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Delayed rectifier potassium channels in canine and porcine airway smooth muscle cells.

机译:犬和​​猪气道平滑肌细胞中延迟的整流钾通道。

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摘要

1. In order to define the ion channels underlying the inactivating, calcium-insensitive current in airway smooth muscle cells, unitary potassium currents were recorded from canine and porcine trachealis cells, and compared with macroscopic currents. On-cell and inside-out single-channel currents were compared with whole-cell recordings made in dialysed cells. 2. Depolarizing voltage steps evoked outward unitary currents. In addition to a large conductance, calcium-activated potassium channel (KCa), a lower conductance potassium channel was identified. This channel has a conductance of 12.7 pS (on-cell; 1 mM-K+ in the pipette). 3. The lower conductance channel (Kdr) was not sensitive to cytosolic Ca2+ concentration and unitary current openings occurred following a delay after the voltage step. The time course of activation of the current composed of averaged single-channel events was very similar to that of the whole-cell, delayed rectifier potassium current (IdK), recorded under conditions of low intracellular calcium (Kotlikoff, 1990). 4. Kdr channels also inactivated with kinetics similar to those of the macroscopic current. Averaged single-channel records revealed a current that inactivated with kinetics that could be described by two exponentials (tau 1 = 0.14 s, tau 2 = 1.1 s; at 5 mV). These values corresponded well with previously determined values for time-dependent inactivation of IdK. Inactivation of Kdr channels was markedly voltage dependent, and was well fitted by a Boltzmann equation with V50 = -53 mV; this was similar to measurements of the macroscopic current, although the V50 value was shifted to more positive potentials in whole-cell measurements. When only the inactivating component of the macroscopic current was considered, the voltage dependence of inactivation of the single-channel current and macroscopic current were quite similar. 5. Single-channel kinetics indicated that Kdr channels occupy one open and two closed states. The mean open time was 1.7 ms. Inactivation results in a prominent increase in the long closed time, with little effect on the mean open time or short closed time. 6. The Kdr channel was not blocked by tetraethylammonium (TEA; 1 mM), charybdotoxin (ChTX; 100 nM) or glibenclamide (20 microM), but was blocked by 4-aminopyridine (4-AP; 1 mM). Similarly, 4-AP blocked the inactivating component of the macroscopic current, but a non-inactivating current remained. KCa currents were blocked by TEA (0.5-1 mM) and charybdotoxin (40 nM), but were insensitive to to 4-AP (1 mM) and glibenclamide (20 microM).(ABSTRACT TRUNCATED AT 400 WORDS)
机译:1.为了确定气道平滑肌细胞中失活的钙不敏感电流的离子通道,从犬和猪气管细胞中记录了统一的钾电流,并将其与宏观电流进行了比较。将细胞内和细胞内外单通道电流与透析细胞内的全细胞记录进行比较。 2.去极化的电压阶跃引起向外的单位电流。除了较大的电导,钙激活的钾通道(KCa)外,还发现了较低的电导钾通道。该通道的电导为12.7 pS(细胞内;移液器中为1 mM-K +)。 3.较低的电导通道(Kdr)对胞质Ca2 +浓度不敏感,在电压阶跃后出现延迟后出现了单一电流开放。由平均单通道事件组成的电流激活的时间过程与在低细胞内钙的条件下记录的全细胞延迟整流钾电流(IdK)的时间过程非常相似(Kotlikoff,1990)。 4. Kdr通道也以类似于宏观电流的动力学失活。平均的单通道记录显示,电流被动力学灭活,该动力学可以用两个指数来描述(tau 1 = 0.14 s,tau 2 = 1.1 s;在5 mV时)。这些值与时间确定的IdK失活的先前确定的值非常一致。 Kdr通道的失活与电压密切相关,并且可以通过Boltzmann方程很好地拟合,其中V50 = -53 mV。这类似于宏观电流的测量,尽管在整个细胞测量中V50值已移至更正的电位。当仅考虑宏观电流的失活成分时,单通道电流的失活与宏观电流的电压依赖性非常相似。 5.单通道动力学表明,Kdr通道占据一个打开状态和两个闭合状态。平均打开时间为1.7毫秒。灭活会导致较长的关闭时间显着增加,而对平均打开时间或较短的关闭时间影响很小。 6. Kdr通道未被四乙铵(TEA; 1 mM),炭疽毒素(ChTX; 100 nM)或格列苯脲(20 microM)阻断,但被4-氨基吡啶(4-AP; 1 mM)阻断。类似地,4-AP阻止了宏观电流的失活成分,但仍保留了非失活电流。 KCa电流被TEA(0.5-1 mM)和charybdoxin(40 nM)阻断,但对4-AP(1 mM)和glibenclamide(20 microM)不敏感。(以400字截断)

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