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The dual effect of membrane potential on sodium conductance in the giant axon of Loligo.枪乌贼巨大轴突中膜电位对钠电导的双重作用。
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The components of membrane conductance in the giant axon of Loligo.枪乌贼巨大轴突膜电导的组成成分。
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Currents carried by sodium and potassium ions through the membrane of the giant axon of Loligo.钠和钾离子通过枪乌贼巨大轴突膜所携带的电流。
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Measurement of current-voltage relations in the membrane of the giant axon of Loligo.枪乌贼巨大轴突膜电流-电压关系的测量。
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Stabilization and rectification of muscle fiber membrane by tetrodotoxin.河豚毒素对肌纤维膜的稳定与矫正作用
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TETRODOTOXIN BLOCKAGE OF SODIUM CONDUCTANCE INCREASE IN LOBSTER GIANT AXONS.河豚毒素对龙虾巨轴突中钠电导增加的阻断作用
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Effect of procaine on electrical properties of squid axon membrane.普鲁卡因对乌贼轴突膜电特性的影响。
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Anesthetic and calcium action in the voltage-clamped squid giant axon.电压钳制枪乌贼巨轴突中的麻醉作用与钙作用
J Gen Physiol. 1959 Mar 20;42(4):793-802. doi: 10.1085/jgp.42.4.793.
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Demonstration of two stable potential states in the squid giant axon under tetraethylammonium chloride.在氯化四乙铵作用下乌贼巨大轴突中两种稳定电位状态的证明。
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A quantitative description of membrane current and its application to conduction and excitation in nerve.膜电流的定量描述及其在神经传导和兴奋中的应用。
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γ-氨基丁酸受体通道复合物作为汞、铜、锌和镧系元素的靶位点。

GABA receptor-channel complex as a target site of mercury, copper, zinc, and lanthanides.

作者信息

Narahashi T, Ma J Y, Arakawa O, Reuveny E, Nakahiro M

机构信息

Department of Pharmacology, Northwestern University Medical School, Chicago, Illinois 60611, USA.

出版信息

Cell Mol Neurobiol. 1994 Dec;14(6):599-621. doi: 10.1007/BF02088671.

DOI:10.1007/BF02088671
PMID:7641224
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11566803/
Abstract
  1. The GABAA receptor-chloride channel complex has been shown to be modulated by a variety of chemicals. Scores of chemicals with diverse and unrelated structures augment the GABA-induced chloride current, while some other chemicals suppress the current. Certain heavy metals and a variety of polyvalent cations increase or decrease the current in a potent and efficacious manner. 2. We have studied the mechanisms whereby mercury, copper, zinc, and lanthanides modulated the GABA system by whole-cell and single-channel patch clamp techniques as applied to the rat dorsal root ganglion neurons in primary culture. 3. Mercuric chloride augmented the GABA-induced current to 115% of control at 0.1 microM and to 270% of control at 100 microM. It also generated a slowly developing inward current carried by a variety of ions. In contrast, methylmercury suppressed the GABA-induced current. The potent stimulation of the GABA system by mercuric chloride is deemed important in mercury intoxication. 4. Copper and zinc suppressed the GABA-induced current with an EC50 of 16 and 19 microM, respectively. They bound to a common site on the external surface of the GABA receptor-channel complex. 5. Lanthanum augmented the GABA-induced current with an EC50 of 230 microM by increasing the affinity of the receptor for GABA. It bound to a site on or near the external surface of the GABA receptor-channel complex which is different from the sites for GABA, barbiturates, benzodiazepines, picrotoxin, and copper/zinc. 6. Six other lanthanides with larger atomic numbers also exerted the same stimulatory effect with their efficacies increasing with the atomic number. 7. Single-channel analyses have revealed that the augmentation of whole-cell current by terbium, a lanthanide, is due to three actions: an increase in the overall mean open time, a decrease in the overall mean closed time, and an increase in the overall mean burst time.
摘要
  1. γ-氨基丁酸A型(GABAA)受体-氯离子通道复合物已被证明可受多种化学物质调节。数十种结构各异且无关联的化学物质可增强γ-氨基丁酸(GABA)诱导的氯离子电流,而其他一些化学物质则抑制该电流。某些重金属和多种多价阳离子能以强效且有效的方式增加或减少该电流。2. 我们运用全细胞和单通道膜片钳技术,对原代培养的大鼠背根神经节神经元进行研究,以探究汞、铜、锌和镧系元素调节GABA系统的机制。3. 氯化汞在0.1微摩尔时将GABA诱导的电流增强至对照的115%,在100微摩尔时增强至对照的270%。它还产生了由多种离子携带的缓慢发展的内向电流。相比之下,甲基汞抑制GABA诱导的电流。氯化汞对GABA系统的强效刺激在汞中毒中被认为很重要。4. 铜和锌分别以16和19微摩尔的半数有效浓度(EC50)抑制GABA诱导的电流。它们结合在GABA受体-通道复合物外表面的一个共同位点上。5. 镧通过增加受体对GABA的亲和力,以230微摩尔的EC50增强GABA诱导的电流。它结合在GABA受体-通道复合物外表面或其附近的一个位点上,该位点不同于GABA、巴比妥类药物、苯二氮䓬类药物、印防己毒素和铜/锌的结合位点。6. 其他六种原子序数较大的镧系元素也发挥了相同的刺激作用,其效力随原子序数增加而增强。7. 单通道分析表明,镧系元素铽对全细胞电流的增强作用源于三种效应:总体平均开放时间增加、总体平均关闭时间减少以及总体平均爆发时间增加。