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Isolation of Human Atrial Myocytes for Simultaneous Measurements of Ca2+ Transients and Membrane Currents
Published on: July 3, 2013
Dynamic clamping human and rabbit atrial calcium current: narrowing ICaL window abolishes early afterdepolarizations
Sarah Kettlewell1, Priyanka Saxena1, John Dempster2
1Institute of Cardiovascular & Medical Sciences, University of Glasgow, Glasgow, UK.
Key Points:
Early-afterdepolarizations (EADs) are abnormal action potential oscillations and a known cause of cardiac arrhythmias. Ventricular EADs involve reactivation of a Ca2+ current (ICaL ) in its 'window region' voltage range. However, electrical mechanisms of atrial EADs, a potential cause of atrial fibrillation, are poorly understood. Atrial cells were obtained from consenting patients undergoing heart surgery, as well as from rabbits. ICaL was blocked with nifedipine and then a hybrid patch clamp/mathematical-modelling technique, 'dynamic clamping', was used to record action potentials at the same time as injecting an artificial, modifiable, ICaL (ICaL,D-C ). Progressively widening the ICaL,D-C window region produced EADs of various types, dependent on window width. EAD production was strongest upon moving the activation (vs. inactivation) side of the window. EADs were then induced by a different method: increasing ICaL,D-C amplitude and/or K+ channel-blockade (4-aminopyridine). Narrowing of the ICaL,D-C window by ∼10 mV abolished these EADs. Atrial ICaL window narrowing is worthy of further testing as a potential anti-atrial fibrillation drug mechanism.
Abstract:
Atrial early-afterdepolarizations (EADs) may contribute to atrial fibrillation (AF), perhaps involving reactivation of L-type Ca2+ current (ICaL ) in its window region voltage range. The present study aimed (i) to validate the dynamic clamp technique for modifying the ICaL contribution to atrial action potential (AP) waveform; (ii) to investigate the effects of widening the window ICaL on EAD-propensity; and (iii) to test whether EADs from increased ICaL and AP duration are supressed by narrowing the window ICaL . ICaL and APs were recorded from rabbit and human atrial myocytes by whole-cell-patch clamp. During AP recording, ICaL was inhibited (3 µm nifedipine) and replaced by a dynamic clamp model current, ICaL,D-C (tuned to native ICaL characteristics), computed in real-time (every 50 µs) based on myocyte membrane potential. ICaL,D-C -injection restored the nifedipine-suppressed AP plateau. Widening the window ICaL,D-C , symmetrically by stepwise simultaneous equal shifts of half-voltages (V0.5 ) of ICaL,D-C activation (negatively) and inactivation (positively), generated EADs (single, multiple or preceding repolarization failure) in a window width-dependent manner, as well as AP alternans. A stronger EAD-generating effect resulted from independently shifting activation V0.5 (asymmetrical widening) than inactivation V0.5 ; for example, a 15 mV activation shift produced EADs in nine of 17 (53%) human atrial myocytes vs. 0 of 18 from inactivation shift (P < 0.05). In 11 rabbit atrial myocytes in which EADs were generated either by increasing the conductance of normal window width ICaL,D-C or subsequent 4-aminopyridine (2 mm), window ICaL,D-C narrowing (10 mV) abolished EADs of all types (P < 0.05). The present study validated the dynamic clamp for ICaL , which is novel in atrial cardiomyocytes, and showed that EADs of various types are generated by widening (particularly asymmetrically) the window ICaL , as well as abolished by narrowing it. Window ICaL narrowing is a potential therapeutic mechanism worth pursuing in the search for improved anti-AF drugs.
Insights
Early afterdepolarizations (EADs) causing arrhythmias are linked to L-type calcium current (ICaL) window changes. Narrowing this ICaL window abolished EADs, suggesting a potential anti-atrial fibrillation drug mechanism.
Area of Science:
- Cardiology
- Electrophysiology
- Computational Biology
Background:
- Early afterdepolarizations (EADs) are abnormal heart rhythms linked to cardiac arrhythmias.
- Ventricular EADs involve L-type calcium current (ICaL) reactivation, but atrial EAD mechanisms, potentially causing atrial fibrillation (AF), are unclear.
Purpose of the Study:
- To validate dynamic clamp for modifying atrial ICaL.
- To investigate how widening the ICaL window affects EADs.
- To determine if narrowing the ICaL window suppresses EADs.
Main Methods:
- Used dynamic clamp to inject artificial ICaL (ICaL,D-C) into rabbit and human atrial myocytes.
- Modified the ICaL,D-C window width and amplitude to induce or abolish EADs.
- Blocked native ICaL with nifedipine and used 4-aminopyridine to induce EADs.
Main Results:
- Widening the ICaL,D-C window generated various EAD types and AP alternans.
- Asymmetrical widening of the ICaL,D-C window, particularly shifting activation, was more effective at producing EADs.
- Narrowing the ICaL,D-C window by 10 mV abolished all induced EADs.
Conclusions:
- Dynamic clamp is a validated tool for studying atrial ICaL.
- Atrial EADs can be generated by widening the ICaL window.
- Narrowing the ICaL window effectively suppresses EADs, presenting a potential therapeutic strategy for AF.
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