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Loyer, V.

Publications and source records attributed to Loyer, V..

2 recordsLinked to original sources

Resistance to Atrial Fibrillation Domestication and Mitochondrial Dysfunction in Sheep: a potential key role of the TCA Cycle and mitochondrial redox state

BackgroundAtrial fibrillation (AF) often progresses from paroxysmal to more stable forms. It is well-recognized that patients vary in their AF progression, but underlying mechanisms remain unclear. This work, performed in a sheep AF-model, aimed to identify atrial redox and energetic status differences between animals developing stable AF (AF-S) versus those resistant to AF-stabilization (AF-R). MethodsAF was monitored with telemetry and maintained with bursts of atrial tachystimulation whenever sinus rhythm resumed. Electrophysiological remodeling was assessed via contact mapping. Structural remodeling was described by histology. Proteomic, metabolomic, enzymatic and bioenergetic remodeling were evaluated using frozen left atrial appendage (LAA) tissues and isolated LAA mitochondria. Healthy young rats were used to investigate if an induced metabolic challenge could stabilize AF episodes upon transesophageal atrial tachypacing challenge. ResultsAF-S sheep developed stable AF (>24-hours self-sustained) after 13 days on average, whereas AF-R sheep failed to develop self-sustained AF despite 120 days of electrically-maintained AF. Contact mapping and histological analysis revealed similar electro-structural remodeling in both groups. Metabolic analysis showed significant differences in tricarboxylic acid (TCA) cycle enzymes activities and a 45% increase in AF-S LAA succinate content versus AF-R. AF-S mitochondria showed abnormal mitochondrial succinate oxidation, associated with a significant 20% decrease in ATP synthesis rate, 22% increase in ROS emission and mitochondrial inner membrane hyperpolarization. The ratios of ATP to ADP, NAD+ to NADH, and Complex I/II were disturbed in AF-S compared to AF-R. Calculated mitochondrial NAD+ to NADH ratios suggest a reduced state of in-vivo AF-R mitochondria compared to the oxidized state of AF-S. Exogenous succinate was metabolized when incubated with rat atrial cardiomyocytes and altered redox balance, while intravenous succinate stabilized atrial arrhythmias induced by tachypacing in vivo. ConclusionsSheep resistant to AF-progression showed specific TCA cycle, energetic and redox adaptations compared to animals that developed self-sustained AF. In this animal model, mitochondrial TCA cycle remodeling and associated redox and energetic responses determined the resistance to AF domestication, with potential relevance to identify new mechanistic determinants of AF progression in humans.

pathology↗

Increased spontaneous Ca2+ activity in Cardiac Purkinje cells after myocardial infarction; A consequence of a dramatic shift of SERCA isoforms as potential adaptation to acute ischemia?

BackgroundStudies of Purkinje cells (Pcells) from canine hearts have suggested an increase of Ca2+-release by the sarcoplasmic reticulum (SR) but also reported a potential augmentation of SR-Ca2+-uptake after MI. Abnormal increase of SR-Ca2+-uptake in heart cells is novel and contrasts with the reduction of this function in cells of failing heart. Our study examined the origin of this increased SR-Ca2+-uptake by considering a change in SR-Ca2+ pump (SERCA2) expression in Purkinje fibers (PFs) post MI. MethodsPcells were isolated from canine hearts 48Hrs post MI. Intracellular Ca2+-activity was captured by confocal microscopy. Purkinje-typical Ca2+ events were analyzed to probe the regional Ca2+-dynamics within Pcells. A Purkinje-specific numerical model assisted in the interpretation of Ca2+-anomalies detected in Pcells Ca2+-transients. SR-Ca2+-uptake system was studied by immunofluorescence in Pcells from canine, ovine and human hearts post MI. SERCA protein and gene expressions in PFs and myocardium were measured by Western Blots and RT-qPCR in a classical porcine model of MI. Results48Hrs after MI, Pcells showed 60% increase in spark-rate and 37% acceleration of Ca2+ wave decay. In the model of normal wave, 35% increase of Ca2+-uptake rate reproduced the actual post-MI wave alterations. In apparent contrast with increased Ca2+-uptake rate, SERCA2 protein expression was reduced in canine, sheep, and human Pcells after MI. In pig MI model, the protein level of cardiac-specific SERCA2-splicing variant SERCA2a was reduced by 52% in the whole infarcted ventricle whereas the "non-cardiac" SERCA2b level was increased by 120%. In the infarcted regions, PFs showed 30% downregulation of SERCA2a gene expression and 630% upregulation of SERCA2b. ConclusionOur results confirm that elevated spontaneous Ca2+-activity in post-MI PFs is due to increased SR-Ca2+-uptake within Pcells. Data suggest that a replacement of "cardiac" SERCA2a by the "non-cardiac" SERCA2b sub-isoform in cardiac cells in response to ischemia is implicated in this alteration.

cell biology↗