bioRxiv Science⌕ Search

Biology subjects

Nyarko, O. O.

Publications and source records attributed to Nyarko, O. O..

3 recordsLinked to original sources

Mitochondrial and Cardiolipin Adaptations to Ventricular Assist Device Support in Pediatric Versus Adult Failing Myocardium

BackgroundVentricular assist devices (VADs) are used as treatment for end-stage heart failure in children and adults. We previously demonstrated decreased mitochondrial function and changes in cardiolipin, a mitochondrial phospholipid, in explanted pediatric and adult failing hearts. In this study, we tested the hypothesis that VAD unloading of failing hearts leads to positive changes in myocardial cardiolipin in both pediatric and adult hearts. MethodsVentricular tissue was collected from the same patient at time of VAD implantation and at transplant. Ejection fraction (EF), left ventricular internal diameter at end-diastole (LVIDd) and brain natriuretic peptide (BNP) were assessed pre- and post-VAD. Cardiolipin species from paired VAD core and explants were quantified using liquid chromatography mass spectrometry. Mitochondrial respiration was measured in ventricular tissue pre- and post-VAD in paired pediatric samples using the Oroboros Oxygraph-2k. ResultsVAD support led to increased EF and decreased LVIDd and BNP. The predominant cardiolipin species in cardiac mitochondria, tetralinoleoylcardiolipin, was positively remodeled in pediatric post-VAD myocardium, while adult post-VAD myocardium demonstrated significantly increased total cardiolipin and decreased oxidized cardiolipin but did not demonstrate the tetralinoleoylcardiolipin remodeling seen in pediatric hearts. In pediatric patients, VAD support resulted in significant increases in Complex I+II activity, and a trend toward increases in Complex I activity. ConclusionOur data demonstrate age-related differences in VAD-associated cardiolipin remodeling and suggest that improved mitochondrial function in pediatric VAD-supported hearts could be related to increased tetralinoleoylcardiolipin.

physiology↗

A novel Notch and WNT signaling mechanism contribute to pediatric DCM: a pathway to new therapeutics.

BackgroundTherapies for pediatric idiopathic dilated cardiomyopathy (iDCM) are extrapolated from adult heart failure despite limited efficacy, suggesting fundamental biological differences. Our prior transcriptomic studies indicate activation of developmental signaling pathways, including Notch and WNT, in pediatric iDCM; however, their mechanistic contribution remains unknown. We tested whether reactivation of Notch and WNT/{beta}-catenin signaling drives pathological remodeling in postnatal hearts and whether pathway inhibition improves cardiac function. MethodsWe developed a juvenile rat model to reproduce age-dependent molecular features of pediatric iDCM using {beta}-adrenergic stimulation (isoproterenol, ISO) and secreted frizzled-related protein-1 (sFRP1), a circulating WNT modulator elevated in children with DCM. Cardiac function was assessed by echocardiography; pathway activation by immunoblotting and transcriptomics; myocardial stiffness by atomic force microscopy. Findings were compared with explanted pediatric and adult human myocardium. ResultsExplanted pediatric, but not adult iDCM hearts exhibited increased nuclear and cytoplasmic Notch intracellular domain (NICD) and {beta}-catenin. Combined ISO and sFRP1 treatment recapitulated key features of pediatric disease, including ventricular dilation, reduced ejection fraction, reactivation of the fetal gene program, and increased myocardial stiffness in the absence of fibrosis or hypertrophy. Bulk and single-nucleus RNA sequencing identified cardiomyocyte-specific activation of Notch and WNT pathways and reduced intercellular signaling diversity. Mechanistically, {beta}-catenin silencing attenuated Notch target gene activation and pathological remodeling in vitro. Pharmacologic Notch inhibition reduced NICD and {beta}-catenin accumulation, improved ventricular function, and normalized myocardial stiffness in vivo. ConclusionPediatric iDCM is characterized by pathological co-activation of developmental Notch-WNT signaling pathways that are not observed in adult disease. Reactivation of this axis promotes maladaptive remodeling and myocardial stiffening, and its inhibition improves cardiac function. These findings establish developmental signaling reactivation as a central mechanism of pediatric iDCM and support age-specific therapeutic strategies.

molecular biology↗

The pericardium forms as a distinct structure during heart formation

The heart integrates diverse cell lineages into a functional unit, including the pericardium, a mesothelial sac that supports heart movement, homeostasis, and immune responses. However, despite its critical roles, the developmental origins of the pericardium remain uncertain due to disparate models. Here, using live imaging, lineage tracking, and single-cell transcriptomics in zebrafish, we find the pericardium forms within the lateral plate mesoderm from dedicated anterior mesothelial progenitors and distinct from the classic heart field. Imaging of transgenic reporters in zebrafish documents lateral plate mesoderm cells that emerge lateral of the classic heart field and among a continuous mesothelial progenitor field. Single-cell transcriptomics and trajectories of hand2-expressing lateral plate mesoderm reveal distinct populations of mesothelial and cardiac precursors, including pericardial precursors that are distinct from the cardiomyocyte lineage. The mesothelial gene expression signature is conserved in mammals and carries over to postnatal development. Light sheet-based live-imaging and machine learning-supported cell tracking documents that during heart tube formation, pericardial precursors that reside at the anterior edge of the heart field migrate anteriorly and medially before fusing, enclosing the embryonic heart to form a single pericardial cavity. Pericardium formation proceeds even upon genetic disruption of heart tube formation, uncoupling the two structures. Canonical Wnt/{beta}-catenin signaling modulates pericardial cell number, resulting in a stretched pericardial epithelium with reduced cell number upon canonical Wnt inhibition. We connect the pathological expression of secreted Wnt antagonists of the SFRP family found in pediatric dilated cardiomyopathy to increased pericardial stiffness: sFRP1 in the presence of increased catecholamines causes cardiomyocyte stiffness in neonatal rats as measured by atomic force microscopy. Altogether, our data integrate pericardium formation as an independent process into heart morphogenesis and connect disrupted pericardial tissue properties such as pericardial stiffness to pediatric cardiomyopathies.

developmental biology↗