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Regenerative properties of pyramidal cell dendrites in area CA1 of the rat hippocampus.

机译:大鼠海马CA1区锥体细胞树突的再生特性。

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摘要

1. Intracellular recordings were obtained from 184 distal apical dendrites and twenty-six somata of CA1 pyramidal neurones in the rat hippocampal slice preparation. In the presence of 3.25 mM K+ 200 ms suprathreshold current pulses evoked three different types of firing patterns in the apical dendrites, all of which were distinct from regular somatic firing. Fast tetrodotoxin (TTX)-sensitive spiking was evoked in 38.8% of the dendrites. Compound spiking, consisting of an initial fast spike followed by one or more secondary slow spikes of variable amplitude and duration, was seen in 44.1% of dendrites. 'Classical' burst firing, resembling intrinsic somatic bursts, was evoked in 17.1% of the dendrites. 2. In fast spiking dendrites, the spikes evoked by long depolarizing pulses were rarely overshooting, showed prominent accommodation and declined progressively to about one-third of the initial amplitude. The amplitude of single dendritic fast spikes (50.6 +/- 1.5 mV; mean +/- S.E.M.) was smaller than that of somatic spikes (82.2 +/- 1.9 mV) and their rate of rise (81.3 +/- 4.3 V s-1) was markedly slower than that of somatic spikes (291.5 +/- 17.8 V s-1). However, the thresholds were not significantly different (dendrites, -49.8 +/- 0.8 mV; somata, -50.8 +/- 1.3 mV). These results indicate that fast spikes in the distal parts of apical dendrites are generated by a local regenerative Na+ current. 3. 4-Aminopyridine (4-AP, 0.1-0.5 mM) caused a dose-dependent slowing of the repolarization of the fast spikes, while tetraethylammonium (TEA, 2 mM) and Co2+ (2 mM) induced a slowing of the late phase of the repolarization. These results indicate that the transient outward K+ current, IA, and the Ca(2+)-activated K+ current, IC, are involved in the repolarization of dendritic Na(+)-dependent spikes. 4. Compound spiking was completely blocked by TTX (0.5-1 microM). The secondary slow spikes within the complex were blocked by Co2+ (2 mM), nifedipine (10 microM) and high concentrations (> 50 microM) of verapamil, while Ni2+ (100-300 microM) had no effect. Thus, compound spiking consists of an initial Na(+)-dependent spike followed by one or more slow Ca(2+)-dependent spikes mediated by L-type Ca2+ channels located in the apical dendrites. 5. In fast spiking dendrites, 4-AP (0.5-2.5 mM) changed the firing pattern from regular fast spiking to compound spiking. In the presence of 4-AP (0.1-0.5 mM), the single fast spike evoked by a short (20 ms), threshold current pulse, was followed by secondary slow spikes of variable amplitude and duration.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:1.在大鼠海马切片制备物中,从184个远端顶端树突和26个CA1锥体神经元的躯体中获得细胞内记录。在3.25 mM K + 200 ms的超阈值电流脉冲的作用下,会在心尖树突中引发三种不同类型的放电模式,所有这些均不同于常规的体细胞放电。快速的河豚毒素(TTX)敏感尖刺引起了38.8%的树突。在44.1%的树突中观察到复合尖峰,包括最初的快速尖峰,然后是一个或多个幅度和持续时间可变的次级缓慢尖峰。 17.1%的树突中诱发了类似于内在体细胞爆发的“经典”爆发射击。 2.在快速刺突的树突中,长去极化脉冲引起的尖峰很少超调,显示出明显的适应性,并逐渐下降到初始振幅的三分之一。单个树突状快速尖峰(50.6 +/- 1.5 mV;平均+/- SEM)的幅度小于体细胞尖峰(82.2 +/- 1.9 mV)的幅度及其上升速率(81.3 +/- 4.3 V s- 1)明显比体细胞峰值(291.5 +/- 17.8 V s-1)慢。但是,阈值没有显着差异(树枝状晶体,-49.8 +/- 0.8 mV;索马塔,-50.8 +/- 1.3 mV)。这些结果表明,由局部再生Na +电流在根尖树突的远端产生快速的尖峰。 3. 4-氨基吡啶(4-AP,0.1-0.5 mM)导致快速加标的复极化的剂量依赖性减慢,而四乙铵(TEA,2 mM)和Co2 +(2 mM)引起后期减慢。重新极化。这些结果表明,瞬态向外K +电流IA和Ca(2+)激活的K +电流IC与树突状Na(+)依赖性尖峰的重极化有关。 4.化合物加标被TTX(0.5-1 microM)完全阻止。复合物中的次级缓慢峰被Co2 +(2 mM),硝苯地平(10 microM)和高浓度(> 50 microM)的维拉帕米阻断,而Ni2 +(100-300 microM)没有作用。因此,复合尖峰由最初的Na(+)依赖性尖峰组成,然后由位于根尖树突中的L型Ca2 +通道介导的一个或多个慢速Ca(2+)依赖性尖峰组成。 5.在快速刺突树突中,4-AP(0.5-2.5 mM)将发射模式从常规快速刺突变为复合刺突。在存在4-AP(0.1-0.5 mM)的情况下,由短(20 ms)阈值电流脉冲引起的单个快速尖峰,然后是幅度和持续时间可变的次级慢尖峰(抽象截断为400字)

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