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Wen Dun

Publications and source records attributed to Wen Dun.

2 recordsLinked to original sources

Chronic atrial fibrillation does not further decrease outward currents. It increases them.

Rapid atrial pacing causes electrical remodeling that leads to atrial fibrillation (AF). AF can further remodel atrial electrophysiology to maintain AF. Our previous studies showed that there was a marked difference in the duration of AF in dogs that have been atrial paced at 400 beats/min for 6 wk. We hypothesized that this difference is based on the changes in the degree of electrical remodeling caused by rapid atrial pacing versus that by AF. Right atrial cells were isolated from control dogs (Con, N = 28), from dogs with chronic AF (cAF dogs, N = 13, episodes lasting at least 6 days), or from dogs with nonsustained or brief episodes of AF (nAF dogs, N = 10, episodes lasting minutes to hours). Both transient outward (Ito) and sustained outward K+ current (Isus) densities/functions were determined using whole cell voltage-clamp techniques. In nAF cells, Ito density was reduced by 69% at +40 mV: from 7.1 +/- 0.5 pA/pF (Con, n = 59) to 2.2 +/- 0.2 pA/pF (nAF, n = 24) (P < 0.05). The voltage dependence of inactivation of Ito was shifted positively and decay kinetics were changed; however, recovery from inactivation was not altered in nAF cells. In contrast, Ito density in cAF cells was both significantly different from Con cells and larger than that in nAF cells [at +40 mV, 3.5 +/- 0.3 pA/pF (cAF, n = 29), P < 0.05]. In cAF cells, recovery from inactivation and decay of Ito were both slow; yet, voltage dependence inactivation of Ito approached that of Con cells. Furthermore, "recovered" Ito of cAF cells was more sensitive to tetraethylammonium than currents of Con and nAF cells. Isus densities of nAF and cAF cells did not differ. Both nAF and cAF cells have reduced Ito versus Con cells, but Ito remodeling of nAF cells differed from that of cAF cells. Ito in cAF dogs was likely remodeled by AF per se, whereas that in nAF dogs was likely the consequence of the rapid rate in the absence of sustained AF.

Animals↗

Calcium and potassium currents in cells from adult and aged canine right atria.

BACKGROUND: Action potential (AP) contours vary considerably between normal adult and aged right atrial fibers. The ionic bases for these differences remain unknown. Therefore we studied Ca(2+) and K(+) currents in cells from adult and aged canine right atria (RA). METHODS AND RESULTS: We used whole cell patch clamp recording techniques to measure L-type Ca(2+) currents (I(CaL)) with either Ca(2+) or Ba(2+) (3 mM) as the charge carrier, and both the transient outward (I(to)) and sustained potassium currents (I(sus)) in cells dispersed from normal adult (Adult, 2-5 years) and older dogs (Aged, >8 years). There is a significant reduction in peak I(CaL) (47%) and I(BaL) (43%) in Aged cells, yet differences in I(BaL) disappear with maximal beta adrenergic stimulation (isoproterenol, 1 microM). Composite I(to) and I(sus) densities were significantly increased in the Aged versus Adult cell group (by 31 and 27% at +50 mV, respectively). I(to) decay during a maintained depolarization was slowed in Aged cells. Furthermore, I(to) steady-state inactivation curve was shifted positively in Aged cells. Finally, composite I(to) and I(sus) currents of Aged cells were more sensitive to tetraethylammonium chloride (TEA), a specific inhibitor of some types of K(+) currents. In the presence of TEA (5 mM), I(to) in Aged cells was significantly greater than that in Adult cells. CONCLUSIONS: Ionic currents differ in Aged versus Adult right atrial cells, such that a reduced Ca(2+) current and augmented outward currents could contribute significantly to the altered AP contour of the Aged RA cell. Adrenergic stimulation appears to restore Ba(2+) currents in Aged cells. Finally, an augmented TEA sensitive current plays a role in changes of I(sus) in Aged right atrial cells.

Action Potentials↗