包郵 細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7
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細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7 版權(quán)信息
- ISBN:9787030280831
- 條形碼:9787030280831 ; 978-7-03-028083-1
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細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7 本書特色
《神經(jīng)科學(xué)百科全書:細(xì)胞興奮性、神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控(導(dǎo)讀版)(影印版)》由科學(xué)出版社出版。
細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7 內(nèi)容簡介
《神經(jīng)科學(xué)百科全書》原書篇幅巨大,為所有神經(jīng)科學(xué)百科全書之首。由來自世界各地的2400多位專家撰稿人合力打造,覆蓋了神經(jīng)科學(xué)全部主要領(lǐng)域。書中每個(gè)詞條在收入書中之前均經(jīng)過顧問委員會(huì)的同行評議,詞條中均含有詞匯表、引言、參考文獻(xiàn)和豐富的交叉參考內(nèi)容。
細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7 目錄
神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控
原書詞條中英文對照表
細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7 節(jié)選
《神經(jīng)科學(xué)百科全書:細(xì)胞興奮性、神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控(導(dǎo)讀版)(影印版)》篇幅巨大,為所有神經(jīng)科學(xué)百科全書之首。由來自世界各地的2400多位專家撰稿人合力打造,覆蓋了神經(jīng)科學(xué)全部主要領(lǐng)域。書中每個(gè)詞條在收入書中之前均經(jīng)過顧問委員會(huì)的同行評議,詞條中均含有詞匯表、引言、參考文獻(xiàn)和豐富的交叉參考內(nèi)容。
細(xì)胞興奮性.神經(jīng)系統(tǒng)的基因表達(dá)與調(diào)控-神經(jīng)科學(xué)百科全書-7 相關(guān)資料
插圖:Voltage-gated potassium channels have K+-selectivepores that are opened by membrane depolarization.This opening allows the movement of K+ ions acrossthe plasma membrane and the generation of K+ cur-rents that tend to repolarize the membrane towardthe equilibrium potential for K+ (EK). Voltage-gatedpotassium channels contribute widely to the electricalproperties of neurons. They influence subthresholdproperties, including the resting potential and mem-brane resistance. They influence the amplitude andfrequency of subthreshold oscillations, the responsive-ness of the cell to synaptic inputs, and the probabilityof spike generation. They help shape postsynapticpotentials, and they are the main determinants of therepolarization of the action potential governing spikeshape and frequency. Their voltage-dependent activityensures a non-ohmic current-voltage relationship,which thereby enables the channels to contribute tothe nonlinear properties of neurons. Voltage-gatedpotassium channels have similar functions in otherexcitable cells, including all varieties of muscle. In non-excitable cells, they contribute to the resting potentialand to the regulation of Ca2+ entry and secretion. Voltage-gated K+ channels differ dramatically intheir kinetic and voltage-dependent properties aswell as their cellular and subcellular distributions.This diversity is a main contributor to the varied elec-trical properties of neuronal populations throughoutthe nervous system. Thus, understanding the input-output relationship of neuronal elements demands thecontinued effort to study the properties and localiza-tion of these channels and analyze their physiologicalroles in native membranes.
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