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Background:
Although caffeine and glucocorticoids are frequently used to treat chronic lung disease in preterm neonates, potential interactions are largely unknown. While anti-inflammatory effects of glucocorticoids are well defined, their impact on airway remodeling is less characterized. Caffeine has been ascribed to positive effects on airway inflammation as well as remodeling. Connective tissue growth factor (CTGF, CCN2) plays a key role in airway remodeling and has been implicated in the pathogenesis of chronic lung diseases such as bronchopulmonary dysplasia (BPD) in preterm infants. The current study addressed the impact of glucocorticoids on the regulation of CTGF in the presence of caffeine using human lung epithelial and fibroblast cells.
Methods:
The human airway epithelial cell line H441 and the fetal lung fibroblast strain IMR-90 were exposed to different glucocorticoids (dexamethasone, budesonide, betamethasone, prednisolone, hydrocortisone) and caffeine. mRNA and protein expression of CTGF, TGF-β1-3, and TNF-α were determined by means of quantitative real-time PCR and immunoblotting. H441 cells were additionally treated with cAMP, the adenylyl cyclase activator forskolin, and the selective phosphodiesterase (PDE)-4 inhibitor cilomilast to mimic caffeine-mediated PDE inhibition.
Results:
Treatment with different glucocorticoids (1 μM) significantly increased CTGF mRNA levels in H441 (p < 0.0001) and IMR-90 cells (p < 0.01). Upon simultaneous exposure to caffeine (10 mM), both glucocorticoid-induced mRNA and protein expression were significantly reduced in IMR-90 cells (p < 0.0001). Of note, 24 h exposure to caffeine alone significantly suppressed basal expression of CTGF mRNA and protein in IMR-90 cells. Caffeine-induced reduction of CTGF mRNA expression seemed to be independent of cAMP levels, adenylyl cyclase activation, or PDE-4 inhibition. While dexamethasone or caffeine treatment did not affect TGF-β1 mRNA in H441 cells, increased expression of TGF-β2 and TGF-β3 mRNA was detected upon exposure to dexamethasone or dexamethasone and caffeine, respectively. Moreover, caffeine increased TNF-α mRNA in H441 cells (6.5 ± 2.2-fold, p < 0.05) which has been described as potent inhibitor of CTGF expression.
Conclusions:
In addition to well-known anti-inflammatory features, glucocorticoids may have adverse effects on long-term remodeling by TGF-β1-independent induction of CTGF in lung cells. Simultaneous treatment with caffeine may attenuate glucocorticoid-induced expression of CTGF, thereby promoting restoration of lung homeostasis.
Transgene Mausmodelle zur Charakterisierung der Funktion kardialer beta-adrenerger Rezeptoren
(2001)
In der vorliegenden Arbeit wurde die Funktion kardialer beta-adrenerger Rezeptoren mit Hilfe einer Kombination aus transgenen Mausmodellen und physiologischen und molekularbiologischen Methoden untersucht. Durch gezielte Überexpression des humanen beta1-adrenergen Rezeptors im Herzen transgener Mäuse konnte gezeigt werden, daß die chronische Aktivierung dieses Rezeptors eine trophische Wirkung auf die Herzmuskelzellen hat. Über einen Zeitraum von mehreren Monaten führte dies zur Entwicklung einer Herzinsuffizienz. In der menschlichen Herzinsuffizienz kommt es zu einem ähnlichen Phänomen: Durch deutlich erhöhte Freisetzung von endogenen Katecholaminen kommt es zu einer chronischen Dauerstimulation kardialer beta1-adrenerger Rezeptoren. Daß diese schädlich ist belegen das hier beschriebene Mausmodell und zudem einige neuere klinische Studien, die zeigen daß eine pharmakologische Blockade beta-adrenerger Rezeptoren zu einer Verminderung der Herzinsuffizienzmortalität führt. Dieses Mausmodell erlaubte es erstmals den beta1-adrenergen Rezeptor hinsichtlich seiner spontanen Rezeptoraktivität in einem physiologischen Modell zu untersuchen. Dabei zeigte sich, daß der humane beta1-adrenerge Rezeptor spontane Aktivität aufweist, jedoch in einem deutlich geringeren Ausmaß als der beta2-adrenerge Rezeptor. Dies könnte klinisch relevant sein, da klinisch verwendete beta-Rezeptor-Antagonisten die spontane Aktivität des beta1-adrenergen Rezeptors in unserem Modell unterschiedlich stark unterdrückten. In der vorliegenden Arbeit wurde zudem untersucht, ob sich die beiden kardial exprimierten Beta-Rezeptor-Subtypen Beta1 und Beta2 hinsichtlich ihrer Signaltransduktion unterscheiden. Ausgehend von dem Befund, daß die chronische Aktivierung der beiden Subtypen in transgenen Mausmodellen zu deutlich unterschiedlichen Phänotypen führt, wurden verschiedene intrazelluläre Signalwege auf ihre Aktivierung hin überprüft. Abweichend von publizierten, in vitro nach kurzzeitiger Rezeptorstimulation erhobenen Daten zeigte sich, daß die chronische Aktivierung der Rezeptorsubtypen zu einer unterschiedlichen Aktivierung der kardialen MAP-kinasen (ERK) führt. Die beta1-spezifische Aktivierung dieser Kinasen könnte die beobachtete unterschiedliche Hypertrophieentwicklung in diesen beiden Mausmodellen erklären. Einen weiteren Schwerpunkt bei der Aufklärung des Mechanismus beta-adrenerg induzierter Hypertrophie bildete die Untersuchung der zellulären Calcium-homöostase. Als früheste funktionelle Veränderung in der Entwicklung einer beta-adrenerg induzierten Herzhypertrophie und -insuffizienz trat dabei eine Störung des intrazellulären Calciumtransienten auf. Als möglicher Mechanismus für die Störung des Calciumhaushalts konnte eine zeitgleich auftretende veränderte Expression des Calcium-regulierenden Proteins Junctin beschrieben werden. Einen neuen therapeutischen Ansatz für die Therapie der Herzinsuffizienz könnten schließlich vielleicht die Untersuchungen zum kardialen Na/H-austauscher ergeben: Es konnte erstmals gezeigt werden, daß der kardiale Na/H-Austauscher maßgeblich an der beta-adrenerg induzierten Herzhypertrophie- und Fibrose-entstehung beteiligt ist und daß die pharmakologische Inhibition dieses Proteins sowohl Hypertrophie als auch die Fibrose wirksam unterdrücken kann.
Background
Arrhythmogenic cardiomyopathy is an inherited heart muscle disorder leading to ventricular arrhythmias and heart failure, mainly as a result of mutations in cardiac desmosomal genes. Desmosomes are cell-cell junctions mediating adhesion of cardiomyocytes; however, the molecular and cellular mechanisms underlying the disease remain widely unknown. Desmocollin-2 is a desmosomal cadherin serving as an anchor molecule required to reconstitute homeostatic intercellular adhesion with desmoglein-2. Cardiac specific lack of desmoglein-2 leads to severe cardiomyopathy, whereas overexpression does not. In contrast, the corresponding data for desmocollin-2 are incomplete, in particular from the view of protein overexpression. Therefore, we developed a mouse model overexpressing desmocollin-2 to determine its potential contribution to cardiomyopathy and intercellular adhesion pathology.
Methods and results
We generated transgenic mice overexpressing DSC2 in cardiac myocytes. Transgenic mice developed a severe cardiac dysfunction over 5 to 13 weeks as indicated by 2D-echocardiography measurements. Corresponding histology and immunohistochemistry demonstrated fibrosis, necrosis and calcification which were mainly localized in patches near the epi- and endocardium of both ventricles. Expressions of endogenous desmosomal proteins were markedly reduced in fibrotic areas but appear to be unchanged in non-fibrotic areas. Furthermore, gene expression data indicate an early up-regulation of inflammatory and fibrotic remodeling pathways between 2 to 3.5 weeks of age.
Conclusion
Cardiac specific overexpression of desmocollin-2 induces necrosis, acute inflammation and patchy cardiac fibrotic remodeling leading to fulminant biventricular cardiomyopathy.
Background
Fibrosis poses a substantial setback in regenerative medicine. Histopathologically, fibrosis is an excessive accumulation of collagen affected by myofibroblasts and this can occur in any tissue that is exposed to chronic injury or insult. Transforming growth factor (TGF)-β1, a crucial mediator of fibrosis, drives differentiation of fibroblasts into myofibroblasts. These cells exhibit α-smooth muscle actin (α-SMA) and synthesize high amounts of collagen I, the major extracellular matrix (ECM) component of fibrosis. While hormones stimulate cells in a pulsatile manner, little is known about cellular response kinetics upon growth factor impact. We therefore studied the effects of short TGF-β1 pulses in terms of the induction and maintenance of the myofibroblast phenotype.
Results
Twenty-four hours after a single 30 min TGF-β1 pulse, transcription of fibrogenic genes was upregulated, but subsided 7 days later. In parallel, collagen I secretion rate and α-SMA presence were elevated for 7 days. A second pulse 24 h later extended the duration of effects to 14 days. We could not establish epigenetic changes on fibrogenic target genes to explain the long-lasting effects. However, ECM deposited under singly pulsed TGF-β1 was able to induce myofibroblast features in previously untreated fibroblasts. Dependent on the age of the ECM (1 day versus 7 days’ formation time), this property was diminished. Vice versa, myofibroblasts were cultured on fibroblast ECM and cells observed to express reduced (in comparison with myofibroblasts) levels of collagen I.
Conclusions
We demonstrated that short TGF-β1 pulses can exert long-lasting effects on fibroblasts by changing their microenvironment, thus leaving an imprint and creating a reciprocal feed-back loop. Therefore, the ECM might act as mid-term memory for pathobiochemical events. We would expect this microenvironmental memory to be dependent on matrix turnover and, as such, to be erasable. Our findings contribute to the current understanding of fibroblast induction and maintenance, and have bearing on the development of antifibrotic drugs.
Objectives
Liver biopsies are the current gold standard in non-alcoholic steatohepatitis (NASH) diagnosis. Their invasive nature, however, still carries an increased risk for patients' health. The development of non-invasive diagnostic tools to differentiate between bland steatosis (NAFL) and NASH remains crucial. The aim of this study is the evaluation of investigated circulating microRNAs in combination with new targets in order to optimize the discrimination of NASH patients by non-invasive serum biomarkers.
Methods
Serum profiles of four microRNAs were evaluated in two cohorts consisting of 137 NAFLD patients and 61 healthy controls. In a binary logistic regression model microRNAs of relevance were detected. Correlation of microRNA appearance with known biomarkers like ALT and CK18-Asp396 was evaluated. A simplified scoring model was developed, combining the levels of microRNA in circulation and CK18-Asp396 fragments. Receiver operating characteristics were used to evaluate the potential of discriminating NASH.
Results
The new finding of our study is the different profile of circulating miR-21 in NASH patients (p<0.0001). Also, it validates recently published results of miR-122 and miR-192 to be differentially regulated in NAFL and NASH. Combined microRNA expression profiles with CK18-Asp396 fragment level scoring model had a higher potential of NASH prediction compared to other risk biomarkers (AUROC = 0.83, 95% CI = 0.754-0.908; p<0.001). Evaluation of score model for NAFL (Score = 0) and NASH (Score = 4) had shown high rates of sensitivity (91%) and specificity (83%).
Conclusions
Our study defines candidates for a combined model of miRNAs and CK18-Asp396 levels relevant as a promising expansion for diagnosis and in turn treatment of NASH.