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1.
神经元能够将不同时空模式的突触输入转化为时序精确的动作电位输出,这种灵活、可靠的信息编码方式是神经集群在动态环境或特定任务下产生所需活动模式的重要基础。动作电位的产生遵循全或无规律,只有当细胞膜电压达到放电阈值时,神经元才产生动作电位。放电阈值在细胞内和细胞间具有高度可变性,具体动态依赖于刺激输入和放电历史。特别是,放电阈值对动作电位起始前的膜电压变化十分敏感,这种状态依赖性产生的生物物理根源包括Na+失活和K+激活。在绝大多数神经元中,动作电位的触发位置是轴突起始端,这个位置处的阈值可变性是决定神经元对时空输入转化规律的关键因素。但是,电生理实验中动作电位的记录位置却通常是胞体或近端树突,此处的阈值可变性高于轴突起始端,而其产生的重要根源是轴突动作电位的反向传播。基于胞体测量的相关研究显示,放电阈值动态能够增强神经元的时间编码、特征选择、增益调控和同时侦测能力本文首先介绍放电阈值的概念及量化方法,然后详细梳理近年来国内外关于放电阈值可变性及产生根源的研究进展,在此基础上归纳总结放电阈值可变性对神经元编码的重要性,最后对未来放电阈值的研究方向进行展望。  相似文献   

2.
Yao XH  Xiong Y 《生理学报》2005,57(3):333-339
本实验采用脑片膜片钳全细胞记录和生物胞素(biocytin)组化染色相结合的技术,研究出生后(postnatalday,P)3~30日龄大鼠(P3~30)内侧膝状体腹侧部(ventralpartitionofmedialgeniculatebody,MGBv)神经元的电生理和形态学特性的发育变化。结果显示:(1)在P3~30的发育过程中,MGBv神经元的静息膜电位自?40mV降至?67mV(P<0.01);输入阻抗由1832M?降至806M?(P<0.01);时间常数由2.55ms降至0.96ms(P<0.01)。同时,动作电位的幅度、阈值和时程也表现出显著差异(P<0.01);(2)K+通道阻断剂4-AP使P6的MGBv神经元诱发动作电位数目减少,幅度降低,时程变宽,并使P16的动作电位幅度逐渐降低至去极化脉冲终末达到平台电位,而Ca2+通道阻断剂CdCl2仅引起P16的MGBv神经元动作电位的幅度降低,时程延长;(3)在用biocytin标记的MGBv神经元观察到,幼稚MGBv蓬丛样神经元(tuftedneuron)胞体呈圆形或椭圆形,而随着出生后日龄的增长,胞体逐渐变成梭形。轴突出现较早,树突的发育相对较晚,但其发育变化更为显著和复杂。以上结果提示,大鼠出生后MGBv神经元电生理和形态学特性仍有显著的发育变化,且两者明显相关。  相似文献   

3.
成年小鼠前脑NMDA受体参与神经元的动作电位发放   总被引:2,自引:2,他引:0  
Wang GD  Zhuo M 《生理学报》2006,58(6):511-520
谷氨酸是中枢神经系统主要的快速兴奋性递质。AMPA受体和海人藻酸受体主要参与突触传递,而NMDA受体主要参与突触可塑性。基因操作的方法增强NMDA受体的功能,可以增强动物在正常生理状态下的学习能力,及在组织损伤情况下的反应敏感性。NMDA受体参与生理功能的主要机制是长时程增强(long—term potentiation,LTP)。我们的研究表明,NMDA受体不仅参与刺激前扣带皮层的第五层细胞或刺激白质诱导的突触反应,而且参与在胞体施加去极化跃阶电流诱导的动作电位的发放。钙一钙调蛋白敏感的腺苷酸环化酶1(adenylyl cyclase 1,AC1)和cAMP信号通路可能介导了这些反应。由于扣带皮层神经元在伤害性刺激和痛中发挥重要作用,我们的结果为前脑NMDA受体参与突触传递和动作电位发放,以及与前脑相关的行为,如感受伤害性刺激和痛,提供了一个新的机制。  相似文献   

4.
本文应用免疫细胞化学方法在光镜与电镜下观察了大鼠孤束核内脑啡肽样免疫反应(ENK-LI)阳性结构的分布特征和ENK-LI轴突终末的突触联系以及非突触性关系。结果表明:(1)经秋水仙素处理的大鼠,其孤束核内有许多ENK-LI胞体的分布;而未经秋水仙素处理的大鼠,其孤束核内可见密集的ENK-LI纤维与终末;ENK-LI胞体、纤维和终末主要分布于锥体交叉平面至闩平面的孤束核内侧亚核与胶状质亚核。(2)ENK-LI阳性产物主要定位于小圆形清亮囊泡外表面、大颗粒囊泡内和线粒体外表面等处。(3)ENK-LI轴突终末主要与阴性树突形成轴-树突触。(4)阴性轴突终末终止于ENK-LI轴突终末上,形成轴-轴突触。(5)ENK-LI轴突终末与阴性轴突终末形成非突触性的轴-轴并靠。以上结果提示孤束核内的ENK-LI神经成分主要通过突触后机制、也不排除突触前作用,参与孤束核中内脏信息的整合过程,而且这一作用又受到非ENK-LI神经成分的调控。  相似文献   

5.
Lu L  Lu PH  Sheng ZH 《生理科学进展》2004,35(3):259-261
神经元是有极性的细胞 ,从胞体发出树突和轴突分别作为其信息的接受端和输出端。这些远离胞体的突起可根据神经元活动或外界环境的变化进行不依赖胞体的蛋白质局部合成 ,从而在调节突触传递效率及神经元发育和再生方面起重要作用  相似文献   

6.
本文应用免疫电镜术观察到,在大鼠脊髓胶状质内,亮啡肽(LEK)阳性的轴突终末与某些未标记神经元的树突、或树突棘、或胞体形成突触。其中一些轴(LEK)树(未标记)突触为对称性的。因此。在胶状质内,LEK神经元可以突触后抑制方式影响其它神经元的活动。LEK终末之间的对称性轴轴突触提示LEK终末可能具有自身调节作用。我们也发现少量的LEK终末与由硬脊膜外注射辣椒泰所致的一级传入C纤维变性(DEG)终末之间也存在直接和间接联系。这些联系包括以下几种:(1)轴(DEG)→树(LEK)突触;(2)轴(LEK)→轴(DEG)突触样接触;(3)轴(DEG)→树(未标记)←轴(LEK)三联体。这些联系分别提示:(1)一级传入C纤维可直接兴奋胶状质内含LEK的中间神经元,这可能是LEK对痛信息传递进行负反馈调节的机制之一;(2)LEK通过轴轴突触对一级传入C纤维的活动进行突触前抑制的可能性不能排除;(3)LEK可通过对上述三联体中的未标记树突进行抑制来间接调节一级传入C纤维的传入信息。此外,由未标记轴突终末与变性终末所形成的轴轴突触的存在提示,胶状质内非亮啡肽神经元也可通过轴轴突触以突触前抑制影响一级传入C纤维的功能。  相似文献   

7.
Liu Y  Li WQ  Wang Y 《生理科学进展》2010,41(2):117-120
神经型钙粘素(N-cadherin)作为经典钙粘素家族的一员,是钙离子依赖的细胞连接中的一种重要跨膜成分,而其作为神经突触的粘附受体不仅为跨突触的细胞骨架提供了形式上的连接,还成为了功能上沟通突触前后膜的桥梁,传递粘附信号并调节突触的发育和成熟突触的可塑性。本文主要就后者讨论N-cadherin参与的成熟突触形态和功能的变化及调节中的新近进展,并试从粘附作用与信号传递两方面,分别从粘附作用的建立和调节,跨膜、跨突触,以及胞内信号传递,来分析N-cadherin对成熟突触的作用。可以看出,粘附是基础,信号传递是建立在其上的功能,并受粘附的调节。二者相互联系,协调作用。粘附的建立需通过信号传递与细胞骨架沟通,而粘附反过来又成为信号传递通路的起始信号,从而共同介导突触的形态和功能的变化及重塑。  相似文献   

8.
Xu XH  Pan YP 《生理科学进展》2006,37(2):138-140
海马锥体神经元树突上分布着多种电压依赖性钾离子通道,但这些通道在胞体和树突不同部位的分布密度以及在突触电活动中的功能意义各不相同。倒传递动作电位(b-AP)和兴奋性突触后电位(EPSP)是树突中常见的功能电信号。本文简要介绍了近年来海马锥体神经元树突上这些钾离子通道及其电活动的生理和病理学研究成果。  相似文献   

9.
NG2细胞是广泛分布于CNS中表达NG2蛋白多糖的一种胶质细胞,也被称为少突胶质前体细胞(oligodendrocyteprecur—sorcells,oPc)。该细胞具有典型复杂的星形形态和长突起围绕于胞体周围,表达电压门控的K+和Na+通道、GABAA以及AMPA/红藻氨酸受体并接受神经元突触的信号输入。NG2细胞增殖分化是保证神经元轴突髓鞘化的首要前提,NG2的增殖分化不能仅依靠其自身调控,NG2-神经元突触联系可能也是调控NG2细胞增殖分化的信息中转站。伴随NG2细胞增殖分化神经元轴突的髓鞘化也不断形成,这些过程在围生期表现尤为明显;NG2细胞分化为少突胶质细胞后,其功能上具有”专一性”,所以可能存在NG2.神经元突触联系的作用被削弱的现象。因此,在NG2细胞增殖过程中,NG2细胞保持与神经元之间的功能性突触并将其传递给子代NG2细胞;而在NG2细胞分化的过程中,NG2细胞的突触信号输入迅速减少。NG2细胞不但是一种前体细胞,同时也是一种具有独特功能的胶质细胞,在中枢神经系统中发挥重要作用。本综述就NG2细胞在增殖分化过程中其突触信号的变化以及可能的意义进行阐述。  相似文献   

10.
关军锋  李广敏 《植物学报》2000,17(5):413-418
Ca2+对植物乙烯生成的调节与作用位点有关,胞外Ca2+在维持质膜功能的同时,抑制乙烯生成,延缓衰老;过量Ca2+进入胞质,胞内Ca2+促进乙烯生成和衰老。内源CaM与乙烯生成关系密切,介入了乙烯代谢和外源激素对乙烯的调控。此外,Ca2+是乙烯信号传递所必需的。  相似文献   

11.
Inactivation of glycogen synthase kinase 3 (GSK3) has been shown to mediate axon growth during development and regeneration. Phosphorylation of GSK3 by the kinase Akt is well known to be the major mechanism by which GSK3 is inactivated. However, whether such regulatory mechanism of GSK3 inactivation is used in neurons to control axon growth has not been directly studied. Here by using GSK3 mutant mice, in which GSK3 is insensitive to Akt-mediated inactivation, we show that sensory axons regenerate normally in vitro and in vivo after peripheral axotomy. We also find that GSK3 in sensory neurons of the mutant mice is still inactivated in response to peripheral axotomy and such inactivation is required for sensory axon regeneration. Lastly, we provide evidence that GSK3 activity is negatively regulated by PI3K signaling in the mutant mice upon peripheral axotomy, and the PI3K–GSK3 pathway is functionally required for sensory axon regeneration. Together, these results indicate that in response to peripheral nerve injury GSK3 inactivation, regulated by an alternative mechanism independent of Akt-mediated phosphorylation, controls sensory axon regeneration.  相似文献   

12.
The ability of neurons to form a single axon and multiple dendrites underlies the directional flow of information transfer in the central nervous system. Dendrites and axons are molecularly and functionally distinct domains. Dendrites integrate synaptic inputs, triggering the generation of action potentials at the level of the soma. Action potentials then propagate along the axon, which makes presynaptic contacts onto target cells. This article reviews what is known about the cellular and molecular mechanisms underlying the ability of neurons to initiate and extend a single axon during development. Remarkably, neurons can polarize to form a single axon, multiple dendrites, and later establish functional synaptic contacts in reductionist in vitro conditions. This approach became, and remains, the dominant model to study axon initiation and growth and has yielded the identification of many molecules that regulate axon formation in vitro ( Dotti et al. 1988). At present, only a few of the genes identified using in vitro approaches have been shown to be required for axon initiation and outgrowth in vivo. In vitro, axon initiation and elongation are largely intrinsic properties of neurons that are established in the absence of relevant extracellular cues. However, the importance of extracellular cues to axon initiation and outgrowth in vivo is emerging as a major theme in neural development ( Barnes and Polleux 2009). In this article, we focus our attention on the extracellular cues and signaling pathways required in vivo for axon initiation and axon extension.  相似文献   

13.
The Eph receptor tyrosine kinases and their ephrin ligands direct axon pathfinding and neuronal cell migration, and mediate many other cell-cell communication events. The Ephs and ephrins both localize to the plasma membrane and, upon cell-cell contact, form extensive signaling assemblies at the contact sites. Recent structural, biochemical and cell-biological studies revealed that these assemblies are generated not only via Eph-ephrin interactions, but also via homotypic interactions between neighboring receptor molecules. In addition, Eph-Eph interactions mediate receptor pre-clustering, which ensures fast and efficient activation once ligands come into contact range. Here we summarize the current knowledge about the homotypic Eph-Eph interactions and discuss how they could modulate the initiation of Eph/ephrin signaling.  相似文献   

14.
The Eph receptor tyrosine kinases and their ephrin ligands direct axon pathfinding and neuronal cell migration, and mediate many other cell-cell communication events. The Ephs and ephrins both localize to the plasma membrane and, upon cell-cell contact, form extensive signaling assemblies at the contact sites. Recent structural, biochemical and cell-biological studies revealed that these assemblies are generated not only via Eph-ephrin interactions, but also via homotypic interactions between neighboring receptor molecules. In addition, Eph-Eph interactions mediate receptor pre-clustering, which ensures fast and efficient activation once ligands come into contact range. Here we summarize the current knowledge about the homotypic Eph-Eph interactions and discuss how they could modulate the initiation of Eph/ephrin signaling.  相似文献   

15.
The excitation of pyramidal cells in the motor cortex, produced by electric fields generated by distant electrodes or by electromagnetic induction, has been modelled. Linear, steady-state models of myelinated axons capture most of the geometrical aspects of neurone activation in electric fields. Some non-linear features can be approximated. Models with a proximal sealed-end and distal infinite axon, or of finite length, are both serviceable. Surface anodal stimulation produces hyperpolarisation of the proximal axon (closest to the anode) and depolarisation in the distal axon. The point of maximum depolarisation can be influenced by the location of the cathode (greater separation of anode and cathode causes more distal depolarisation). Axon bends can produce very localised depolarisation. Cathodal stimulation may be less effective than anodal as a result of anodal block of conduction of action potentials in the distal axon. The latencies of responses to anodal stimulation, recorded in the distal axon, will decrease as the stimulus strength is increased and the point of action potential initiation moves distally node by node. Larger jumps in latency will be produced when the point of action potential initiation moves from one axon bend to another.  相似文献   

16.
The inflammatory response is a critical regulator for the regeneration of axon following nervous system injury. Nuclear factor-kappa B (NF-κB) is characteristically known for its ubiquitous role in the inflammatory response. However, its functional role in adult mammalian axon growth remains elusive. Here, we found that the NF-κB signaling pathway is activated in adult sensory neurons through peripheral axotomy. Furthermore, inhibition of NF-κB in peripheral sensory neurons attenuated their axon growth in vitro and in vivo. Our results also showed that NF-κB modulated axon growth by repressing the phosphorylation of STAT3. Furthermore, activation of STAT3 significantly promoted adult optic nerve regeneration. Taken together, the findings of our study indicated that NF-κB/STAT3 cascade is a critical regulator of intrinsic axon growth capability in the adult nervous system.  相似文献   

17.
We investigate spike initiation and propagation in a model axon that has a slow regenerative conductance as well as the usual Hodgkin-Huxley type sodium and potassium conductances. We study the role of slow conductance in producing repetitive firing, compute the dispersion relation for an axon with an additional slow conductance, and show that under appropriate conditions such an axon can produce a traveling zone of secondary spike initiation. This study illustrates some of the complex dynamics shown by excitable membranes with fast and slow conductances.  相似文献   

18.
It has been shown in vivo that Wnt5a gradients surround the corpus callosum and guide callosal axons after the midline (postcrossing) by Wnt5a-induced repulsion via Ryk receptors. In dissociated cortical cultures we showed that Wnt5a simultaneously promotes axon outgrowth and repulsion by calcium signaling. Here to test the role of Wnt5a/calcium signaling in a complex in vivo environment we used sensorimotor cortical slices containing the developing corpus callosum. Plasmids encoding the cytoplasmic marker DsRed and the genetically encoded calcium indicator GCaMP2 were electroporated into one cortical hemisphere. Postcrossing callosal axons grew 50% faster than pre-crossing axons and higher frequencies of calcium transients in axons and growth cones correlated well with outgrowth. Application of pharmacological inhibitors to the slices showed that signaling pathways involving calcium release through IP3 receptors and calcium entry through TRP channels regulate post-crossing axon outgrowth and guidance. Co-electroporation of Ryk siRNA and DsRed revealed that knock down of the Ryk receptor reduced outgrowth rates of postcrossing but not precrossing axons by 50% and caused axon misrouting. Guidance errors in axons with Ryk knockdown resulted from reduced calcium activity. In the corpus callosum CaMKII inhibition reduced the outgrowth rate of postcrossing (but not precrossing) axons and caused severe guidance errors which resulted from reduced CaMKII-dependent repulsion downstream of Wnt/calcium. We show for the first time that Wnt/Ryk calcium signaling mechanisms regulating axon outgrowth and repulsion in cortical cultures are also essential for the proper growth and guidance of postcrossing callosal axons which involve axon repulsion through CaMKII.  相似文献   

19.
20.
LKB1/STRAD promotes axon initiation during neuronal polarization   总被引:3,自引:0,他引:3  
Shelly M  Cancedda L  Heilshorn S  Sumbre G  Poo MM 《Cell》2007,129(3):565-577
Axon/dendrite differentiation is a critical step in neuronal development. In cultured hippocampal neurons, the accumulation of LKB1 and STRAD, two interacting proteins critical for establishing epithelial polarity, in an undifferentiated neurite correlates with its subsequent axon differentiation. Downregulation of either LKB1 or STRAD by siRNAs prevented axon differentiation, and overexpression of these proteins led to multiple axon formation. Furthermore, interaction of STRAD with LKB1 promoted LKB1 phosphorylation at a PKA site S431 and elevated the LKB1 level, and overexpressing LKB1 with a serine-to-alanine mutation at S431 (LKB1(S431A)) prevented axon differentiation. In developing cortical neurons in vivo, downregulation of LKB1 or overexpression of LKB1(S431A) also abolished axon formation. Finally, local exposure of the undifferentiated neurite to brain-derived neurotrophic factor or dibutyryl-cAMP promoted axon differentiation in a manner that depended on PKA-dependent LKB1 phosphorylation. Thus local LKB1/STRAD accumulation and PKA-dependent LKB1 phosphorylation represents an early signal for axon initiation.  相似文献   

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