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Ashour, D. E.

Publications and source records attributed to Ashour, D. E..

3 recordsLinked to original sources

Murine CMV Infection Unmasks Macrophage-Driven Inflammatory Cardiomyopathy in Pkp2, but not in Ttn Mutant Mice

2.BackgroundGenetic cardiomyopathies display variable penetrance and phenotypic expression, highlighting the influence of environmental modulators. Myocarditis, commonly triggered by cardiotropic viruses, overlaps clinically with genetic cardiomyopathies. Consequently, these infections are implicated as secondary factors that accelerate disease onset and progression, yet their precise impact in specific genetic settings remains unexplored. MethodsTo interrogate this, genetic mouse models heterozygous for a mutant allele of desmosomal plakophilin-2 (Pkp2+/-) or sarcomeric titin (Ttn+/-), genes frequently linked to acute myocarditis, were challenged with murine cytomegalovirus (MCMV) to determine how latent infection influences myocardial inflammation, tissue remodeling, and cardiac performance. Integrated experimental approaches, including echocardiography, histology, flow cytometry, single-cell RNA sequencing, as well as cytokine and kinome analyses, defined immune and signaling responses in infected versus non-infected hearts. ResultsAcute, MCMV-induced viral myocarditis and subsequent latent MCMV infection unmasked early disease onset in Pkp2+/- animals, leading to progressive systolic impairment, whereas in Ttn+/- mice cardiac structure and function remained preserved throughout infection. Cardiac immune profiling uncovered infection- and genotype-specific divergence: both genetic models showed a stable myocardial effector-memory CD8+ T-cell response to MCMV, but only Pkp2+/- hearts recruited additional Ly6C+ CCR2+ monocytes and macrophages with distinct inflammatory signatures. In the absence of infection, Pkp2 insufficiency initiated subclinical CCL2 secretion and subsequent recruitment of CCR2+ cells, reflecting early immune activation preceding age-associated functional and structural decline. At this stage, cytokine and kinase evaluations indicated a balance between proinflammatory and compensatory signals. However, with aging or following MCMV challenge, this balance shifted towards persistent inflammation, evidenced by chronic upregulation of cytokines and activation of signaling pathways, which ultimately led to adverse effects and myocardial dysfunction. ConclusionsManifestation of genetic cardiomyopathies depends on interactions between inherited susceptibility and environmental stressors. Here, we show that cytomegalovirus infection intensifies inflammation in PKP2-related cardiomyopathy. In contrast, TTN-linked cardiomyopathy does not exhibit increased inflammation under the same conditions. For individuals carrying desmosomal variants, infection control and tailored anti-inflammatory strategies may attenuate or delay disease manifestation and progression.

immunology↗

Interferon gamma signaling drives cardiac metabolic rewiring

BackgroundIFN-gamma (IFN-{gamma}) signaling influences myocardial inflammation and fibrosis across a wide range of conditions, including ischemic and non-ischemic heart failure (HF). However, the direct effects of IFN-{gamma} on cardiomyocytes remain poorly understood. Here, we developed a novel in vivo model to investigate how IFN-{gamma} impacts myocardial metabolism and function. MethodsMale C57BL/6J mice were injected intravenously with hepatotropic adeno-associated virus (AAV2/8) carrying Ifng and nLuc reporter under the albumin promoter (AAV- Ifng) or empty vector control virus (AAV-ctrl). Cardiac alterations were monitored on day 28 through flow cytometry, bulk RNA sequencing, targeted metabolomics, isolated mitochondrial activity, echocardiography, and in vivo imaging using [18F]fluordeoxyglucose ([18F]FDG) and [18F]fluoro-6-thia-heptadecanoic acid. Additionally, mice lacking IFN-{gamma} receptor expression in cardiomyocytes (Myh6Cre Ifngr1fl/fl) were used to further dissect the cell-intrinsic roles of IFN-{gamma} signaling in cardiomyocyte metabolic reprograming. ResultsAfter confirming liver-specific viral transfection and elevated serum IFN-{gamma} production at physiological levels, we observed cardiac metabolic adaptation and rewiring in animals treated with AAV-Ifng compared to control animals. Myocardial bulk RNA sequencing and gene set enrichment analysis identified an IFN-{gamma} response signature accompanied by marked down-regulations of oxidative phosphorylation and fatty acid oxidation pathways. Functional assessment of isolated cardiac mitochondria showed decreased oxygen consumption, and targeted metabolomics confirmed metabolic shifts toward glycolysis in mice overexpressing IFN-{gamma}. In vivo imaging confirmed increased cardiac glucose uptake following AAV-Ifng treatment. Notably, these metabolic alterations were abrogated in mice with cardiomyocyte-specific deletion of IFN-{gamma} receptors (IFNGR). ConclusionsSystemic IFN-{gamma} induces pronounced metabolic reprogramming in the heart, characterized by increased glucose uptake and reduced oxidative phosphorylation, via direct signaling through cardiomyocyte IFNGR. These alterations mirror those observed in aging and some forms of HF, thereby highlighting that, beyond classical inflammation, this cytokine regulates cardiac metabolism. Novelty and significanceO_ST_ABSWhat is known?C_ST_ABSO_LIImmunological mechanisms can impact myocardial disease progression through complex context-dependent mechanisms. C_LIO_LIIFN-{gamma}, a cytokine primarily secreted by natural killer and T cells, promotes myocardial inflammation and fibrosis in the context of autoimmune myocarditis, pressure-overload-induced heart failure, and Chagas cardiomyopathy. C_LIO_LICytokines exert pleiotropic effects and can influence inflammatory responses through mechanisms involving control of energy metabolism. C_LI What new information does this article contribute?O_LIA novel adeno-associated virus model of systemic IFN-{gamma} elevation allows assessment of cardio-immune-metabolic crosstalk without confounding factors. C_LIO_LIIFN-{gamma} drives cardiac metabolic reprogramming in inflammatory contexts, characterized by enhanced glucose uptake and glycolysis with mitochondrial dysfunction, ultimately altering cardiac metabolic fluxes and function. C_LIO_LIThe IFN-{gamma}-induced cardiac metabolic reprogramming is, at least in part, mediated through direct signaling via receptors on cardiomyocytes. C_LI

immunology↗

Rapid differentiation of regulatory CD4+ T cells in the infarcted myocardium blunts in situ inflammation

BackgroundMyocardial infarction (MI) is a sterile inflammatory condition associated with tissue injury that results in the activation of T helper cell targeting cardiac antigens. However, the differentiation trajectories and in situ activity of heart-specific CD4+T cells activated in the MI context remain poorly understood. MethodsHerein, we combined T-cell receptor transgenic models targeting myocardial protein, single-cell transcriptomics, and functional phenotyping to elucidate how the myosin-specific CD4+ T cells (TCR-M) differentiate in the murine infarcted myocardium and ultimately influence tissue repair. Furthermore, we adoptively transferred heart-specific T-cells that were pre-differentiated in vitro towards pro-inflammatory versus regulatory phenotypic states to dissect how they differentially regulate post-myocardial infarction (MI) inflammation. ResultsFlow cytometry and single-cell transcriptomics findings reveled that transferred TCR-M cells rapidly acquired an induced regulatory phenotype (iTreg) in the infarcted myocardium and blunt local inflammation. Myocardial TCR-M cells differentiated into two main lineages enriched with cell activation and pro-fibrotic transcripts (e.g. Tgfb1) or with suppressor immune checkpoints (e.g. Pdcd1), which we also found in human myocardial tissue. These cells produced high levels of latency-associated peptide (LAP) and inhibited interleukine-17 (IL-17) responses. Notably, TCR-M cells that were pre-differentiated in vitro towards a regulatory phenotype maintained a stable in vivo FOXP3 expression and anti-inflammatory activity when adoptively transferred prior to MI induction. In contrast, TCR-M cells that were pre-differentiated in vitro towards a pro-inflammatory TH17 phenotype were partially converted towards a regulatory phenotype in the injured myocardium and blunted myocardial inflammation. ConclusionsThese findings reveal that the myocardial milieu provides a suitable environment for iTreg differentiation and reveals novels mechanisms by which the healing myocardium shapes local immunological processes.

immunology↗