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1.
目的研究丙二醛(MDA)对原代培养的海马神经元胞质中钙离子稳态的破坏作用及可能的信号机制。方法以Fur2/AM为荧光指示剂,采用荧光分光光度法定量测定原代培养海马神经元胞质游离钙浓度变化。结果随着MDA浓度的升高和作用时间的延长,导致胞质中游离钙水平显著升高,破坏其钙稳态。MDA所导致的海马神经元胞质游离钙水平升高包括两个过程:100μmol/L的MDA可使胞质[Ca2+]i水平在0—10min内的早期渐进升高过程,经历中间大约5min的平台期后,接下来15—30min的晚期显著升高。以细胞膜电压依赖的Ca2+通道抑制剂nimodipine抑制外钙内流后,可显著抑制晚期胞质[Ca2+]i水平的升高,以PLC的抑制剂U73122作用后,则可抑制早期胞质[Ca2+]i水平的升高。结论100μmol/L的MDA作用下,海马神经元胞质中早期钙离子水平的升高和晚期钙离子水平的升高可能分别由不同的信号机制所介导。  相似文献   

2.
吗啡对大鼠海马神经元突触传递的作用及机制探讨   总被引:1,自引:0,他引:1  
目的 :从离子通道角度研究吗啡对中枢神经系统兴奋性及抑制性突触传递的作用并探讨其机制。方法 : 原代培养新生Wistar大鼠的海马神经元。采用膜片钳技术研究吗啡对其兴奋性及抑制性突触后电流及谷氨酸诱发电流的影响。结果 :①吗啡可明显增强海马神经元兴奋性突触传递 ,加吗啡后自发兴奋性突触后电流 (sEPSC)的发放频率增加了 ( 2 0 7.8± 2 0 .9) %。此作用可被阿片受体阻断剂纳洛酮阻断 (P <0 .0 1) ;②吗啡对微小兴奋性突触后电流 (mEPSC)的发放频率及谷氨酸诱发电流的幅度没有明显影响 (P >0 .0 5 ) ;③吗啡可明显抑制神经元自发抑制性突触后电流 (sIPSC) ,纳洛酮可拮抗吗啡作用 (n =13 ,P <0 .0 1)。结论 :实验结果提示吗啡对海马神经元的兴奋作用不是由于吗啡直接作用于兴奋性氨基酸—谷氨酸突触传递过程 ,而是可能由于抑制了抑制性中间神经元 ,间接产生的兴奋作用。  相似文献   

3.
脂质过氧化中间产物丙二醛(Malondialdehyde,MDA)在生物体内表现了广泛的生物毒性,MDA也是机体过度训练和运动性疲劳的重要生理指标.采用光学显微镜和透射式电子显微镜观察不同浓度MDA作用后海马神经元形态和超微结构的变化,并采用荧光分光光度法测定原代培养的海马神经元中Ca2+-ATPase活性的变化和胞质游离钙离子水平的变化,探讨MDA对海马神经元形态和结构上的破坏及神经元钙离子稳态的影响.在光镜下可观察到MDA作用下神经元突触变短,胞体肿胀,出现细胞死亡或凋亡的形态特征;在电镜下可观察到线粒体结构的明显破坏,内膜上的嵴颗粒减少或消失;同时MDA还通过抑制质膜Ca2+-ATPase的活性和其它的途径,破坏神经元胞质游离Ca2+稳态.结果表明,MDA可通过破坏海马神经元的结构和影响胞质中钙离子稳态,破坏神经元的生理功能,在机体运动性中枢疲劳形成中可能发挥重要作用.  相似文献   

4.
万勤  王福庄 《生理学报》1997,49(5):545-550
实验用Fluo-3负载细胞,在激光扫描共聚焦显微镜下直接监测缺氧后分散培养的大鼠海马CA1区神经元内游离Ca^2+浓度([Ca^2+]i)的变化,观察腺苷对这种变化的影响并初步探讨其作用机制。结果发现,急性缺氧使海马神经元[Ca^2+]i显著升高;腺苷(100μmol/L)明显抑制缺氧引起的[Ca^2+]i增高,腺苷A1受体拮抗剂CPT以及K^+通道阻断剂4-AP和ATP敏感性K^+通道阻断剂gl  相似文献   

5.
电磁辐射对原代培养海马神经元的损伤效应及其机制探讨   总被引:4,自引:0,他引:4  
研究X带高功率微波、S带高功率微波及电磁脉冲辐射对原代培养海马神经元的损伤效应并探讨其机制。通过体外培养原代海马神经元,建立电磁波辐照细胞模型。采用Annexin V-PI双标记、流式细胞术检测细胞凋亡与坏死,原子力显微镜检测细胞膜表面形态,Fluo-3-AM荧光探针负载、激光扫描共聚焦显微镜测定胞内[Ca2 ]i。结果表明,辐射后海马神经元凋亡与坏死均增加,其中坏死增加明显;细胞膜表面粗糙度加大,膜穿孔增多;胞内[Ca2 ]i明显升高。且以上变化均以X带高功率微波组最重,S带高功率微波组次之,电磁脉冲组最轻。提示细胞膜穿孔增多,膜通透性增加,导致胞外Ca2 内流增加,甚至胞内钙超载是辐射致海马神经元凋亡与坏死的机制之一;三种电磁辐射对海马神经元的损伤程度与照射频率呈正相关。  相似文献   

6.
钙离子在海马脑片缺氧损伤的作用   总被引:3,自引:0,他引:3  
本工作用海马脑片缺氧模型,观察了无钙、高镁人工脑脊液以及钙通道阻断剂尼莫地平对缺氧后海马脑片CA1区锥体细胞诱发群锋电位(PS0的影响。发现用无钙与高镁人工脑脊液流脑片,可显著促进脑片缺氧后PS的恢复,而尼莫地对缺氧脑片PS的则无明显促进作用。结果表明:钙离子参与海马脑片缺氧后神经元及其突触传递的损伤过程,而电压敏感性通道L亚型在缺氧损伤中可能不起主要作用。  相似文献   

7.
目的:观察大鼠体表严重伤后海马神经元的病理变化,探讨CNTF对其保护作用。方法:SD大鼠侧脑室埋管,制成30%体表面积Ⅲ度烫伤模型,伤后3天,测定脑组织含水量,海马乳酸脱氢酶(LDH)和一氧化氮(NO)的含量,做病理切片,尼氏染色。结果:大鼠严重烫伤后,脑组织含水量增加,海马出现明显的病理变化,尼氏小体减少或消失,胞体肿胀,LDH和N煌含量增加,给予CNTF后,脑水肿、海马的病理变化有明显改善,并  相似文献   

8.
吗啡对新生鼠尾核神经元钾离子通道电流的作用   总被引:5,自引:1,他引:4  
目的 :研究吗啡对新生鼠尾核神经元钾离子通道电流的作用。方法 :应用全细胞膜片钳技术在培养的尾核神经元上 ,观察吗啡急性与慢性处理对尾核神经元电压门控钾离子通道电流的影响。结果 :吗啡急性处理尾核神经元诱发钾离子通道电流增大 ,电流从加吗啡前的 (2 .6± 0 .4 )nA增高到 (3.3± 0 .5 )nA ,加纳洛酮后电流下降为 (2 .4± 0 .4 )nA ;吗啡慢性处理尾核神经元的钾离子通道电流从对照组的 (2 .6± 0 .4 )nA增高到 (3.1± 0 .5 )nA ,加纳洛酮后电流下降为 (2 .4± 0 .4 )nA。结论 :在吗啡急性或慢性处理尾核神经元后 ,吗啡经 μ受体介导 ,诱发尾核神经元钾离子通道电流增大 ,使神经元处于超极化状态 ,导致神经元活动的抑制  相似文献   

9.
目的和方法 :采用大鼠海马脑片盲法膜片钳全细胞记录技术研究CA1区锥体神经元电压门控性Ca2 通道的动力学特征。结果 :大鼠海马脑片CA1区锥体神经元电压门控性Ca2 通道电流具有如下特点 :①激活的阈电位偏低 ,为 (- 4 9.3± 8.6 )mV ,范围为 - 6 5~ - 30mV(n =2 3)。②衰减时间常数τ值较大 ,且变化范围大 (10 0~ 70 0ms) (n =12 ) ,并且衰减具有Ca2 电流幅值的依赖性 ,③稳态失活呈现电压依赖性 ,半失活电压为 (- 5 5 .4± 9.7)mV ,斜率因子为 (5 .3± 0 .9)mV(n =10 )。④当细胞外Ca2 浓度为 2 .5mmol/L时 ,Ca2 通道的反转电位为 (5 5±13)mV(n =10 )。⑤尾电流成分较为单一 ,不表现电压依赖性。另外 ,Ca2 电流对戊脉胺及双氢吡啶类化合物硝苯地平均不敏感。结论 :根据上述Ca2 电流特征 ,海马脑片CA1区锥体神经元上的Ca2 通道主要以N型为主  相似文献   

10.
研究青霉素诱发培养的海马CA1区神经元细胞产生的一氧化氮(NO)在兴奋过程中的抑制机制。用激光扫描共聚焦显微镜观察发现100IU/ml的青霉素可诱发一种晚而慢的NO合成模式。NO合成酶抑制剂L-NNA(0-10μmol/L)可剂量依赖地抑制NO的合成,并促进谷氨酸水的升高。同时发现L-NAA(1、10μmol/L)可显著促进进蛋氨酸脑啡肽(M-ENK)的升高),而对强啡肽-B(DYN-B)的水平没有影响。100μmol/L的β-FNA(一种M-ENK受体抑制剂)可抑制L-NNA诱导的谷氨酸水平的升高,而100μmol/L的nor-BIN(一种DYNU受体抑制剂)对此没有影响。以上结果提示:1000IU/ml的青霉素诱导合成的NHO可通过抑制M-ENK水平来抑制神经元的兴奋。  相似文献   

11.
肾上腺髓质素降低培养海马神经元胞内游离钙离子浓度   总被引:1,自引:0,他引:1  
Ji SM  Xue JM  Wang C  Su SW  He RR 《生理学报》2005,57(3):340-345
经荧光探针Fluo 3-AM标记细胞内游离钙后,用激光共聚焦显微镜检测肾上腺髓质素(adrenomedullin,ADM)对原代培养大鼠海马神经元内游离钙浓度([Ca^2 ]1)的影响。实验结果如下:(1)ADM(0.01-1.0μmol/L)浓度依赖性地降低细胞内钙浓度。(2)降钙素基因相关肽受体阻断剂(calcitonin gene-related peptide,CGRP8-37)预处理可部分抑制ADM的效应。(3)ADM可显著抑制高钾引起的[Ca^2 ]1增加。(4)ADM可显著抑制三磷酸肌醇(inositol 1,4,5-trisphosphate,IP3)引起的内钙释放,而对兰尼定(ryanodine)引起的内钙释放无显著影响。以上结果提示,ADM降低培养海马神经元内游离钙浓度,此作用与其抑制IP,引起的内钙释放有关,ADM对静息状态下的Ca^2 内流无影响,但可显著抑制高钾引起的Ca^2 内流,CGRP受体介导了ADM的上述效应。  相似文献   

12.
We have investigated the protective effect of (-)-epigallocatechin gallate (EGCG) on alpha-amino-3-hydroxy-5-methyl-4-isoxazolo propionate (AMPA)-induced toxicity in cultured rat hippocampal neurons. Treatment of 24 h AMPA (10 microM) reduced the neuronal viability in both survival neuron counting and MTT reduction assay compared with control, with increase in cellular concentrations of hydrogen peroxide and malondialdehyde. These responses to AMPA were significantly blocked by co-treatments with EGCG (10 microM), which effect was very similar to the protective ability of a known antioxidant catalase (2000 U/ml). AMPA (50 microM) elicited the increase in intracellular calcium concentration ([Ca(2+)]i) on which EGCG significantly attenuated both peak amplitude and sustained nature of that [Ca(2+)]i increase in a dose-dependent manner. These data suggest that EGCG has a neuroprotective effect against AMPA through inhibition of AMPA-induced [Ca(2+)]i increase and consequent attenuation of reactive oxygen species production and lipid peroxidation as an antioxidant and a radical scavenger.  相似文献   

13.
Long-lasting increase in synaptic strength is thought to underlie learning. An explosion of data has characterized changes in postsynaptic (pstS) AMPA receptor cycling during potentiation. However, changes occurring within the presynaptic (prS) terminal remain largely unknown. We show that appearance of new release sites during potentiation between cultured hippocampal neurons is due to (a) conversion of nonrecycling sites to recycling sites, (b) formation of new releasing sites from areas containing diffuse staining for the prS marker Vesicle-Associated Membrane Protein-2 and (c) budding of new recycling sites from previously existing recycling sites. In addition, potentiation is accompanied by a release probability increase in pre-existing boutons depending upon their individual probability. These prS changes precede and regulate fluorescence increase for pstS GFP-tagged-AMPA-receptor subunit GluR1. These results suggest that potentiation involves early changes in the prS terminal including remodeling and release probability increase of pre-existing synapses.  相似文献   

14.
Fluorescent Ca2+ indicator dyes can be introduced into cells through the same microelectrode used for intracellular voltage recording. Simultaneous measurement of cell membrane potential and intracellular Ca2+ concentration can be very helpful in interpreting the mechanisms of Ca2+ increases. This chapter describes fluorescence image acquisition using a CCD camera and a computer program that also records a synchronized membrane potential trace. The same program allows for preliminary data analysis. More elaborate analyses can be accomplished with commercial programs. We also describe quantitative evaluations of sources of error in the use of the statistic deltaF/F as an indicator of Ca2+ concentration. Especially important errors to minimize are changes in background fluorescence and inappropriate autofluorescence corrections. Some improvement of fluorescence images of cells deep within slices may be accomplished by masking. One method is described for making a mask based on the raw fluorescence image. With another method, highly detailed cell morphologies may be conveyed by using masks based on neurobiotin injections and camera lucida drawings.  相似文献   

15.
Patch clamp technique was applied to the plasma membrane of cultured hippocampal neurons of rat. Elementary currents of a cation-selective channel were elicited by low intracellular pH (pHi 3.5-4.5). Channel activity starts with 1-2 min delay from the application of low pHi, and persists upon restoration of physiological pH conditions. The channel has a conductance of approx. 110 pS in symmetrical 300 mM NaCl, and is strongly selective for cations over anions. The channel is active over the whole voltage range tested (from +75 mV to -75 mV). Mean open time is function of voltage, increasing with depolarization. Low pH applied extracellularly did not activate the channel.  相似文献   

16.
To gain a better understanding of Ca2+-induced Ca2+ release in central neurons, we have studied the increase in intracellular Ca2+ concentration ([Ca2+]i) induced by application of caffeine to cells cultured from embryonic mouse telencephalon (hippocampus or cortex). The magnitudes and distributions of changes in [Ca2+]i in neuron somata were measured by quantitative video microscopy. We observed that application of caffeine to pyramidally shaped neurons typically initiated an increase in [Ca2+]i in the cytoplasmic region between the nucleus and the base of a major dendrite. [Ca2+] in this region increased over a period of 3 to 6 s and was followed by, with a slight delay, a surge of Ca2+ that moved across the soma and into or over the nucleus. Similar Ca2+ that moved across the soma and into or over the nucleus. Similar Ca2+ responses to caffeine were observed in Ca2+-containing and nominally Ca2+-free external solutions, suggesting that caffeine was inducing Ca2+ release from intracellular stores. Ca2+ responses to caffeine were potentiated by inducing a tonic Ca2+ influx through N-methyl-D-aspartate (NMDA)-type glutamate receptors activated by 0.3 μM glutamate and multiple responses to caffeine could be elicited by using this Ca2+ influx to refill the intracellular stores. Ryanodine inhibition of caffeine-induced Ca2+ release was use- and concentration-dependent; the median effective concentration EC50 for ryanodine declined from 22 μM for the first application of caffeine to 20 nM for the fourth. We conclude, based on these responses to caffeine, that ryanodine-sensitive mechanisms of intracellular Ca2+ release are active in hippocampal and cortical neurons and may be involved in generation of directed Ca2+ waves that engulf the nucleus. © 1995 John Wiley & Sons, Inc.  相似文献   

17.
Studies performed on low-density primary neuronal cultures have enabled dissection of molecular and cellular changes during N-methyl-D-aspartate (NMDA) receptor-dependent long-term potentiation (LTP). Various electrophysiological and chemical induction protocols were developed for the persistent enhancement of excitatory synaptic transmission in hippocampal neuronal cultures. The characterisation of these plasticity models confirmed that they share many key properties with the LTP of CA1 neurons, extensively studied in hippocampal slices using electrophysiological techniques. For example, LTP in dissociated hippocampal neuronal cultures is also dependent on Ca(2+) influx through post-synaptic NMDA receptors, subsequent activation and autophosphorylation of the Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) and an increase in alpha-amino-3-hydroxy-5-methylisoxazole-4-propionate (AMPA) receptor insertion at the post-synaptic membrane. The availability of models of LTP in cultured hippocampal neurons significantly facilitated the monitoring of changes in endogenous postsynaptic receptor proteins and the investigation of the associated signalling mechanisms that underlie LTP. A central feature of LTP of excitatory synapses is the recruitment of AMPA receptors at the postsynaptic site. Results from the use of cell culture-based models started to establish the mechanism by which synaptic input controls a neuron's ability to modify its synapses in LTP. This review focuses on key features of various LTP induction protocols in dissociated hippocampal neuronal cultures and the applications of these plasticity models for the investigation of activity-induced changes in native AMPA receptors.  相似文献   

18.
Using an in vitro traumatic injury model, we examined the effects of mechanical (stretch) injury on intracellular Ca2+ store-mediated signaling in cultured cortical neurons using fura-2. We previously found that elevation of [Ca2+](i) by the endoplasmic reticulum Ca2+-ATPase inhibitor, thapsigargin, was abolished 15 min post-injury. In the current studies, pre-injury inhibition of phospholipase C with neomycin sulfate maintained Ca2+-replete stores 15 min post-injury, suggesting that the initial injury-induced store depletion may be due to increased inositol trisphosphate production. Thapsigargin-stimulated elevation of [Ca2+](i) returned with time after injury and was potentiated at 3 h. Stimulation with thapsigargin in Ca2+-free media revealed that the size of the Ca2+ stores was normal at 3 h post-injury. However, Ca2+ influx triggered by depletion of intracellular Ca2+ stores (capacitative Ca2+ influx) was enhanced 3 h after injury. Enhancement was blocked by inhibitors of cytosolic phospholipase A2 and cytochrome P450 epoxygenase. Since intracellular Ca2+ store-mediated signaling plays an important role in neuronal function, the observed changes may contribute to dysfunction produced by traumatic brain injury. Additionally, our results suggest that capacitative Ca2+ influx may be mediated by both conformational coupling and a diffusible messenger synthesized by the combined action of cytosolic PLA2 and P450.  相似文献   

19.
Dong Y  Tang TS  Lu CL  He C  Dong JB  Huang XY  Sun FZ  Bao X 《生理学报》2000,52(5):402-406
对原代培养7~9d的海马神经元给予谷氨酸处理,24h后,神经元的存活率降低。预先给予垂体腺苷酸环化酶激活肽(PACAP)能显著减少谷氨酸引起的海马神经元死亡。谷氨酸呈剂量依赖性增加海马神经元细胞内钙离子含量,PACAP能抑制谷氨酸引起的海马神经元细胞内钙离子浓度的升高,特异性PACAP Ⅰ型受体拮抗剂PACAP 6-38能完全阻断PACAP减轻谷氨酸所致海马神经元损伤及降低谷氨酸所致神经元细胞内钙  相似文献   

20.
Zhang W  Segura BJ  Mulholland MW 《Peptides》2002,23(10):1793-1801
The responsiveness of cultured myenteric neurons to cholecystokinin (CCK-8) was examined using fura-2-based digital microfluorimetric measurement of intracellular calcium ([Ca(2+)](i)). CCK-8 (10(-10)-10(-6)M) evoked concentration-dependent increases in percentage of neurons responding (8-52%) and delta[Ca(2+)](i) (76-169 nM). Gastrin (1 microM) also induced an increase in [Ca(2+)](i) in 29+/-6% of neurons (delta[Ca(2+)](i): 71+/-3 nM). L-364,718, an antagonist for the CCK-A receptor, blocked [Ca(2+)](i) response to CCK-8. Removal of extracellular calcium eliminated CCK-induced [Ca(2+)](i) increments, as did the addition of the calcium channel inhibitors nickel (1mM) and lanthanum (5mM). Nifedipine (1-50 microM) dose-dependently attenuated CCK-caused [Ca(2+)](i) responses. CCK evokes [Ca(2+)](i) signaling in myenteric neurons by the influx of extracellular calcium, likely through L-type calcium channels.  相似文献   

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