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Zgierski-Johnston, C.

Publications and source records attributed to Zgierski-Johnston, C..

2 recordsLinked to original sources

Cardiomyocyte mechanical activity counteracts intraluminal calcium depletion in the transverse-axial tubular system during fast electrical stimulation

The transverse-axial tubular system (TATS) enables close structural and functional coupling between plasma membrane and sarcoplasmic reticulum of cardiomyocytes. It supports fast and efficient Ca2+-induced Ca2+ release upon cell depolarisation, crucial for excitation-contraction coupling in the heart. Due to the small diameter and tortuosity of individual tubules, the TATS forms a domain of restricted diffusive transport. It has previously been suggested that, as a consequence of an uneven distribution of Ca2+ influx and efflux pathways in TATS compared to outer surface plasma membrane domains of cardiomyocytes, cyclic electrical activity may lead to a gradual depletion of Ca2+ in the TATS. Here, we show experimentally that in mechanically uncoupled rabbit ventricular cardiomyocytes, electrical stimulation does indeed lead to an L-type Ca2+ channel-dependent gradual depletion of Ca2+ inside TATS, an effect that scales with pacing frequency. Ca2+ depletion was absent in freely contracting cardiomyocytes, presumably as a result of cyclic TATS deformation during cell shortening. This squeezes transverse TATS tubules and adds an advective contribution to, and thereby accelerates the, intra-TATS content exchange with bulk extracellular fluid. Our results reveal a novel mechanism of cardiac mechano-dependent auto-regulation, where the increased propensity for development of intra-TATS Ca2+ gradients at high electrical stimulation rates is mitigated by the coinciding mechanically induced TATS deformation, twice on each cycle in the heart (during diastolic stretch and systolic shortening), which accelerates luminal content exchange. Our study provides first insight into a novel facet of cardiac mechano-biology, whose auto-regulatory benefit may be reduced by TATS remodelling in disease.

cell biology↗

Perivascular Excitation Tunnelling: a Novel and Preventable Cause of Cardiac Reperfusion Arrhythmias

BackgroundReperfusion after myocardial ischaemia can lead to deadly arrhythmias, in part due to heterogeneities in electrophysiology (EP) across affected tissue. There is a need to understand the spatiotemporal dynamics of ischaemia-reperfusion arrhythmias (IRA), so that reperfusion strategies to prevent them can be found. MethodsLangendorff-perfused rabbit isolated hearts were loaded with a voltage-sensitive dye. Epifluorescence imaging was used to track action potential propagation across the cardiac surface. The heart was simultaneously perfused globally (via the aorta) and locally (via cannulation of a single coronary artery) with an oxygenated physiological saline solution. Local perfusion was subsequently switched to and from solutions that mimic aspects of ischaemia (acidosis, hypoxia, hyperkalaemia, or a simulated ischaemia solution combining all three) or to no-flow. Subsequently, different reperfusion strategies were tested to reduce IRA re-entries. The most successful strategy for preventing re-entry was tested in Langendorff-perfused isolated pig hearts to assess the clinical relevance of the observed mechanism and treatment strategy. ResultsUpon sudden reperfusion of the cannulated coronary artery in rabbit hearts we observed a preferential recovery of electrical excitability along the vessels main branch ( perivascular excitation tunnelling, PVET). This resulted in re-entry in roughly half of the hearts. Hyperkalaemia and hypoxia, but not acidosis, were sufficient to lead to conduction block, PVET, and re-entry, with both PVET and re-entry more frequently observed after hyperkalaemia than hypoxia. PVET was also present in pigs and PVET-based re-entries were successfully prevented in rabbit and pig hearts by two-step reperfusion, first of the distal majority of the previously ischaemic region, and then of the remaining tissue from the proximal point. With this strategy, any PVET that developed in the distal tissue was blocked by the still inexcitable proximal tissue. Upon reperfusion of the proximal tissue, there was a reduced path length for PVET. As a consequence, the associated excitable gap was too short for re-entrant excitation. ConclusionsWe observed a novel arrhythmia mechanism upon coronary reperfusion (PVET), which suggests that preferential recovery of myocardial excitability along the reperfused vessel is an important mechanism underlying IRA formation. PVET-induced re-entry reliably occurred in both rabbit and pig hearts and could be prevented by two-step reperfusion. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=171 HEIGHT=200 SRC="FIGDIR/small/569031v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@139a095org.highwire.dtl.DTLVardef@5dc811org.highwire.dtl.DTLVardef@f9db75org.highwire.dtl.DTLVardef@1b6f66b_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗