Suppr超能文献

电压门控电导在小龙虾慢适应性牵张感受器神经元中抑制性突触电位后的反应中的作用。

Participation of voltage-gated conductances on the response succeeding inhibitory synaptic potentials in the crayfish slowly adapting stretch receptor neuron.

作者信息

Barrio L C, Araque A, Buño W

机构信息

Instituto Cajal, CSIC, Madrid, Spain.

出版信息

J Neurophysiol. 1994 Sep;72(3):1140-51. doi: 10.1152/jn.1994.72.3.1140.

Abstract
  1. We examined the contribution of voltage-gated conductances to inhibitory postsynaptic potential (IPSP) effects under current clamp in silent and spiking slowly adapting stretch receptor neurons (SN1s) in the slow receptor muscle of the crayfish Procambarus. The receptor exemplifies the simplest inhibitory neural circuit, with one presynaptic and one postsynaptic neuron. The effects of synaptic inhibition were compared with the outcome of hyperpolarizing current pulses. Because pulse effects were exclusively due to postsynaptic mechanisms, an estimation of the synaptic or extrasynaptic origin of the results of IPSP was possible. 2. Inhibition by single IPSPs increased gradually with the time elapsed from the preceding spike in 60% of the spiking SN1s. However, early IPSP arrivals were exclusively excitatory in the rest of the cases. Inhibition was restricted to a single expanded SN1 interspike interval, but the early excitation and the postinhibitory rebound lasted several intervals. Rebound was invariably present; it was the only consequence of IPSPs in silent receptors and could be extremely long lasting (> 25 s). 3. The membrane potential of the SN1 neuron was clamped at hyperpolarized values (greater than -65 mV) by prolonged IPSP barrages at high rate (> 20/s). A prominent depolarizing sag and a gradual reduction of the IPSP amplitude were observed with prolonged presynaptic stimulation. There were subthreshold IPSP amplitude oscillations consisting of gradual increases and decreases of the post-IPSP peak depolarization at lower presynaptic rates. IPSP amplitude variations (< or = 10 mV) were primarily due to larger local responses. 4. Essentially all IPSP effects were mimicked by hyperpolarizing pulses. Sag was also evoked by pulses and was accompanied by a gradual conductance increase preceded by a brief initial drop. Sag and rebound were markedly reduced by Cs+ (2 mM) and tetrodotoxin (1 microM) and less by Ba2+ (5 mM) or tetraethylammonium (25 mM) superfusion. Both were somewhat decreased by acetylcholine (30 microM), which also markedly depolarized and accelerated firings, results which were usually reduced by atropine (10 microM). 5. In conclusion, IPSP and hyperpolarizing pulse effects were essentially identical, implying that extrasynaptic membrane properties were decisive. Interestingly, net excitatory consequences were usual, effectively increasing sensitivity and reducing the sensory threshold. Pharmacological evidence is provided suggesting that the hyperpolarization-activated current, IQ, and also probably the K+ M-current, the A-current, and the low-threshold, persistent Na+ conductances participate in sag and rebound genesis.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 我们在小龙虾原螯虾慢感受器肌肉中的沉默型和自发放电的慢适应牵张感受器神经元(SN1s)上,通过电流钳研究了电压门控电导对抑制性突触后电位(IPSP)效应的作用。该感受器代表了最简单的抑制性神经回路,包含一个突触前神经元和一个突触后神经元。将突触抑制的效应与超极化电流脉冲的结果进行了比较。由于脉冲效应完全是由突触后机制引起的,因此可以对IPSP结果的突触或突触外起源进行估计。2. 在60%的自发放电SN1s中,单个IPSP引起的抑制作用随着距前一个动作电位的时间推移而逐渐增强。然而,在其余情况下,早期到达的IPSP完全是兴奋性的。抑制作用仅限于单个延长的SN1动作电位间隔,但早期兴奋和抑制后反弹持续几个间隔。反弹总是存在;它是沉默型感受器中IPSP的唯一结果,并且可能持续极长时间(>25秒)。3. 通过以高速率(>20/秒)施加长时间的IPSP串,将SN1神经元的膜电位钳制在超极化值(大于-65 mV)。在长时间的突触前刺激下,观察到明显的去极化凹陷和IPSP幅度的逐渐降低。在较低的突触前频率下,存在阈下IPSP幅度振荡,包括IPSP后峰值去极化的逐渐增加和减少。IPSP幅度变化(≤10 mV)主要是由于更大的局部反应。4. 基本上所有的IPSP效应都可被超极化脉冲模拟。脉冲也可诱发凹陷,并伴有电导的逐渐增加,之前有短暂的初始下降。Cs⁺(2 mM)和河豚毒素(1 μM)可显著降低凹陷和反弹,而Ba²⁺(5 mM)或四乙铵(25 mM)灌流的影响较小。乙酰胆碱(30 μM)可使两者均有所降低,同时还可使膜明显去极化并加速放电,这些结果通常可被阿托品(10 μM)减弱。5. 总之,IPSP和超极化脉冲效应基本相同,这意味着突触外膜特性起决定性作用。有趣的是,净兴奋性结果很常见,有效地提高了敏感性并降低了感觉阈值。提供的药理学证据表明,超极化激活电流IQ,可能还有K⁺ M电流、A电流以及低阈值持续性Na⁺电导参与了凹陷和反弹的产生。(摘要截断于400字)

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验