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Biology subjects

Trogisch, F. A.

Publications and source records attributed to Trogisch, F. A..

3 recordsLinked to original sources

NFAT5-dependent transcriptional stress control of endothelial cells prevents maladaptive remodeling of pulmonary arterioles in the hypoxic lung

AimsChronic hypoxia causes detrimental structural alterations in the lung, which are partially dependent on stress responses of the endothelium. In this context, we revealed that hypoxia-exposed murine lung endothelial cells (MLEC) activate nuclear factor of activated T-cells 5 (NFAT5) - a transcription factor that adjusts the cellular transcriptome to cope with multiple environmental stressors. Here, we studied the functional relevance of NFAT5 for the control of hypoxia-induced transcription in MLEC. Methods and ResultsTargeted ablation of Nfat5 in endothelial cells did not evoke phenotypic abnormalities in normoxia-exposed mice. However, MLEC in Nfat5-deficient mice up-regulated energy- and protein-metabolism-associated gene expression under normobaric hypoxia (10% O2) for seven days as evidenced by microarray- and scRNA-seq-based analyses. Moreover, loss of NFAT5 boosted the expression and release of platelet-derived growth factor B (Pdgfb) - a HIF1-regulated driver of vascular smooth muscle cell (VSMC) growth - in capillary MLEC of hypoxia-exposed mice, which was accompanied by exaggerated coverage of distal pulmonary arterioles by VSMC, increased pulmonary vascular resistance and impaired right ventricular functions. In vitro, knockout of Nfat5 in cultured MLEC stimulated Pdgfb expression and release after exposure to hypoxia and amplified binding of HIF1 in the Pdgfb promoter region. ConclusionCollectively, our study identifies NFAT5 as a protective transcription factor required to rapidly adjust the transcriptome of MLEC to hypoxia. Specifically, NFAT5 restricts HIF1-mediated Pdgfb expression and consequently limits muscularization and resistance of pulmonary arterioles. HighlightsO_LIHypoxia stimulates the transcriptional activity of NFAT5 in MLEC. C_LIO_LILoss of NFAT5 in hypoxia-exposed MLEC results in EC subtype-specific maladaption of growth factor-, energy- and protein-metabolism-associated gene expression. C_LIO_LISpecifically, NFAT5-deficient capillary lung EC unleash HIF1-regulated Pdgfb expression and release, which results in excessive coverage of pulmonary arterioles by VSMC. C_LIO_LINFAT5-dependent control of early stress responses of capillary MLEC is required to limit the increase in pulmonary vascular resistance and impairment of right ventricular functions. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=166 SRC="FIGDIR/small/563022v1_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@c9be61org.highwire.dtl.DTLVardef@f1d7cforg.highwire.dtl.DTLVardef@18f795forg.highwire.dtl.DTLVardef@695601_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Secreted long non-coding RNAs Gadlor1 and Gadlor2 affect multiple cardiac cell types and aggravate cardiac remodeling during pressure overload

BackgroundPathological overload triggers maladaptive myocardial remodeling that leads to heart failure. Recent studies have shown that long non-coding RNAs (lncRNAs) regulate cardiac remodeling. This study investigates two recently discovered, secreted lncRNAs, Gadlor1 and Gadlor2 (Gadlor 1/2). MethodsWe generated compound Gadlor1/2 knock-out (KO) mice and compared their response to pressure overload by transverse aortic constriction (TAC) to that of wild-type (WT) littermates. Endothelial cells, fibroblasts and cardiomyocytes were isolated from the hearts of both genotypes after TAC and their transcriptome was investigated by RNA sequencing. Gadlor target proteins were identified by RNA antisense purification coupled with mass spectrometry (RAP-MS) in cardiomyocytes. In addition, we investigated the effects of cardiac overexpression of Gadlor1/2. ResultsGadlor1/2 are jointly upregulated in failing mouse hearts as well as in the myocardium of heart failure patients. Cardiac overexpression of Gadlor1 and Gadlor2 aggravated myocardial dysfunction and enhanced hypertrophic and fibrotic remodeling in mice exposed to pressure overload. Compound Gadlor1/2 KO mice, in turn, exerted markedly reduced myocardial hypertrophy, fibrosis and dysfunction, but more angiogenesis during short and long-standing pressure overload. Paradoxically, Gadlor1/2 KO mice suffered from sudden death during prolonged overload, possibly due to cardiac arrhythmia. Gadlor1 and Gadlor2, which are mainly expressed in endothelial cells (ECs) in the heart, where they inhibit pro-angiogenic gene-expression, are strongly secreted within extracellular vesicles (EVs). These EVs transfer Gadlor lncRNAs to cardiomyocytes, where they bind and activate calmodulin-dependent kinase II, induce pro-hypertrophic gene-expression and enhance calcium re-uptake into the sarcoplasmic reticulum. ConclusionGadlor1 and Gadlor2 are lncRNAs that are mainly enriched in EC-derived EVs and are jointly upregulated in mouse and human hearts during pathological overload. We reveal a crucial endothelial cell-cardiomyocyte crosstalk, which aims at restoring calcium homeostasis in cardiomyocytes during overload at the cost of aggravated hypertrophy and fibrosis.

systems biology↗

Rnf20 shapes the endothelial control of heart morphogenesis and function

During embryogenesis, distinct cardiac cell types form, which shape the structural and functional properties of the heart. How their activity is coordinated is largely unknown. Here we show that Rnf20 is a multifaceted regulator of cardiac morphogenesis and function. On the one hand, Rnf20 controls extracellular matrix dynamics and endothelial-cardiomyocyte crosstalk essential for second heart field development. On the other hand, it safeguards endothelial cell identity and function by maintaining physiological angiocrine signaling and preventing endothelial-to-mesenchymal transition. Endothelial-specific deletion of Rnf20 led to ventricular septal defects, myocardial thinning and cardiac dysfunction as a result of aberrant signaling and excessive extracellular matrix deposition that induced precocious cardiomyocyte binucleation and irregular contractility. Furthermore, we uncovered upstream factors (e.g. Sox9) and multiple angiocrine and extracellular matrix molecules that alter cardiomyocyte functionality upon endothelial Rnf20 loss. In summary, our work identifies a novel, endothelial-specific role of Rnf20 in regulating cardiac morphogenesis and function.

developmental biology↗