Suppr超能文献

影响大鼠和蜥蜴有髓轴突去极化后电位的电因素和形态学因素。

Electrical and morphological factors influencing the depolarizing after-potential in rat and lizard myelinated axons.

作者信息

David G, Modney B, Scappaticci K A, Barrett J N, Barrett E F

机构信息

Department of Physiology and Biophysics, University of Miami School of Medicine, FL 33101, USA.

出版信息

J Physiol. 1995 Nov 15;489 ( Pt 1)(Pt 1):141-57. doi: 10.1113/jphysiol.1995.sp021037.

Abstract
  1. Intra-axonal recording and electron microscopy were applied to intramuscular myelinated axons in lizards and rats to investigate factors that influence the amplitude and time course of the depolarizing after-potential. 2. Depolarizing after-potentials in lizard axons had larger peak amplitudes and longer half-decay times than those recorded in rat axons (mean values 10 mV, 35 ms in lizard; 3 mV, 11 ms in rat). These differences were not due to differences in temperature, resting potential or action potential amplitude or duration. 3. For a given axon diameter, the myelin sheath in lizard fibres was thinner and had fewer wraps than in rat fibres. There was no significant difference in myelin periodicity. Calculations suggest that the thinner myelin sheath accounts for < 30% of the difference between depolarizing after-potential amplitudes recorded in lizard and rat axons. 4. Consistent with a passive charging model for the depolarizing after-potential, the half-time of the passive voltage transient following intra-axonal injection of current was shorter in rat than in lizard axons. 5. Aminopyridines prolonged the falling phase of the action potential and increased the amplitude of the depolarizing after-potential in both types of axon. 6. During repetitive stimulation the depolarizing after-potentials following successive action potentials exhibited little or no summation. Axonal input conductance in the interspike interval increased during the train. 7. These findings suggest that the amplitude and time course of the depolarizing after-potential are influenced not only by the passive properties of the axon and myelin sheath, but also by persisting activation of axolemmal K+ channels following action potentials.
摘要
  1. 采用轴内记录和电子显微镜技术研究蜥蜴和大鼠肌内有髓轴突,以探究影响去极化后电位幅度和时程的因素。2. 蜥蜴轴突的去极化后电位峰值幅度更大,半衰期更长,与大鼠轴突记录结果相比(蜥蜴的平均值为10 mV,35 ms;大鼠的为3 mV,11 ms)。这些差异并非由温度、静息电位、动作电位幅度或时程的差异所致。3. 对于给定的轴突直径,蜥蜴纤维中的髓鞘比大鼠纤维中的更薄且缠绕层数更少。髓鞘周期性无显著差异。计算表明,较薄的髓鞘占蜥蜴和大鼠轴突记录的去极化后电位幅度差异的比例不到30%。4. 与去极化后电位的被动充电模型一致,轴内注入电流后,大鼠轴突中被动电压瞬变的半衰期比蜥蜴轴突中的短。5. 氨基吡啶延长了两种轴突动作电位的下降相,并增加了去极化后电位的幅度。6. 在重复刺激期间,相继动作电位后的去极化后电位几乎没有或没有总和。串刺激期间峰间期的轴突输入电导增加。7. 这些发现表明,去极化后电位的幅度和时程不仅受轴突和髓鞘被动特性的影响,还受动作电位后轴膜钾通道持续激活的影响。
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/899d/1156799/03879011543d/jphysiol00304-0147-a.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验