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Biology subjects

Friedberg, M. K.

Publications and source records attributed to Friedberg, M. K..

3 recordsLinked to original sources

Revisiting the Structure of the Ventricular Myocardium in Tetralogy of Fallot Using Hierarchical Phase Contrast Tomography and Structure Tensor Analysis

BACKGROUNDIn tetralogy of Fallot (ToF), changes in right ventricular function (as assessed by strain or TAPSE) reflect altered myocardial structure. Direct three-dimensional anatomical evidence supporting these changes remains limited. The objective of this study was to non-destructively characterize myocardial architecture in pediatric ToF hearts using Hierarchical Phase-Contrast Tomography (HiP-CT) and structure tensor analysis. METHODSTwenty ToF and control pediatric hearts were imaged at the European Synchrotron, ESRF. Myocyte orientation was assessed through structure tensor analysis and distributed high-performance computing. A region-specific framework was developed for analysis of the right ventricle. The predominant direction of myocardial aggregates (their helical angle) was compared across ventricular regions. RESULTSSignificant differences in orientation were found in all ToF segments vs controls (left ventricle, right ventricular inlet, right ventricular outflow tract, septum; p < 0.001). Myocytes in the ToF right ventricular inlet were more circumferential overall, with regional heterogeneity. Contrary to traditional models, no discrete middle layer was found in the ToF right ventricle; instead, a shift towards more circumferentially orientated myocytes and disrupted septal and outflow components was observed. Right ventricular contribution to the septum was greater in ToF (47.3% vs 34.0%; p = 0.0026), with extension of ventricular insertion points disrupting septal architecture. There were more longitudinally oriented myocytes in the ToF right ventricular outflow tract, consistent with hypertrophied septoparietal trabeculations. Left ventricular structure in ToF demonstrated a greater proportion of circumferentially oriented myocytes compared to controls. CONCLUSIONSWe reveal profound alterations in ToF myocardial organization which broadly align with clinical observations and provide the first open-access HiP-CT congenital heart disease data as a basis for future computational modelling. Clinical PerspectiveWhole-heart HiP-CT demonstrates a loss of normal LV-RV distinction in the ToF myocardium, alongside extensive septal disarray. These findings provide a structural substrate for RV dysfunction, ventricular-ventricular interaction, and arrhythmogenesis in ToF, challenging traditional layer-based models of ventricular myocardium. Understanding myocardial organization as a continuous, developmentally patterned three-dimensional structure is essential for accurate interpretation of ventricular mechanics and disease progression. Although HiP-CT imaging is not applicable in vivo, the structural phenotypes identified in this study generate testable hypotheses for clinical imaging. Future work should focus on correlating ex-vivo measures with in-vivo imaging markers derived from cardiac magnetic resonance, including strain, TAPSE, and assessment of ventricular interactions. Investigating myocardial phenotype across the life-course, from fetal life to adulthood, paired with multi-omics mapped to these three-dimensional datasets, may help elucidate mechanisms underlying myocardial remodeling in ToF and support the development of novel therapeutic approaches.

physiology↗

NDUFS2 (NADH:Ubiquinone oxidoreductase core subunit S2) in Mitochondrial Electron Transport Chain Complex I is Critical to Oxygen Responsiveness of Human Ductus Arteriosus Smooth Muscle Cells

BackgroundMitochondria in ductus arteriosus smooth muscle cells (DASMCs) are oxygen sensors triggering vasoconstriction at birth; however, the oxygen sensing mechanisms are incompletely understood. Given the conserved role of mitochondrial Complex I subunit NDUFS2 in other oxygen-sensing tissues, we examined its role in DASMC oxygen sensing, comparing it to other Complex I subunits (NDUFS1 and NDUFS7) and putative O2-sensor subunits (UQCRFS1 and COX4I2). MethodsHuman DASMCs were grown in hypoxia (pO2=41mmHg). Oxygen responsiveness was assessed, measuring changes in intracellular calcium, [Ca2+]i, cell length, and mitochondrial reactive oxygen species (mROS). DASMCs were treated for 48-hours with control siRNA versus siRNA targeting NDUFS2, NDUFS1, NDUFS7, UQCRFS1, or COX4I2. qPCR and immunoblotting confirmed knockdown. 3RNA sequencing assessed transcriptional changes following siRNA. ResultsOxygen increased mitochondrial fission, [Ca2+]i, and constricted DASMCs. 48-hours post-treatment, siNDUFS2 selectively depressed oxygen-induced increase in [Ca2+]i (siControl +18.6{+/-}2.3%, siNDUFS2 +5.5{+/-}1.5%, p<0.0001), DASMC shortening (from 18.4{+/-}1.1% to 8.9{+/-}0.8%, p<0.0001), and mROS (+24{+/-}4.9% untreated, -6.6{+/-}5.4% post-siNDUFS2, p<0.0001), without altering the KCl response or depressing respiration. The mitochondrial antioxidant MitoTEMPO reduced mROS (2.9{+/-}4.5%, p=0.001) and attenuated oxygen-induced DASMC shortening (8.4{+/-}0.9%, p=0.0003). Transcriptomics revealed unique changes in mitochondrial pathways post siNDUFS2. ConclusionsNDUFS2 regulates mROS and is a mitochondrial oxygen sensor in human DASMCs. ImpactO_LIWe demonstrated a unique role of Complex I subunit NDUFS2 (NADH:Ubiquinone Oxidoreductase Core Subunit S2), amongst putative oxygen-sensing electron transport chain subunits, in the responsiveness of human ductus arteriosus (DA) smooth muscle cells (DASMCs) to oxygen. C_LIO_LINDUFS2 knockdown inhibited oxygen-induced DASMC constriction and generation of mitochondrial reactive oxygen species, at a timepoint prior to inhibition of mitochondrial respiration and without inhibition of KCl-induced constriction. C_LIO_LIWhile mitochondria are known DA oxygen sensors, this work identifies NDUFS2 as a molecular mediator of human DA oxygen sensing within the mitochondria, enhancing our understanding of a vital physiologic phenomenon and providing a novel potential therapeutic target to modulate ductal patency. C_LI

molecular biology↗

Adverse structural and mechanical remodelling of main pulmonary artery in experimental pulmonary arterial hypertension is associated with impaired right ventricle-pulmonary artery coupling and function

RationaleCoupling between right ventricular function and the pulmonary vasculature determines outcomes in pulmonary arterial hypertension. The mechanics of the main pulmonary artery is an important but understudied determinant of right ventricular-pulmonary artery coupling. ObjectivesTo investigate the histology and mechanics of the pulmonary artery in relationship to right ventricular remodeling, mechanics, hemodynamics and coupling in experimental pulmonary arterial hypertension. MethodsIn a sugen+hypoxia rat model of pulmonary arterial hypertension, right ventricular hemodynamics were assessed by conductance catheters. Active tension-strain curves were generated using echocardiography. Main pulmonary artery and right ventricle free-wall were harvested to determine their macro- and micro-structure, composition, and mechanical properties. Comprehensive multivariate analyses elucidated relationships between pulmonary artery and right ventricle mechanics, structure and coupling. Measurements and Main ResultsPulmonary hypertensive main pulmonary arteries developed fibrosis relative to healthy controls, as did right ventricles, which also hypertrophied, with re-orientation of muscle fibres toward a tri-layer architecture reminiscent of normal left ventricular architecture. Increased glycosaminoglycan deposition and increased collagen-to-elastin ratio in the pulmonary artery; and increased collagen, as well as hypertrophy and reorganization of myofibers in the right ventricle, led to increased stiffness. This increase in stiffness was more pronounced in the longitudinal direction in the high- and low-strain regime for the pulmonary artery and right ventricle, respectively, causing increased mechanical anisotropy. Main pulmonary artery stiffening correlated significantly with right ventricular tissue mechanical remodelling and reduced systolic performance, cardiac output and right ventricle-pulmonary artery coupling. ConclusionsCompositional, structural, and mechanical changes in the main pulmonary artery correlate with adverse right ventricular remodeling, mechanics, function and coupling in pulmonary arterial hypertension. Therefore, increasing mechanical compliance of the large pulmonary arteries may be an important and novel therapeutic strategy for mitigating right ventricular failure.

physiology↗