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Terracciano, C. M.

Publications and source records attributed to Terracciano, C. M..

2 recordsLinked to original sources

Early onset of Ca2+ waves and synchronization in multicellular clusters facilitate focal arrhythmogenesis in human heart failure

BackgroundSpontaneous Ca2+ release events and waves are frequent in isolated ventricular cardiomyocytes from failing hearts (HF) and are proposed to initiate arrhythmias in the intact heart. However, evidence supporting whether single-cell Ca2+ waves trigger tissue-wide depolarization in the intact heart is scarce, particularly in human HF. We characterized Ca2+ waves at single-cell resolution within the multicellular network of the intact heart and identified propagating dynamics and mechanisms facilitating arrhythmogenesis at tissue level. MethodsLiving myocardial slices (LMS) from HF and non-HF human hearts were prepared from left ventricular tissue and paced at 2 Hz under adrenergic stimulation. Ca2+ transients and waves were recorded by wide-field imaging of Fluo-8. Ca2+ waves in relation to single-cell structures within each LMS were identified using custom algorithms. Computational modelling assessed whether experimentally observed HF Ca2+ waves dynamics can lead to focal excitation in tissue models. ResultsFollowing pacing, early onset Ca2+ waves, initiating within the first 2 seconds, were more frequent in HF compared to non-HF, and HF cardiomyocytes had more foci, where Ca2+ waves originate, than non-HF. Spatial mapping showed that early onset waves in HF occurred frequently in clusters of neighboring cells. Although early onset Ca2+ waves propagated similar distances in HF and non-HF cardiomyocytes, they more frequently crossed cell boundaries in HF. Particularly, HF LMS exhibited more side-to-side Ca2+ propagation, correlating with increased connexin 43 distribution to lateral membranes. Furthermore, HF LMS exhibited more local and global triggered Ca2+ activities compared to non-HF LMS, correlating with local tissue depolarization. Simulations of HF Ca2+ wave dynamics in remodeled tissue demonstrated a greater capacity to elicit focal excitation. ConclusionsIn human HF, a higher incidence of early onset Ca2+ waves combines with altered intercellular connectivity to create synchrony in clusters of nearby cells that can overcome the current sink, thereby increasing arrhythmia susceptibility. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=70 SRC="FIGDIR/small/651991v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@12582forg.highwire.dtl.DTLVardef@5b9893org.highwire.dtl.DTLVardef@17de348org.highwire.dtl.DTLVardef@1d4c420_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Mechanical unloading coupled with coronary reperfusion reduces fibrosis and stimulates cardiomyocyte proliferation after myocardial infarction

IntroductionPercutaneous left ventricular assist devices (pLVADs) have become essential tools during coronary reperfusion in high risk PCI. Significant reduction in infarct propagation is observed when mechanical unloading is coupled with reperfusion, but little is known of the effect this reduction in wall stress and extracellular matrix with pLVADs have on the hearts regenerative capacity. ObjectiveThis study investigates the effect coronary reperfusion coupled with mechanical unloading has on myocardial fibrosis, and the impact these changes in extracellular matrix have on the hearts regenerative potential. MethodsMI was induced by coronary artery ligation in Lewis rats. Hearts underwent permanent coronary ligation (AMI) or were reperfused after 90 minutes (AMI/R). In each group, hearts were either loaded (AMI-L or AMI/R-L) or unloaded (AMI-U or AMI/R-U). In the unloaded subgroup, the infarcted hearts were explanted after 90 minutes and transplanted into the abdomen of healthy recipients via heterotopic abdominal heart-lung transplantation. The recipients heart acted as control. Hearts were analysed on day 7. Results30 hearts were studied. In the permanent ligation group, fibrosis increased in both the loaded and unloaded hearts with no significant rise in cardiomyocyte proliferation. After coronary reperfusion, there was a decrease in fibrosis with mechanical unloading and cardiomyocyte proliferation rose significantly (AMI/R-L vs AMI/R-U p= 0.0001). Cardiomyocyte proliferative rate in the loaded and unloaded hearts was 0.6%, and 3.7% respectively after permanent ligation, and 0.5%, and 10.4% respectively after coronary reperfusion. ConclusionThese data show that coronary reperfusion coupled with mechanical unloading reduces myocardial fibrosis and upregulates cardiomyocyte proliferation after myocardial infarction. TRANSLATIONAL PERSPECTIVEThis study demonstrates that the adult hearts intrinsic regenerative capacity is significantly augmented when coronary reperfusion is coupled with mechanical unloading after MI in an animal model. This finding has significant translational implications for myocardial self- repair and recovery especially in ischaemic cardiomyopathy. The investigation of cardiomyocyte proliferative response should be included in current ongoing trials such as the PROTECT IV, RECOVER IV, and IMPACT trials, all currently investigating clinical outcomes when mechanical unloading is coupled with coronary reperfusion after MI.

physiology↗