierf{\"u}r kein zellmorphologisches Korrelat in Kardiomyozytengr{\"o}ße oder der Vaskularisation des Myokards gefunden werden. In Zukunft k{\"o}nnte HIF-1α in T-Lymphozyten ein m{\"o}glicher Angriffspunkt zur medikament{\"o}sen Pr{\"a}vention oder Therapie kardiovaskul{\"a}rer Erkrankungen sein.}, subject = {Hypoxie-induzierbarer Faktor}, language = {de} } @phdthesis{Schneider2023, author = {Schneider, Nicole}, title = {Untersuchung der Expression von SET7 und anderer epigenetischer Enzyme in vitro und vivo im Modell der Atherosklerose}, doi = {10.25972/OPUS-32895}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-328952}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {Bei der Atherosklerose handelt es sich um eine chronische inflammatorische Erkrankung, die sich an der arteriellen Gef{\"a}ßinnenwand abspielt. Ihre Haupt-Manifestationsformen Schlaganfall und Herzinfarkt z{\"a}hlen zu den h{\"a}ufigsten Todesursachen weltweit. Eine chronische Endothelbelastung und -funktionsst{\"o}rung, beeinflusst durch Risikofaktoren wie Diabetes, arterieller Bluthochdruck, Rauchen und Entz{\"u}ndungszust{\"a}nde, f{\"u}hren zur Permeabilit{\"a}tserh{\"o}hung des Endothels, zur Zelleinwanderung, subendothelialen Lipidanreicherung, Migration glatter Muskelzellen und der Ausbildung atherosklerotischer L{\"a}sionen. Es kommt zu Aktivierung des Immunsystems und fortschreitender Entz{\"u}ndungsreaktion, schließlich zur Ausbildung eines nekrotischen Kerns und zunehmender Vulnerabilit{\"a}t des Plaques. Epigenetische Ver{\"a}nderungen betreffen klassischerweise das Chromatinger{\"u}st. Durch DNA-Methylierung und -Demethylierung sowie verschiedene Modifikationen der Histon-Proteine kann die DNA in ihrer Zug{\"a}nglichkeit ver{\"a}ndert werden. So kann die Transkription eines bestimmten Genes direkt und potenziell l{\"a}ngerfristig beeinflusst werden, ohne dass Alterationen der DNA-Basenfolge selbst stattfinden. Das Enzym SET7 nimmt hierbei eine Sonderrolle ein, da es neben einer Methylierung von Histon 3 auch verschiedene zellul{\"a}re Zielstrukturen posttranslational direkt methylieren kann. Epigenetische Ver{\"a}nderungen im Kontext der Atherosklerose sind bereits vereinzelt beschrieben. Auch sind sie relevant in der Reaktion auf Umwelteinfl{\"u}sse und bei inflammatorischen Vorg{\"a}ngen. Der Frage, ob epigenetische Mechanismen im atherosklerotischen Geschehen eine Rolle spielen, sollte in dieser Arbeit nachgegangen werden. Dazu wurde in Zellkulturversuchen f{\"u}r Makrophagen und glatte Muskelzellen gepr{\"u}ft, ob die einzelnen pro-atherosklerotischen Stimuli oxLDL, IL-1β, TNFα und LPS bereits zu relevanten Ver{\"a}nderungen epigenetischer Enzyme f{\"u}hren. Dies erfolgte {\"u}ber Vergleich der entsprechenden mRNA mittels qPCR. Zur Untersuchung der genaueren Dynamik wurde f{\"u}r die Enzyme SET7 und DNMT1 der zeitliche Ablauf dieser Reaktion auf TNFα-Stimulation in Makrophagen genauer betrachtet. Unter gleichen Versuchsbedingungen wurde außerdem die {\"A}nderung der mRNA-Expression einiger Matrixmetalloproteasen, TIMP-Enzyme, Zytokine und Transkriptionsfaktoren analysiert,um zuk{\"u}nftig kausale Zusammenh{\"a}nge weiter aufdecken zu k{\"o}nnen. Auch die Frage nach Ver{\"a}nderungen epigenetischer Enzyme in der Ldlr-/--Maus nach fettreicher Di{\"a}t im Vergleich zu Ldlr-/--M{\"a}usen ohne Di{\"a}t sollte hier beantwortet werden. Dazu wurde die mRNA der Zellsuspensionen aus Milz, Aortenwurzel und gesamter Aorta der Tiere mithilfe der qPCR verglichen. Schließlich sollte ein effizienter Weg f{\"u}r einen individuellen und flexiblen SET7 knock-out etabliert werden, um weitere Studien dieses Enzyms zu erm{\"o}glichen. Hierzu wurde die Methode des CRISPR/Cas9 Systems gew{\"a}hlt und abschließend die Funktionalit{\"a}t des Systems {\"u}berpr{\"u}ft.}, subject = {Arteriosklerose}, language = {de} } @phdthesis{Andelovic2024, author = {Andelovic, Kristina}, title = {Characterization of arterial hemodynamics using mouse models of atherosclerosis and tissue-engineered artery models}, doi = {10.25972/OPUS-30360}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-303601}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2024}, abstract = {Within this thesis, three main approaches for the assessment and investigation of altered hemodynamics like wall shear stress, oscillatory shear index and the arterial pulse wave velocity in atherosclerosis development and progression were conducted: 1. The establishment of a fast method for the simultaneous assessment of 3D WSS and PWV in the complete murine aortic arch via high-resolution 4D-flow MRI 2. The utilization of serial in vivo measurements in atherosclerotic mouse models using high-resolution 4D-flow MRI, which were divided into studies describing altered hemodynamics in late and early atherosclerosis 3. The development of tissue-engineered artery models for the controllable application and variation of hemodynamic and biologic parameters, divided in native artery models and biofabricated artery models, aiming for the investigation of the relationship between atherogenesis and hemodynamics Chapter 2 describes the establishment of a method for the simultaneous measurement of 3D WSS and PWV in the murine aortic arch at, using ultra high-field MRI at 17.6T [16], based on the previously published method for fast, self-navigated wall shear stress measurements in the murine aortic arch using radial 4D-phase contrast MRI at 17.6 T [4]. This work is based on the collective work of Dr. Patrick Winter, who developed the method and the author of this thesis, Kristina Andelovic, who performed the experiments and statistical analyses. As the method described in this chapter is basis for the following in vivo studies and undividable into the sub-parts of the contributors without losing important information, this chapter was not split into the single parts to provide fundamental information about the measurement and analysis methods and therefore better understandability for the following studies. The main challenge in this chapter was to overcome the issue of the need for a high spatial resolution to determine the velocity gradients at the vascular wall for the WSS quantification and a high temporal resolution for the assessment of the PWV without prolonging the acquisition time due to the need for two separate measurements. Moreover, for a full coverage of the hemodynamics in the murine aortic arch, a 3D measurement is needed, which was achieved by utilization of retrospective navigation and radial trajectories, enabling a highly flexible reconstruction framework to either reconstruct images at lower spatial resolution and higher frame rates for the acquisition of the PWV or higher spatial resolution and lower frame rates for the acquisition of the 3D WSS in a reasonable measurement time of only 35 minutes. This enabled the in vivo assessment of all relevant hemodynamic parameters related to atherosclerosis development and progression in one experimental session. This method was validated in healthy wild type and atherosclerotic Apoe-/- mice, indicating no differences in robustness between pathological and healthy mice. The heterogeneous distribution of plaque development and arterial stiffening in atherosclerosis [10, 12], however, points out the importance of local PWV measurements. Therefore, future studies should focus on the 3D acquisition of the local PWV in the murine aortic arch based on the presented method, in order to enable spatially resolved correlations of local arterial stiffness with other hemodynamic parameters and plaque composition. In Chapter 3, the previously established methods were used for the investigation of changing aortic hemodynamics during ageing and atherosclerosis in healthy wild type and atherosclerotic Apoe-/- mice using the previously established methods [4, 16] based on high-resolution 4D-flow MRI. In this work, serial measurements of healthy and atherosclerotic mice were conducted to track all changes in hemodynamics in the complete aortic arch over time. Moreover, spatially resolved 2D projection maps of WSS and OSI of the complete aortic arch were generated. This important feature allowed for the pixel-wise statistical analysis of inter- and intragroup hemodynamic changes over time and most importantly - at a glance. The study revealed converse differences of local hemodynamic profiles in healthy WT and atherosclerotic Apoe-/- mice, with decreasing longWSS and increasing OSI, while showing constant PWV in healthy mice and increasing longWSS and decreasing OSI, while showing increased PWV in diseased mice. Moreover, spatially resolved correlations between WSS, PWV, plaque and vessel wall characteristics were enabled, giving detailed insights into coherences between hemodynamics and plaque composition. Here, the circWSS was identified as a potential marker of plaque size and composition in advanced atherosclerosis. Moreover, correlations with PWV values identified the maximum radStrain could serve as a potential marker for vascular elasticity. This study demonstrated the feasibility and utility of high-resolution 4D flow MRI to spatially resolve, visualize and analyze statistical differences in all relevant hemodynamic parameters over time and between healthy and diseased mice, which could significantly improve our understanding of plaque progression towards vulnerability. In future studies the relation of vascular elasticity and radial strain should be further investigated and validated with local PWV measurements and CFD. Moreover, the 2D histological datasets were not reflecting the 3D properties and regional characteristics of the atherosclerotic plaques. Therefore, future studies will include 3D plaque volume and composition analysis like morphological measurements with MRI or light-sheet microscopy to further improve the analysis of the relationship between hemodynamics and atherosclerosis. Chapter 4 aimed at the description and investigation of hemodynamics in early stages of atherosclerosis. Moreover, this study included measurements of hemodynamics at baseline levels in healthy WT and atherosclerotic mouse models. Due to the lack of hemodynamic-related studies in Ldlr-/- mice, which are the most used mouse models in atherosclerosis research together with the Apoe-/- mouse model, this model was included in this study to describe changing hemodynamics in the aortic arch at baseline levels and during early atherosclerosis development and progression for the first time. In this study, distinct differences in aortic geometries of these mouse models at baseline levels were described for the first time, which result in significantly different flow- and WSS profiles in the Ldlr-/- mouse model. Further basal characterization of different parameters revealed only characteristic differences in lipid profiles, proving that the geometry is highly influencing the local WSS in these models. Most interestingly, calculation of the atherogenic index of plasma revealed a significantly higher risk in Ldlr-/- mice with ongoing atherosclerosis development, but significantly greater plaque areas in the aortic arch of Apoe-/- mice. Due to the given basal WSS and OSI profile in these two mouse models - two parameters highly influencing plaque development and progression - there is evidence that the regional plaque development differs between these mouse models during very early atherogenesis. Therefore, future studies should focus on the spatiotemporal evaluation of plaque development and composition in the three defined aortic regions using morphological measurements with MRI or 3D histological analyses like LSFM. Moreover, this study offers an excellent basis for future studies incorporating CFD simulations, analyzing the different measured parameter combinations (e.g., aortic geometry of the Ldlr-/- mouse with the lipid profile of the Apoe-/- mouse), simulating the resulting plaque development and composition. This could help to understand the complex interplay between altered hemodynamics, serum lipids and atherosclerosis and significantly improve our basic understanding of key factors initiating atherosclerosis development. Chapter 5 describes the establishment of a tissue-engineered artery model, which is based on native, decellularized porcine carotid artery scaffolds, cultured in a MRI-suitable bioreactor-system [23] for the investigation of hemodynamic-related atherosclerosis development in a controllable manner, using the previously established methods for WSS and PWV assessment [4, 16]. This in vitro artery model aimed for the reduction of animal experiments, while simultaneously offering a simplified, but completely controllable physical and biological environment. For this, a very fast and gentle decellularization protocol was established in a first step, which resulted in porcine carotid artery scaffolds showing complete acellularity while maintaining the extracellular matrix composition, overall ultrastructure and mechanical strength of native arteries. Moreover, a good cellular adhesion and proliferation was achieved, which was evaluated with isolated human blood outgrowth endothelial cells. Most importantly, an MRI-suitable artery chamber was designed for the simultaneous cultivation and assessment of high-resolution 4D hemodynamics in the described artery models. Using high-resolution 4D-flow MRI, the bioreactor system was proven to be suitable to quantify the volume flow, the two components of the WSS and the radStrain as well as the PWV in artery models, with obtained values being comparable to values found in literature for in vivo measurements. Moreover, the identification of first atherosclerotic processes like intimal thickening is achievable by three-dimensional assessment of the vessel wall morphology in the in vitro models. However, one limitation is the lack of a medial smooth muscle cell layer due to the dense ECM. Here, the utilization of the laser-cutting technology for the generation of holes and / or pits on a microscale, eventually enabling seeding of the media with SMCs showed promising results in a first try and should be further investigated in future studies. Therefore, the proposed artery model possesses all relevant components for the extension to an atherosclerosis model which may pave the way towards a significant improvement of our understanding of the key mechanisms in atherogenesis. Chapter 6 describes the development of an easy-to-prepare, low cost and fully customizable artery model based on biomaterials. Here, thermoresponsive sacrificial scaffolds, processed with the technique of MEW were used for the creation of variable, biomimetic shapes to mimic the geometric properties of the aortic arch, consisting of both, bifurcations and curvatures. After embedding the sacrificial scaffold into a gelatin-hydrogel containing SMCs, it was crosslinked with bacterial transglutaminase before dissolution and flushing of the sacrificial scaffold. The hereby generated channel was subsequently seeded with ECs, resulting in an easy-to-prepare, fast and low-cost artery model. In contrast to the native artery model, this model is therefore more variable in size and shape and offers the possibility to include smooth muscle cells from the beginning. Moreover, a custom-built and highly adaptable perfusion chamber was designed specifically for the scaffold structure, which enabled a one-step creation and simultaneously offering the possibility for dynamic cultivation of the artery models, making it an excellent basis for the development of in vitro disease test systems for e.g., flow-related atherosclerosis research. Due to time constraints, the extension to an atherosclerosis model could not be achieved within the scope of this thesis. Therefore, future studies will focus on the development and validation of an in vitro atherosclerosis model based on the proposed bi- and three-layered artery models. In conclusion, this thesis paved the way for a fast acquisition and detailed analyses of changing hemodynamics during atherosclerosis development and progression, including spatially resolved analyses of all relevant hemodynamic parameters over time and in between different groups. Moreover, to reduce animal experiments, while gaining control over various parameters influencing atherosclerosis development, promising artery models were established, which have the potential to serve as a new platform for basic atherosclerosis research.}, subject = {H{\"a}modynamik}, language = {en} }