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9
result(s) for
"Schmiedel Nesrin"
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Adapted clustering method for generic analysis of histological fibrosis staining as an open source tool
by
Schmiedel, Nesrin
,
Noormalal, Marie
,
Müller, Oliver J.
in
639/705/794
,
692/4019/592/1540
,
Animals
2023
Pathological remodeling of the extracellular matrix is a hallmark of cardiovascular disease. Abnormal fibrosis causes cardiac dysfunction by reducing ejection fraction and impairing electrical conductance, leading to arrhythmias. Hence, accurate quantification of fibrosis deposition in histological sections is of extreme importance for preclinical and clinical studies. Current automatic tools do not perform well under variant conditions. Moreover, users do not have the option to evaluate data from staining methods of their choice according to their purpose. To overcome these challenges, we underline a novel machine learning-based tool (FibroSoft) and we show its feasibility in a model of cardiac hypertrophy and heart failure in mice. Our results demonstrate that FibroSoft can identify fibrosis in diseased myocardium and the obtained results are user-independent. In addition, the results acquired using our software strongly correlate to those obtained by Western blot analysis of collagen 1 expression. Additionally, we could show that this method can be used for Masson’s Trichrome and Picosirius Red stained histological images. The evaluation of our method also indicates that it can be used for any particular histology segmentation and quantification. In conclusion, our approach provides a powerful example of the feasibility of machine learning strategies to enable automatic analysis of histological images.
Journal Article
Activation of IRF3 in cardiomyocytes impairs mitochondrial oxidative function through PGC-1α inhibition and drives heart failure
2026
Heightened sterile inflammation and mitochondrial metabolic dysfunction drives the pathophysiology of heart failure in ischemic cardiomyopathy. Yet, the transcriptional regulators within cardiomyocytes driving crosstalk between inflammation and energy metabolism remain ill-defined. Here we identify elevated Ser396/Ser398 phosphorylation of the type I interferon (IFN) response regulating transcription factor IRF3 in the myocardium of patients and male mice with ischemic cardiomyopathy. Cardiomyocyte-specific IRF3 deficiency attenuates ischemia induced contractile dysfunction. Conversely, IRF3 activation in cardiomyocytes through a phosphomimetic IRF3 mutant represses
Ppargc1α
expression leading to dysfunctional mitochondrial oxidative phosphorylation, altered metabolic flux in the pentose phosphate pathway/TCA cycle, impaired NAD metabolism and an excessive type I IFN activation, collectively detrimental for cardiac function. Restoring cardiomyocyte-specific
Ppargc1α
expression in IRF3-overexpressor male mice attenuates contractile dysfunction by augmenting a metabolic shift towards fatty acid oxidation and decreasing inflammatory fibrotic responses. These findings identify IRF3 activation in cardiomyocytes as a transcriptional nexus between cardiac inflammation and metabolic fuel switch contributing to heart failure progression.
Transcriptional crosstalk between inflammation and energy metabolism within cardiomyocytes remains unclear. Here, the authors identify IRF3/PGC-1α as a bidirectional transcriptional nexus between IFN response and mitochondrial oxidative phosphorylation in cardiomyocytes altering cardiac function.
Journal Article
AAV-mediated expression of NFAT decoy oligonucleotides protects from cardiac hypertrophy and heart failure
by
Wagner, Andreas H
,
Ullrich, Nina D
,
Ding, Lin
in
Aorta
,
Cardiomyocytes
,
Congestive heart failure
2021
Previous studies have underlined the substantial role of nuclear factor of activated T cells (NFAT) in hypertension-induced myocardial hypertrophy ultimately leading to heart failure. Here, we aimed at neutralizing four members of the NFAT family of transcription factors as a therapeutic strategy for myocardial hypertrophy transiting to heart failure through AAV-mediated cardiac expression of a RNA-based decoy oligonucleotide (dON) targeting NFATc1-c4. AAV-mediated dON expression markedly decreased endothelin-1 induced cardiomyocyte hypertrophy in vitro and resulted in efficient expression of these dONs in the heart of adult mice as evidenced by fluorescent in situ hybridization. Cardiomyocyte-specific dON expression both before and after induction of transverse aortic constriction protected mice from development of cardiac hypertrophy, cardiac remodeling, and heart failure. Singular systemic administration of AAVs enabling a cell-specific expression of dONs for selective neutralization of a given transcription factor may thus represent a novel and powerful therapeutic approach.
Journal Article
Deficiency for MicroRNA-582 does not impact dilated cardiomyopathy or heart failure induced by pressure overload in vivo
by
Schmiedel, Nesrin
,
Martini, Simone
,
Kuhn, Christian
in
Brief Research Report
,
cardiac hypertrophy
,
cardiomyopathy
2025
MicroRNAs (miRNAs) are critical post-transcriptional regulators of gene expression and have been extensively implicated in cardiovascular development, homeostasis, and disease. Among them, microRNA-582 (miR-582) has been associated with several non-cardiac pathologies, yet its role in the heart remains poorly characterized despite significant cardiac expression. In this study, we investigated the functional significance of miR-582 in cardiac pathophysiology through both gain- and loss-of-function approaches. We observed differential expression of miR-582 in murine models of cardiomyopathy, prompting further mechanistic evaluation. Thus, we generated transgenic mice with cardiac-specific overexpression of miR-582 (TG-582) as well as miR-582 knockout (582-KO) mice. Neither model exhibited an obvious cardiac phenotype under basal conditions. Following pressure overload via transverse aortic constriction (TAC), both TG-582 and 582-KO mice developed hypertrophy and functional adaptations comparable to wildtype controls. Additionally, crossbreeding these models with Calsarcin-1-knockout (CS1-KO) mice, a model of dilated cardiomyopathy, did not modify the pathological phenotype. These results indicate that miR-582 does not play a determinative role in pressure overload-induced cardiac hypertrophy or in the progression of dilated cardiomyopathy. Our findings highlight the importance of rigorously controlled in vivo studies to accurately define the cardiac miRNA landscape and to guide future therapeutic strategies.
Journal Article
Heart Failure Severity Closely Correlates with Intestinal Dysbiosis and Subsequent Metabolomic Alterations
by
Spehlmann, Martina E.
,
Schmiedel, Nesrin
,
Rangrez, Ashraf Y.
in
Aorta
,
Bile acids
,
Chromatography
2022
Growing evidence suggests an altered gut microbiome in patients with heart failure (HF). However, the exact interrelationship between microbiota, HF, and its consequences on the metabolome are still unknown. We thus aimed here to decipher the association between the severity and progression of HF and the gut microbiome composition and circulating metabolites. Using a mouse model of transverse aortic constriction (TAC), gut bacterial diversity was found to be significantly lower in mice as early as day 7 post-TAC compared to Sham controls (p = 0.03), with a gradual progressive decrease in alpha-diversity on days 7, 14, and 42 (p = 0.014, p = 0.0016, p = 0.0021) compared to day 0, which coincided with compensated hypertrophy, maladaptive hypertrophy, and overtly failing hearts, respectively. Strikingly, segregated analysis based on the severity of the cardiac dysfunction (EF < 40% vs. EF 40–55%) manifested marked differences in the abundance and the grouping of several taxa. Multivariate analysis of plasma metabolites and bacterial diversity produced a strong correlation of metabolic alterations, such as reduced short-chain fatty acids and an increase in primary bile acids, with a differential abundance of distinct bacteria in HF. In conclusion, we showed that HF begets HF, likely via a vicious cycle of an altered microbiome and metabolic products.
Journal Article
Cardiac transcriptional and metabolic changes following thoracotomy
by
Schmiedel, Nesrin
,
Heckmann, Markus B.
,
Rosskopf, Alexandra
in
692/308/1426
,
692/4017
,
692/4019
2020
Non-cardiac surgery is associated with significant cardiovascular complications. Reported mortality rate ranges from 1.9% to 4% in unselected patients. A postoperative surge in pro-inflammatory cytokines is a well-known feature and putative contributor to these complications. Despite much clinical research, little is known about the biomolecular changes in cardiac tissue following non-cardiac surgery. In order to increase our understanding, we analyzed whole-transcriptional and metabolic profiling data sets from hearts of mice harvested two, four, and six weeks following isolated thoracotomy. Hearts from healthy litter-mates served as controls. Functional network enrichment analyses showed a distinct impact on cardiac transcription two weeks after surgery characterized by a downregulation of mitochondrial pathways in the absence of significant metabolic alterations. Transcriptional changes were not detectable four and six weeks following surgery. Our study shows distinct and reversible transcriptional changes within the first two weeks following isolated thoracotomy. This coincides with a time period, in which most cardiovascular events happen.
Journal Article
Dysbindin deficiency Alters Cardiac BLOC-1 Complex and Myozap Levels in Mice
by
Schmiedel, Nesrin
,
Borlepawar, Ankush
,
Christen, Lynn
in
Binding proteins
,
cardiac hypertrophy
,
Cell organelles
2020
Dysbindin, a schizophrenia susceptibility marker and an essential constituent of BLOC-1 (biogenesis of lysosome-related organelles complex-1), has recently been associated with cardiomyocyte hypertrophy through the activation of Myozap-RhoA-mediated SRF signaling. We employed sandy mice (Dtnbp1_KO), which completely lack Dysbindin protein because of a spontaneous deletion of introns 5–7 of the Dtnbp1 gene, for pathophysiological characterization of the heart. Unlike in vitro, the loss-of-function of Dysbindin did not attenuate cardiac hypertrophy, either in response to transverse aortic constriction stress or upon phenylephrine treatment. Interestingly, however, the levels of hypertrophy-inducing interaction partner Myozap as well as the BLOC-1 partners of Dysbindin like Muted and Pallidin were dramatically reduced in Dtnbp1_KO mouse hearts. Taken together, our data suggest that Dysbindin’s role in cardiomyocyte hypertrophy is redundant in vivo, yet essential to maintain the stability of its direct interaction partners like Myozap, Pallidin and Muted.
Journal Article
The E3 ubiquitin ligase HectD3 attenuates cardiac hypertrophy and inflammation in mice
2020
Myocardial inflammation has recently been recognized as a distinct feature of cardiac hypertrophy and heart failure. HectD3, a HECT domain containing E3 ubiquitin ligase has previously been investigated in the host defense against infections as well as neuroinflammation; its cardiac function however is still unknown. Here we show that HectD3 simultaneously attenuates Calcineurin-NFAT driven cardiomyocyte hypertrophy and the pro-inflammatory actions of LPS/interferon-γ via its cardiac substrates SUMO2 and Stat1, respectively. AAV9-mediated overexpression of HectD3 in mice in vivo not only reduced cardiac SUMO2/Stat1 levels and pathological hypertrophy but also largely abolished macrophage infiltration and fibrosis induced by pressure overload. Taken together, we describe a novel cardioprotective mechanism involving the ubiquitin ligase HectD3, which links anti-hypertrophic and anti-inflammatory effects via dual regulation of SUMO2 and Stat1. In a broader perspective, these findings support the notion that cardiomyocyte growth and inflammation are more intertwined than previously anticipated.
Rangrez et al. show that overexpression of the HECT domain E3 ubiquitin protein ligase 3 (HectD3) reduces cardiac hypertrophy while reducing macrophage infiltration in mice. This study provides a cardioprotective mechanism, where HectD3 targets SUMO2 and Stat1 to exert its anti-hypertrophic and anti-inflammatory effects.
Journal Article
TRIM24 preserves cardiomyocyte immune quiescence by repressing interferon/STAT signaling
2025
Innate immune activation in cardiomyocytes is a key driver of inflammatory heart disease and heart failure progression, yet the mechanisms by which cardiomyocytes maintain transcriptional immune quiescence remain poorly understood. TRIM24, a multidomain chromatin reader implicated in cancer and inflammation, has not been previously studied in the heart. Here, we investigated whether TRIM24 regulates interferon/STAT-driven inflammatory programs and paracrine signaling in cardiomyocytes. Single-nucleus RNA sequencing revealed a pronounced downregulation of TRIM24 specifically in cardiomyocytes from human ischemic cardiomyopathy, a change not detected by bulk RNA-sequencing in either human or mouse myocardial infarction samples, likely due to masking by non-cardiomyocyte cell populations. Fractionated protein analysis further demonstrated that TRIM24 is enriched in cardiomyocyte nuclei. Functional studies in neonatal rat ventricular cardiomyocytes showed that TRIM24 represses interferon-stimulated and STAT-dependent genes, including Mx1, Irf7, and Ifit3. ChIP-Seq revealed TRIM24 occupancy at STAT-bound regulatory regions, suggesting cooperative suppression of inflammatory gene networks. Mechanistically, TRIM24 decreased Stat1a/b and Stat3 transcription, reduced protein abundance, and inhibited phosphorylation independently of proteasomal degradation; these effects were partially reversible by bromodomain inhibition. Functionally, TRIM24 overexpression dampened paracrine macrophage recruitment, whereas TRIM24 depletion amplified it. Collectively, these findings identify TRIM24 as a cardiomyocyte-enriched chromatin regulator that restrains STAT1/3 signaling and suppresses paracrine inflammatory activation. TRIM24 acts as a transcriptional safeguard of immune quiescence in the heart and represents a potential therapeutic target for limiting cardiac inflammation.