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1.
应用膜片钳全细胞记录模式研究了内源性一氧化氮(NO)对培养海马神经元延迟整流型钾电流的调控作用及其机制.给予NO合成酶的底物L-精氨酸(L-Arg,2mmol/L)可显著抑制海马神经元上的延迟整流型钾电流,但其同分异构体D-精氨酸(2mmol/L)对钾电流则无明显影响.并且,经一氧化氮合成酶抑制剂L-NAME(nomega-nitro-L-argininemethylester,0.5mmol/L)预处理后,L-Arg对钾电流的抑制作用消失,表明L-Arg抑制钾电流是通过产生NO而不是精氨酸本身.特异性鸟苷酸环化酶抑制剂ODQ(1H-[1,2,4]oxadiazolo[4,3-a]-quinoxalin-1-one,10!mol/L)预处理不影响L-Arg对钾电流的抑制作用,但巯基烷化剂NEM(N-ethylmaleimide,1mmol/L)预处理可完全阻断L-Arg的抑制效应.以上结果表明,内源性NO主要通过巯基亚硝化途径抑制海马神经元的延迟整流型钾电流.  相似文献   

2.
本研究的目的在于探讨产前应激对子代大鼠海马CA3神经元高电压激活(HVA)钙通道、延迟整流钾电流(delayedrectifierpotassiumcurrents,IKD)的影响。产前应激(prenatalstress,PNS)组孕鼠孕晚期给予束缚应激,应用全细胞膜片钳技术进行研究。结果显示产前应激增加了子代海马CA3神经元HVA钙通道峰电流幅值,对照组和产前应激组子代CA3神经元平均最大HVA钙电流峰值分别为-576.52±7.03pA和-702.05±6.82pA(P<0.01)。同时未改变其电导-电压关系,也未改变延迟整流钾通道电流-电压关系、电导-电压关系。结果提示,在胎儿发育的关键时期,给予母体产前应激,引起子代海马神经元HVA钙电流增加,其机制一方面PNS导致皮质酮升高,从而可能增加HVA钙通道mRNA表达;另一方面PNS所致反应性氧化产物(reactiveoxygenspecies,ROS)增多,后者可能通过磷酸化HVACa2 通道亚单位,从而提高HVA钙电流幅值。  相似文献   

3.
运用全细胞膜片钳技术研究二氧化硫衍生物对大鼠背根神经元瞬间外向钾电流(IA和ID)和延迟整流钾电流(IK)的影响。结果发现二氧化硫衍生物剂量依赖性地增大钾通道的电导,电压依赖性地增大钾电流的幅度,且这种增大作用部分可逆。二氧化硫非常显著地使延迟整流钾电流的激活过程向超极化方向移动,使瞬间外向钾电流的失活过程向去极化方向移动。10μmol/L二氧化硫衍生物作用前后,延迟整流钾电流的半数激活电压分别是(20.3±2.1)mV和(15.0±1.5)mV;IA和ID的半数失活电压分别朝去极化方向移动了6mV和7.4mV。这些结果表明二氧化硫改变了钾通道的特性,改变了神经元的兴奋性。  相似文献   

4.
目的: 研究白细胞介素-6对海马神经元电压依赖离子通道和NMDA电流的影响.方法: 应用全细胞膜片钳技术观察IL-6对电压依赖性钠通道电流(INa),延迟整流性钾通道电流(IK),电压依赖性钙通道电流(ICa),NMDA(N-methyl-D-aspartate)受体通道电流的影响.结果: 50 ng/ml IL-6作用24 h后IK 和ICa明显减小,Cm明显增大.50,500 ng/ml时减小NMDA电流.结论: IL-6通过作用于电压依赖钾通道,钙离子通道及NMDA通道影响神经元功能.  相似文献   

5.
目的 :研究白细胞介素 6对海马神经元电压依赖离子通道和NMDA电流的影响。方法 :应用全细胞膜片钳技术观察IL 6对电压依赖性钠通道电流 (INa) ,延迟整流性钾通道电流 (IK) ,电压依赖性钙通道电流 (ICa) ,NMDA(N methyl D aspartate)受体通道电流的影响。结果 :5 0ng/mlIL 6作用 2 4h后IK和ICa明显减小 ,Cm明显增大。 5 0 ,5 0 0ng/ml时减小NMDA电流。结论 :IL 6通过作用于电压依赖钾通道 ,钙离子通道及NMDA通道影响神经元功能。  相似文献   

6.
瞬间外向钾电流(IA)具有快速激活和失活等特征,是动作电位复极化早期外向钾离子电流的主要成分,广泛分布在海马神经元,树突处尤为突出.该电流通过减慢去极化速度和延缓动作电位的产生等作用,调节突触的输入和动作电位的反向传播,从而在信号整合及突触可塑性等过程中扮演重要角色.很多人类疾病,如癫痫性疾病等,和海马神经元的IA电流有关.  相似文献   

7.
目的:观察氯化钴(COCl2)预处理对急性低氧后海马神经元电压门控性Na^ 、K^ 电流的影响。方法:原代培养大鼠海马神经元,分为COCl2预处理和非处理组,采用膜片钳全细胞记录技术,检测急性低氧后海马神经元钠电流(INa)、钾电流(Ik)的变化。结果:急性低氧后,海马神经元INa、Ik电流幅度明显降低,INa阈值右移,而经CoCl2预处理的海马神经元INa、Ik电流的降低幅度明显减轻。结论:COCl2预处理减轻急性低氧所致的INa、Ik电流变化,对神经元有明显的保护作用。  相似文献   

8.
胆固醇普遍存在于细胞膜中,其含量在细胞增殖、生长及各种疾病条件下会发生改变,这暗示胆固醇对细胞功能的调节起着重要的作用。运用全细胞膜片钳技术研究了胆固醇含量变化对海马神经细胞电压依赖钾电流的影响。实验观察到神经细胞经胆固醇去除剂β-甲基环化糊精(MβCD)处理后,胆固醇含量的减少促进了延迟整流钾电流IK的增加,且延缓了瞬间失活钾电流IA的失活。更进一步,延迟整流钾电流IK和瞬间失活钾电流IA分别经TEA和4-AP阻断后,MβCD对两种电流成分的影响显著降低。这一结果进一步表明胆固醇去除剂对电压依赖钾电流的上调是通过作用于IK和IA电流而共同实现的。基于电压依赖钾通道在神经细胞功能中的重要作用,实验结果暗示神经细胞胆固醇含量变化可对神经细胞的兴奋性起调节作用。  相似文献   

9.
大鼠海马神经元膜离子通道随培养时间变化的特点   总被引:6,自引:2,他引:6  
目的和方法:采用膜片钳全细胞记录技术观察新生大鼠海马神经元体外分散培养过程中,基本离子通道和膜参数随培养天数延长而变化的规律.结果:在7 d,14 d和21 d时电压依赖性钠电流(Voltage-dependent Na cur-rent,ⅠNa)和延迟整流性钾电流(Delayed rectifier K current,Ⅰk)的幅度无显著性差异.电压依赖性钙电流(Voltage-dependent Ca2 current,ⅠCa)和ⅠCa密度则持续增大,进一步研究表明,L型钙通道(L-type voltage-dependent Ca2 channel,L-VDCC)的增加是其主要原因.NMDA诱发电流随培养时间延长而明显增加.结论:钙通道和NMDA受体所介导的Ca2 内流是神经元易感于衰老和死亡的重要机制之一.  相似文献   

10.
线粒体膜电位与皮质酮对原代培养海马细胞的毒性作用   总被引:2,自引:0,他引:2  
Nie W  Zhang ZY  Zhou JH 《生理学报》2001,53(6):469-472
采用MTT法和激光共聚焦显微术观察皮质酮对原代培养海马神经细胞的存活率及其线粒体膜电位的影响。结果表明,在低糖、无血清培养条件下,皮质酮可剂量依赖地降低海马神经元及神经胶质细胞的存活率,在同等剂量下以神经元损伤更为显著。给予高浓度葡萄糖(25mmol/L)可明显拮抗皮质酮对海马神经元的毒性作用。进一步研究表明,皮质酮(10^-6-10^-5mol/L)可引起海马神经元线粒体膜电位明显下降,此作用亦可被高浓度葡萄糖所对抗。结果提示,在相同处理因素条件下,皮质酮以损伤神经元为主。皮质酮可降低海马神经元的存活率及线粒体膜电位,给予高浓度葡萄糖具有明显的改善作用。线粒体膜电位的下降可能是皮质酮引起神经元损伤的机制之一。  相似文献   

11.
GABA-induced potassium channels in cultured neurons   总被引:3,自引:0,他引:3  
When gamma-aminobutyric acid (GABA) or baclofen were applied to cultured rat hippocampal neurons, single-channel potassium currents appeared after a delay of 30 s or more in patches of membrane on the cell surface isolated from the agonists by the recording pipette. The appearance of currents in patches not exposed to agonist, the delay in their appearance and the suppression of currents in cells pre-incubated with pertussis toxin indicate the involvement of an intracellular second messenger system. The channels were associated with a GABAB receptor rather than a GABAA receptor as they were blocked by baclofen, a GABAB antagonist, but were not affected by bicuculline, a GABAA antagonist. A feature of the single channel currents was their variable amplitude: they had a maximum conductance of ca. 70 pS and displayed many lower conductance states that were integral multiples of 5-6 pS. In several cells exposed to GABA or baclofen, first small currents and then progressively larger currents appeared: current amplitude was a multiple of an elementary current. It is suggested that binding of GABA to GABAB receptors activates a second messenger system causing opening of oligomeric potassium channels.  相似文献   

12.
一种适用于膜片箝记录的海马神经元分离方法   总被引:2,自引:0,他引:2  
结合酶消化和机械分离的方法,探讨一种适用于膜片箝记录的大白鼠海马神经元的急性分离技术。此法分离得到的不同状态的细胞有明显的形态差异,易于在镜下直接分辨。细胞具有完整的突触结构,表面光洁,适于膜片箝千兆欧阻抗的封接。实验证实,胰蛋白酶(Trypsin)未破坏神经元上的离子通道,细胞具有正常的电生理学特性。  相似文献   

13.
T L Wimpey  C Chavkin 《Neuron》1991,6(2):281-289
Opioid receptors were found to activate two different types of membrane potassium conductance in acutely dissociated neurons from the CA1/subiculum regions of the adult rat hippocampal formation. Opioid-responsive neurons were distinguished based on their morphology and electrophysiological responses. In one population of neurons having a multipolar, nonpyramidal cell shape, mu-selective opioid agonists increased an inward rectifying potassium current. Opioid activation of the inward rectifying conductance resulted in small outward potassium currents at resting membrane potentials and increased inward currents at hyperpolarized potentials. In a second population of nonpyramidal neurons, mu opioid agonists increased a novel voltage-gated potassium current. This current was blocked by internal CsCl2, unaffected by external BaCl2 or CdCl2, irreversibly activated by intracellular GTP-gamma-S, and inactivated by sustained depolarization. In contrast to the inward rectifying conductance, the voltage-gated conductance was not activated at resting membrane potentials or hyperpolarized potentials. The opioid-activated, voltage-gated conductance represents a new class of G protein-regulated potassium current in the brain.  相似文献   

14.
The glutamate transporter inhibitor, L-trans-pyrrolidine-2,4-dicarboxylic acid (PDC) reversibly enhanced hippocampal neuronal activity in the rat and mouse dentate gyrus. The PDC action was still found in mice lacking the glial glutamate transporter GLT-1. PDC did not influence the rate of spontaneous miniature excitatory postsynaptic currents and spontaneous inhibitory postsynaptic currents, ionotropic glutamate receptor currents, or GABA-evoked currents in cultured rat hippocampal neurons. PDC increased glutamate released from cultured hippocampal astrocytes from normal rats, normal mice, and GLT-1 knock-out mice, that is not inhibited by deleting extracellular Na(+), while the drug had no effect on the release from cultured rat hippocampal neurons. The results of the present study thus suggest that PDC stimulates glial glutamate release by a mechanism independent of inhibiting glutamate transporters, which perhaps causes an increase in synaptic glutamate concentrations, in part responsible for the enhancement in hippocampal neuronal activity.  相似文献   

15.
The effects of a novel anti-hypertensive drug, mibefradil, on voltage-dependent currents in isolated thalamic and hippocampal neurons, as well as on synaptic transmission in the hippocampus have been studied. Mibefradil exerted a potent inhibitory action on low-threshold calcium currents in thalamic neurons (IC50=160 nM). In higher concentrations (1–20 μM), this drug blocked not only low-threshold calcium current but also voltage-dependent sodium and delayed potassium currents in pyramidal hippocampal neurons. The amplitude of population action potentials in hippocampal slices decreased by 55% in the presence of 20μM mibefradil. All of the effects of mibefradil were almost completely reversible. In our experiments, the sensitivity of low-threshold calcium channels in thalamic neurons to mibefradil was higher than that observed on other objects. The ability of mibefradil to block not only calcium currents but also other types of voltage-dependent ion conductances in hippocampal neurons may be considered an essential factor that determines the specificity of the pharmacological profile of this drug.  相似文献   

16.
Coupled potassium channels induced by arachidonic acid in cultured neurons   总被引:2,自引:0,他引:2  
Exposure of the inside surface of patches of membrane excised from cultured rat hippocampal neurons to arachidonic acid (10-100 microM) caused the appearance of potassium currents of variable amplitude similar to those activated by GABA or baclofen in cell-attached patches. The amplitude of single-channel currents increased with time after exposure to 20 or 50 microM arachidonic acid and also increased when arachidonic acid concentration was increased from 20 to 50 or 100 microM. Current-amplitude probability histograms had peaks at integral multiples of an 'elementary' current. It is proposed that arachidonic acid or its metabolites cause synchronous opening and closing of coupled conducting units (co-channels) in cell membranes.  相似文献   

17.
KV2.1 is the prominent somatodendritic sustained or delayed rectifier voltage-gated potassium (Kv) channel in mammalian central neurons, and is a target for activity-dependent modulation via calcineurin-dependent dephosphorylation. Using hanatoxin-mediated block of KV2.1 we show that, in cultured rat hippocampal neurons, glutamate stimulation leads to significant hyperpolarizing shifts in the voltage-dependent activation and inactivation gating properties of the KV2.1-component of delayed rectifier K+ (IK) currents. In computer models of hippocampal neurons, these glutamate-stimulated shifts in the gating of the KV2.1-component of IK lead to a dramatic suppression of action potential firing frequency. Current-clamp experiments in cultured rat hippocampal neurons showed glutamate-stimulation induced a similar suppression of neuronal firing frequency. Membrane depolarization also resulted in similar hyperpolarizing shifts in the voltage-dependent gating properties of neuronal IK currents, and suppression of neuronal firing. The glutamate-induced effects on neuronal firing were eliminated by hanatoxin, but not by dendrotoxin-K, a blocker of KV1.1-containing channels. These studies together demonstrate a specific contribution of modulation of KV2.1 channels in the activity-dependent regulation of intrinsic neuronal excitability.  相似文献   

18.
Glucocorticoids (GCs) have been demonstrated to act through both genomic and nongenomic mechanisms. The present study demonstrated that corticosterone rapidly suppressed the activity of N-methyl-D-aspartate (NMDA) receptors in cultured hippocampal neurons. The effect was maintained with corticosterone conjugated to bovine serum albumin and blocked by inhibition of G protein activity with intracellular GDP-β-S application. Corticosterone increased GTP-bound G(s) protein and cyclic AMP (cAMP) production, activated phospholipase Cβ(3) (PLC-β(3)), and induced inositol-1,4,5-triphosphate (IP(3)) production. Blocking PLC and the downstream cascades with PLC inhibitor, IP(3) receptor antagonist, Ca(2+) chelator, and protein kinase C (PKC) inhibitors prevented the actions of corticosterone. Blocking adenylate cyclase (AC) and protein kinase A (PKA) caused a decrease in NMDA-evoked currents. Application of corticosterone partly reversed the inhibition of NMDA currents caused by blockage of AC and PKA. Intracerebroventricular administration of corticosterone significantly suppressed long-term potentiation (LTP) in the CA1 region of the hippocampus within 30 min in vivo, implicating the possibly physiological significance of rapid effects of GC on NMDA receptors. Taken together, our results indicate that GCs act on a putative G protein-coupled receptor to activate multiple signaling pathways in hippocampal neurons, and the rapid suppression of NMDA activity by GCs is dependent on PLC and downstream signaling.  相似文献   

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