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Molecular mechanisms of voltage-gated ion channels

Molecular mechanisms of voltage-gated ion channels
电压门控离子通道的分子机制
批准号:
6823218
负责人:
Hans Peter Larsson
金额:
$35.01万
依托单位国家:
美国
项目类别:
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-12-01 至 2006-11-30

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中文摘要
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英文摘要
EXCEED THE SPACE PROVIDED. Voltage-gated ion channels are involved in nerve impulse propagation, synaptic transmission, muscle action potentials, and excitation/contraction coupling. Abnormal function of voltage-gated channels has been implicated in many neurological diseases, for example, epilepsy, episodic ataxia, and periodic paralyses. An understanding of the normal and pathological function of these channels could lead to the development of treatments for a number of neurological diseases. Voltage-activated ion channels are activated by changes in the voltage across the cell membrane. The classic voltage-activated potassium channels open when the membrane is depolarized. This has been shown to be due to the outward movement of an intrinsic voltage sensor, $4, which triggers the conformational changes that open the channel. However, how the movement of $4 is coupled to the opening of the channel is not understood. Recently, a new class of voltage-activated ion channels were cloned: hyperpolarization-activated cyclic nucleotide-gated ion channels (HCN channels). These channels also contain a putative voltage sensor, $4. Surprisingly, the HCN channels open with the opposite polarity from the voltage-activated potassium channels; that is, the HCN channels open when the membrane is hyperpolarized. We hypothesize that $4 is also the voltage sensor in the HCN channels, but that the coupling between $4 movement and the opening of the channel involves a different mechanism than in voltage-activated potassium channels. The aim of the proposed project is to determine whether $4 is the voltage sensor in the HCN channels and to compare and contrast the $4 movement in these channels with the $4 movement in voltage-activated potassium channels. The movement of $4 will be measured in cysteine-substituted channels using cysteine-specific fluorescent probes or membrane-impermeable cysteine reagents. These measurements will be used to determine how $4 moves in the different channels and will further our understanding of the different mechanisms of opening of these two classes of channels. PERFORMANCE SITE ========================================Section End===========================================
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Activation mechanism in HCN channels.
Activation mechanism in HCN channels.
Activation mechanism in HCN channels.
Molecular mechanisms of voltage-gated proton channels
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