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Fenton, F. H.

Publications and source records attributed to Fenton, F. H..

2 recordsLinked to original sources

Disturbed repolarisation-relaxation coupling during acute ischaemia permits systolic mechano-arrhythmogenesis.

BackgroundThe hearts mechanical state feeds back to its electrical activity, potentially contributing to arrhythmias. Mechano-arrhythmogenesis has been mechanistically explained during electrical diastole, when cardiomyocytes are at their resting membrane potential. During electrical systole, cardiomyocytes are refractory right from the onset of depolarisation, while during repolarisation they appear to be protected from mechano-arrhythmogenesis by near-simultaneous restoration of resting membrane potential and cytosolic calcium concentration ([Ca2+]i): repolarisation-relaxation coupling (RRC). Yet, systolic mechano-arrhythmogenesis has been reported in ischaemic myocardium, with unclear underlying mechanisms. We hypothesise that ischaemia-induced alteration of RRC gives rise to a vulnerable period for mechano-arrhythmogenesis. MethodsAcute left-ventricular (LV) regional ischaemia was induced by coronary artery ligation in Langendorff-perfused rabbit hearts, with mechanical load controlled by an intraventricular balloon. Mechanical activity was assessed by echocardiography and arrhythmia incidence by electrocardiogram. Single LV cardiomyocytes were exposed to simulated ischaemia or pinacidil (ATP-sensitive potassium channel opener). Stretch was applied in diastole or late systole using carbon fibres. Stretch characteristics and arrhythmia incidence were assessed by sarcomere length measurement. In both models, RRC was assessed by simultaneous voltage-[Ca2+]i fluorescence imaging and mechano-arrhythmogenesis mechanisms were pharmacologically tested. ResultsIn whole heart, acute regional ischaemia leads to systolic stretch and disturbed RRC at the ischaemic border. These electro-mechanical changes were associated with waves of arrhythmias, which were reduced by mechanical unloading, electro-mechanical uncoupling, or buffering of [Ca2+]i. In LV cardiomyocytes, physiological RRC is associated with a low incidence of systolic mechano-arrhythmogenesis, while a vulnerable period emerged by prolonged RRC during ischaemia. The increase in systolic mechano-arrhythmogenesis was reduced by restoring RRC, chelating [Ca2+]i, blocking mechano-sensitive transient receptor potential kinase ankyrin 1 channels (TRPA1), or buffering reactive oxygen species (ROS) levels. ConclusionProlonged RRC allows for systolic mechano-arrhythmogenesis in acute ischaemia, involving contributions of elevated [Ca2+]i, TRPA1 activity, and ROS, which represent potential anti-arrhythmic targets. GRAPHICAL ABSTRACT LEGENDRole of disturbed repolarisation-relaxation coupling (RRC), transient receptor potential kinase ankyrin 1 (TRPA1) channels, cytosolic calcium concentration ([Ca2+]i), and reactive oxygen species (ROS) in ventricular systolic mechano-arrhythmogenesis. Schematic of the proposed mechanisms underlying the TRPA1- and Ca2+-mediated increase in systolic mechano-arrhythmogenesis with disturbed RRC. AITC, Allyl isothiocyanate (TRPA1 channel activator); AP, action potential; BAPTA ([Ca2+]i buffer); CaT, Ca2+ transient; DNT, dantrolene (ryanodine receptor stabiliser); DPI, diphenyleneiodonium (ROS production blocker); GLIB, glibenclamide (KATP channel blocker); HC-300031 (TRPA1 channel blocker); KATP, ATP-sensitive potassium channel; NAC, N-acetyl-L-cysteine (ROS chelator); NCX, sodium-Ca2+ exchanger; PIN, pinacidil (KATP channel activator); ROS, reactive oxygen species; SI, simulated ischaemia; STP, streptomycin (non-specific mechano-sensitive ion channel blocker).

physiology↗

Beyond Alternans: Detection of Higher-Order Periodicity in Ex-Vivo Human Ventricles Before Induction of Ventricular Fibrillation

BackgroundRepolarization alternans, defined as period-2 oscillation in the repolarization phase of the action potentials, is one of the cornerstones of cardiac electrophysiology as it provides a mechanistic link between cellular dynamics and ventricular fibrillation (VF). Theoretically, higher-order periodicities (e.g., period-4, period-8,...) are expected but have very limited experimental evidence. MethodsWe studied explanted human hearts, obtained from the recipients of heart transplantation at the time of surgery, using optical mapping technique with transmembrane voltage-sensitive fluorescent dyes. The hearts were stimulated at an increasing rate until VF was induced. The signals recorded from the right ventricle endocardial surface just before the induction of VF and in the presence of 1:1 conduction were processed using the Principal Component Analysis and a combinatorial algorithm to detect and quantify higher-order dynamics. ResultsA prominent and statistically significant 1:4 peak (corresponding to period-4 dynamics) was seen in three of the six studied hearts. Local analysis revealed the spatiotemporal distribution of higher-order periods. Period-4 was localized to temporally stable islands. Higher-order oscillations (period-5, 6, and 8) were transient and primarily occurred in arcs parallel to the activation isochrones. DiscussionWe present evidence of higher-order periodicities and the co-existence of such regions with stable non-chaotic areas in ex-vivo human hearts before VF induction. This result is consistent with the period-doubling route to chaos as a possible mechanism of VF initiation, which complements the concordant to discordant alternans mechanism. The presence of higher-order regions may act as niduses of instability that can degenerate into chaotic fibrillation.

biophysics↗