NA+ CONDUCTANCE AND THE THRESHOLD FOR REPETITIVE NEURONAL FIRING

被引:89
作者
MATZNER, O [1 ]
DEVOR, M [1 ]
机构
[1] HEBREW UNIV JERUSALEM,INST LIFE SCI,DEPT CELL & ANIM BIOL,IL-91904 JERUSALEM,ISRAEL
关键词
F-I CURVE; HODGKIN-HUXLEY MODEL; HYPERALGESIA; PAIN; REPETITIVE DISCHARGE; RHYTHMOGENESIS; SODIUM CONDUCTANCE;
D O I
10.1016/0006-8993(92)91509-D
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The Hodgkin-Huxley equation for electrogenesis in the voltage clamped squid giant axon was used to predict the effect of altering maximal Na+ conductance (g(Na)max+) on the repetitive firing process. The main finding was that increasing g(Na)max+, without changing any other membrane parameter, reduced the threshold current required to evoke repetitive firing. That is, it rendered the membrane hyperexcitable. Threshold for evoking single action potentials was also affected, but much less so. Other consequences of increasing g(Na)max+ were a decrease in the minimum sustainable rhythmic firing frequency (mRFF), a monotonic increase in firing frequency at any given suprathreshold stimulus intensity, an increase in the current value at which intense depolarizing stimuli block rhythmogenesis, an increase in the maximal sustainable firing frequency using intense currents (MRFF), and the consequent expansion of the dynamic range for stimulus encoding. Thus, the control of g(Na)max+ through the regulation of Na+ channel synthesis and membrane incorporation at sites of rhythmogenesis (e.g. axon hillock-initial segment region, or peripheral sensory endings) is a potential regulatory mechanism for neuronal excitability and stimulus encoding.
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页码:92 / 98
页数:7
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