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大鼠有髓轴突结间钾离子电导的激活

Activation of internodal potassium conductance in rat myelinated axons.

作者信息

David G, Barrett J N, Barrett E F

机构信息

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

出版信息

J Physiol. 1993 Dec;472:177-202. doi: 10.1113/jphysiol.1993.sp019942.

DOI:10.1113/jphysiol.1993.sp019942
PMID:8145140
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1160482/
Abstract
  1. Voltage changes associated with currents crossing the internodal axolemma were monitored using a microelectrode inserted into the myelin sheath (peri-internodal region) of rat phrenic nerve fibres. This microelectrode was also used to change the potential and the ionic environment in the peri-internodal region. 2. Following stimulation of the proximal nerve trunk, the peri-internodal electrode recorded a positive-going action potential whose amplitude increased (up to 75 mV) with increasing depth of microelectrode penetration into the myelin. The resting potential recorded by the peri-internodal electrode remained within 4 mV of bath ground. 3. Confocal imaging of fibres injected peri-internodally with the fluorescent dye Lucifer Yellow revealed a staining pattern consistent with spread of dye throughout the myelin sheath of the injected internode. 4. After ionophoresis of K+ (but not Na+) into the peri-internodal region, the action potential was followed by a prolonged negative potential (PNP) lasting hundreds of milliseconds to several seconds. The duration of the PNP increased as the frequency of stimulation decreased. PNPs could also be evoked by sub-threshold depolarization of the internodal axolemma with peri-internodally applied current pulses. In the absence of action potentials or applied depolarization PNPs sometimes appeared spontaneously. 5. Peri-internodal application of Rb+ also produced evoked and spontaneous PNPs. These PNPs had longer durations (up to 20 s) than those recorded from K(+)-loaded internodes. 6. Spontaneous action potentials sometimes appeared during the onset of the PNP, suggesting that PNPs are associated with depolarization of the underlying axon. 7. Passage of current pulses during the PNP demonstrated that the PNP is associated with an increased conductance of the pathway linking the peri-internodal recording site to the bath. At least part of this conductance increase occurs across the internodal axolemma, since peri-internodally recorded action potentials evoked during the PNP had larger amplitudes than those evoked before or after the PNP. 8. PNPs were suppressed by tetraethylammonium (TEA, 10-20 mM) and by 4-aminopyridine (1 mM). 9. These results suggest that the PNPs recorded in K(+)- or Rb(+)-loaded myelin sheaths are produced by a regenerative K+ or Rb+ current that enters the internodal axolemma via K+ channels opened by action potentials or subthreshold depolarizations. 10. When normal extracellular [K+] was preserved (by using Na+ rather than K+ salts in the peri-internodal electrode), action potentials recorded within the myelin sheath were instead followed by a brief, positive after-potential that was inhibited by TEA.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 使用插入大鼠膈神经纤维髓鞘(节间周围区域)的微电极监测与跨节间轴膜电流相关的电压变化。该微电极还用于改变节间周围区域的电位和离子环境。2. 刺激近端神经干后,节间周围电极记录到一个正向动作电位,其幅度随着微电极向髓鞘内插入深度的增加而增大(可达75毫伏)。节间周围电极记录的静息电位与浴槽接地电位相差不超过4毫伏。3. 对节间周围注射荧光染料路西法黄的纤维进行共聚焦成像,显示出的染色模式与染料在注射节段的整个髓鞘中扩散一致。4. 在节间周围区域进行钾离子(而非钠离子)的离子电泳后,动作电位之后会跟随一个持续数百毫秒至数秒的延长负电位(PNP)。PNP的持续时间随着刺激频率的降低而增加。PNP也可由节间周围施加电流脉冲使节间轴膜进行阈下 depolarization 诱发。在没有动作电位或施加 depolarization 的情况下,PNP有时会自发出现。5. 节间周围施加铷离子也会产生诱发和自发的PNP。这些PNP的持续时间(长达20秒)比在加载钾离子的节段记录到的更长。6. 在PNP开始时有时会出现自发动作电位,这表明PNP与下层轴突的 depolarization 有关。7. 在PNP期间通过电流脉冲表明,PNP与连接节间周围记录部位与浴槽的通路电导增加有关。这种电导增加至少部分发生在节间轴膜上,因为在PNP期间节间周围记录到的动作电位的幅度比PNP之前或之后诱发的动作电位幅度更大。8. PNP被四乙铵(TEA,10 - 20毫摩尔)和4-氨基吡啶(1毫摩尔)抑制。9. 这些结果表明,在加载钾离子或铷离子的髓鞘中记录到的PNP是由再生性钾离子或铷离子电流产生的,该电流通过动作电位或阈下 depolarizations 打开的钾离子通道进入节间轴膜。10. 当保持正常细胞外[钾离子]浓度(通过在节间周围电极中使用钠盐而非钾盐)时,在髓鞘内记录到的动作电位之后会跟随一个短暂的正后电位,该正后电位被TEA抑制。(摘要截取自400字)
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a22/1160482/96a85e52d641/jphysiol00414-0204-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a22/1160482/7e9ae63a232f/jphysiol00414-0190-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a22/1160482/96a85e52d641/jphysiol00414-0204-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a22/1160482/7e9ae63a232f/jphysiol00414-0190-a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a22/1160482/96a85e52d641/jphysiol00414-0204-a.jpg

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