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Molecular mechanisms underlying inactivation of voltage-

Molecular mechanisms underlying inactivation of voltage-
电压失活的分子机制
批准号:
7143823
负责人:
JOHN CLAY
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至

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中文摘要
翻译
对于神经元如何在噪声存在的情况下编码信息,我们所知甚少。噪声是神经系统在膜水平和随机突触输入到其他神经细胞的任何单个神经元水平上普遍存在的特征。我们已经研究了这个问题,用鱿鱼巨大的轴突制成双稳态与适度碱性细胞内百万。双稳定性可能是大脑神经元的特征。将低水平的噪声注入到鱿鱼的轴突制备中,使其从发射模式切换到静止模式,而没有切换回发射模式。这一观察结果可能有助于设计控制癫痫发作时过度兴奋性的装置。较高水平的噪音会产生突发的放电,这可能是大脑用于形成短期记忆的一种机制。
英文摘要
Very little is known about how neurons encode information in the presence of noise - a ubiquitous feature of the nervous system at both the membrane level and at the level of random synaptic inputs to any individual neuron from other nerve cells. We have investigated this question using squid giant axons made bistable with a moderately alkaline intracellular mileau. Bistability may be characteristic feature of neurons in the brain. Low level noise injected into the squid axon preparation produced a switch from its firing mode to its quiescent mode without a switch back to the firing mode. This observation may be useful in designing devices to control hyperexcitability during epileptic seizures. Higher levels of noise produced burst of firing, which may be a mechanisms used by the brain for short term memory formation. A subsidiary feature of this project concerns the mechanisms by which changes in intracellular pH (pHi) modify ion channels underlying nerve excitability. This lab previously found that a shift of pHi in squid axons produced a shift of slow inactivation of the potassium ion current, IK, along the voltage axis. The lab recently found a lack of such an effect in Shaker K channels heterologously expressed in Xenopus oocytes. The molecular mechanisms underlying slow inactivation in the latter channel appear to differ from those of the squid channel. An investigation of the primary amino acid sequences of both K channel types suggest five possible targets for the pHi effect in the squid channel. We are currently engineering those residues out of the squid channel to see if there is a concomitant removal of the voltage shift of slow inactivation. A further series of experiments will involve an attempt to engineer those residues into the Shaker channel to see if the voltage shift can be added to its slow inactivation process. These experiments may further elucidate the mechanisms underlying this gating feature which is common to all types of voltage-gated channels.
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ORGANELLE TRANSPORT OF ION CHANNELS IN EXCITABLE CELLS
ORGANELLE TRANSPORT OF ION CHANNELS IN EXCITABLE CELLS
Slow inactivation of voltage gated ion channels
Modulation of neuronal excitability