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1.
在30只氨基甲酸乙酯麻醉的SD大鼠上记录神经元单位放电,观察短纯音诱发的皮层A Ⅰ区神经元ON-OFF反应的特性及电刺激杏仁外侧核(lateral amygdaloid nucleus,LA)对ON-OFF反应以及调谐曲线的影响.实验证实,A Ⅰ区神经元ON-OFF反应的模式与纯音刺激的强度、频率及作用时程有关;刺激LA可以抑制ON-OFF反应的放电频数,使反应的阈值升高,或使反应放电构型发生变化;此外,刺激LA能使ON-OFF神经元的调谐曲线变窄,Q10数值增大.研究结果不仅表明ON-OFF神经元能对纯音刺激的时程、强度和频率等多种信息进行编码,而且还证明杏仁外侧核可以在皮层水平参与听觉信息的调制,削弱或衰减某些听觉信息,导致整个调谐曲线上移变窄,从而提高A Ⅰ区ON-OFF神经元的频率选择性能,有利于检测外界嘈杂环境中特定的听觉信息.  相似文献   

2.
Yang L  Feng MZ  Lu XY  Zhou SC 《生理学报》1999,51(3):333-337
在23只三碘季铵酚麻痹的新西兰兔上记录细胞外放电,观察短纯音诱发的内膝体神经元onof反应的特性及电刺激边缘系统杏仁外侧核(Lateralamygdaloidnucleus,LAm)对反应的影响。实验发现,内膝体神经元的onof反应与纯音刺激的强度、频率及作用时程有关;刺激LAm,可以抑制onof反应,或是使onof反应放电构型发生变化。onof反应是神经元对声音信号作用时程及声音的起止进行编码的方式之一,LAm对onof反应的影响表明,边缘系统杏仁体的活动可以调控听觉中枢对声音时间信息的编码。  相似文献   

3.
He DF  Chen FJ  Zhou SC 《生理学报》2004,56(3):374-378
在SD大鼠上应用多顺利完成微电极方法,观察微电泳CABA及其受体的拮抗剂或激动剂对杏仁外侧核(LA)抑制皮层AⅠ神经元声反应效应的影响。结果显示,电泳GABA能抑制皮层AⅠ区神经元的电活动,电泳GABAA受体拮抗剂bicuculline(BIC)则能易化其反应;电刺激LA能抑制皮层AⅠ区听神经元声反应,电泳GABA产生类拟于刺激LA的抑制效应;LA对皮层AⅠ区神经的抑制效应能被BIC所翻转,而不能被什氨酸受体拮抗剂strychnine所翻转,电泳GABAB型受体例激动剂baclofen对神经元声反应无影响。上术结果表明,GABA可能是介民LA抑制皮层AⅠ区神经元声反应的最终递质,并且是通过GABAA受体作用的。  相似文献   

4.
在自然环境中,人和动物常在一定的背景噪声下感知信号声刺激,然而,关于低强度的弱背景噪声如何影响听皮层神经元对声刺激频率的编码尚不清楚.本研究以大鼠听皮层神经元的频率反应域为研究对象,测定了阈下背景噪声对79个神经元频率反应域的影响.结果表明,弱背景噪声对大鼠初级听皮层神经元的听反应既有抑制性影响、又有易化性影响.一般来说,抑制性影响使神经元的频率调谐范围和最佳频率反应域缩小,易化性影响使神经元的频率调谐范围和最佳频率反应域增大.对于少数神经元,弱背景噪声并未显著改变其频率调谐范围,但却改变了其最佳频率反应域范围.弱背景噪声对63.64%神经元的特征频率和55.84%神经元的最低阈值无显著影响.神经元频率调谐曲线的尖部比中部更容易受到弱背景噪声的影响.该研究结果有助于我们进一步理解复杂声环境下大脑听皮层对听觉信息的编码机制.  相似文献   

5.
刺激家兔杏仁复合体对听皮层声反应影响的研究   总被引:1,自引:0,他引:1  
杨莉  封茂滋 《生理学报》1993,45(1):75-82
实验在40只三碘季铵酚麻痹的家兔上进行。使用记录诱发电位以及单个神经元放电的方法,观察了刺激杏仁复合体对Woolsey AⅠ AⅡ以及嗅鼻沟后缘听区皮层声反应的影响。实验结果表明,刺激杏仁外侧核和基底核可以对皮层的声反应产生易化或抑制性影响。这种影响的潜伏期一般为10—25ms,时程为20—115ms,在1例动物上也观察到了2ms的最短潜伏期。这些结果表明杏仁核群对于听区皮层的抑制影响主要是经过多突触环路传递的,但也有可能经由单突触途径实现兴奋性影响。本文对杏仁复合体影响的意义作了讨论。  相似文献   

6.
实验在41只氨基甲酸乙酯(25%)麻醉的SD雄性大鼠上进行. 采用细胞外微电极记录的方法, 首先观察了大鼠丘脑腹侧基底核(ventrobasal thalamus nucleus, VB) ON-OFF神经元的触觉反应特性, 并对不同的ON-OFF反应进行了分型, 分析了ON-OFF反应不同型式与刺激参数之间的关系. 在此基础上, 进一步考察了刺激扣带皮层前部(anterior cingulate cortex, ACC)对ON-OFF神经元触觉反应的影响. 实验发现, ACC的刺激对触觉ON-OFF神经元的OFF反应有易化效应, 表现在降低OFF反应的阈值, 从而改变了反应构型, 或者增加原OFF反应的放电频数. 在关于ON-OFF反应神经元感受野的研究中发现, 扣带皮层前部的兴奋可以使ON-OFF反应神经元感受野边缘的ON反应改变为ON-OFF反应, 从而使其对感受野内刺激物运动的时空信息的编码更为明确, 发现了边缘系统能够对触觉上传信息进行调制.  相似文献   

7.
刺激大鼠隔区对外侧缰核痛相关神经元的影响   总被引:2,自引:0,他引:2  
外侧缰核是前脑边缘系统与脑干结构联系的驿站,在这个核内存在对痛刺激呈兴奋反应的神经元(LHPE)。本实验观察了边缘系统中与针刺镇痛有关的隔区与外侧缰核在疼痛方面的机能联系。在清醒的大鼠,刺激隔区明显地抑制 LHPE 的自发放电。单脉冲刺激隔区对LHPE 自发放电的平均抑制时程为2.91 s,重复刺激时则作用更强。刺激隔区还可抑制痛诱发的 LHPE 放电。损毁隔区后,LHPE 自发放电频率可暂时升高,提示隔区对 LHPE 的抑制具有张力性。在外侧缰核内还可记录到一种对伤害性刺激呈抑制反应的神经元(LHPI),刺激隔区对 LHPI 主要呈以兴奋作用,而对这个核内与痛无关神经元的影响较小。本文就以上结果在镇痛中的意义进行了讨论。  相似文献   

8.
实验在23只三碘季胺酚麻痹的新西兰兔上进行。采用记录单个神经元放电的方法,观察了刺激杏仁体对内膝体(medialgeniculatebody,MGB)65个双耳神经元声反应的影响。实验结果表明:杏仁刺激对其中21个神经元的活动产生抑制性影响(占32.3%)。刺激杏仁外侧核或基底核,既能抑制内膝体神经元对单侧耳声刺激的反应,也可抑制该神经元对双耳声刺激的反应。杏仁体所产生的这种抑制性影响的潜伏期最短为2ms,表明是经由杏仁-内膝体单突触联系。一般认为,接受双耳信息的神经元与声源定位有关,因此可以推测杏仁体的活动可以干预动物对声源的定位。  相似文献   

9.
γ-氨基丁酸能抑制可锐化大棕蝠听皮层神经元频率调谐   总被引:8,自引:0,他引:8  
本实验使用了 9只成年健康的大棕蝠 (Eptesicusfuscus)。采用双声刺激和多管电极电泳导入荷包牡丹碱 (bicuculline,Bic)的方法 ,研究了γ 氨基丁酸 (γ aminobutyricacid ,GABA)能抑制在锐化听皮层 (primaryauditorycortex ,AC ,即初级听皮层 )神经元频率调谐中的作用。结果发现 :正常AC神经元的频率调谐曲线表现出单峰开放式、多峰开放式和单峰封闭式 3种类型 ;用双声刺激方法研究证实 ,至AC神经元的抑制性输入能被抑制性声刺激所激活 ,且这种神经抑制有自身的最佳频率 ,根据其对兴奋反应的影响程度和系统地改变抑制性声刺激的强度 ,可在兴奋性频率调谐曲线或兴奋区的高频边或 /和低频边测出抑制性频率调谐曲线或抑制区 ;当这种抑制性输入被抑制性声刺激激活后 ,能降低阈上 10dB声强引起的兴奋反应的发放率 ,抑制效率随抑制声刺激强度的增强而加强 ;电泳GABAa受体拮抗剂荷包牡丹碱Bic后 ,可不同程度地去GABA能抑制 ,扩宽频率调谐曲线 ,使多峰调谐曲线变成单峰 ,封闭型变成开放型。表明GABA能抑制参与构成至AC神经元的抑制性输入 ,在正常情况下这种抑制有助于提高中枢听神经元的信号 /噪声比和频率分析能力 ,并锐化频率调谐。因此本结果提示 ,声音的各参量中所包含的信息从外周传入中枢后 ,随着中枢的升  相似文献   

10.
外侧丘系腹核(ventral nucleus of the lateral lemniscus,VNLL)是中枢听觉通路中连接耳蜗核等低位脑干和中脑下丘(inferior colliculus,IC)的重要核团,其神经元能够对声信号的不同参数进行检测与加工,进而形成多样的声反应特性。VNLL神经元对频率反应的调谐曲线有多种类型,但其锐化程度一般较低,对频率的分析亦不够精确;有关强度调谐的放电率函数分为两种类型:单调型与非单调型,它们对强度的加工和编码往往受到发放模式的影响;不同发放模式的VNLL神经元对时程的编码能力不同,其中起始型具有精确的时间特性,适合编码声刺激的起始时间信息,对蝙蝠的回声定位非常重要。VNLL接受来自低位核团的输入,并发出上行的抑制性投射至IC,在IC神经元的声信息检测过程中发挥重要作用。近来研究认为VNLL快速的抑制性投射延迟IC神经元的首次发放潜伏期,VNLL延迟的抑制性投射介导IC神经元的发放模式,但VNLL抑制性输入如何在IC进行整合,并增强IC神经元检测声信号能力的机制并不清楚,且缺乏VNLL对IC进行实时调控作用的直接证据。这些问题的研究有助于进一步认识上行输入在声信号加工过程中的作用,同时也是本实验室今后的研究重点。本文结合本实验室相关研究,围绕VNLL对听觉信号的加工和上行传导进行综述。  相似文献   

11.
The structures of limbic system have been found to modulate the auditory, visual and pain afferent signals in the related nuclei of thalamus. One of those structures is anterior cingulate cortex (ACC) that influences nocuous response of the pain-sensitive neurons in the ventropos-tero-lateral nucleus of thalamus. Thus, we inferred that ACC would also modulate tactile information at the thalamic level. To test this assumption, single units were recorded extracellularly from thalamic ventrobasal nucleus (VB). Tactile ON-OFF response and the relationship between different patterns of the responses and the parameters of tactile stimulation were examined. Furthermore, the influence of ACC on the tactile ON-OFF response was studied. ACC stimulation was found to produce a facilitatory effect on the OFF-response of ON-OFF neurons. It lowered the threshold of the off-response of that neuron, and therefore changed the response pattern or enhanced the firing rate of the OFF-response of the neuron. The study on rec  相似文献   

12.
The structures of limbic system have been found to modulate the auditory, visual and pain afferent signals in the related nuclei of thalamus. One of those structures is anterior cingulate cortex (ACC) that influences nocuous response of the pain-sensitive neurons in the ventropostero-lateral nucleus of thalamus. Thus, we inferred that ACC would also modulate tactile information at the thalamic level. To test this assumption, single units were recorded extracellularly from thalamic ventrobasal nucleus (VB). Tactile ON-OFF response and the relationship between different patterns of the responses and the parameters of tactile stimulation were examined. Furthermore, the influence of ACC on the tactile ON-OFF response was studied. ACC stimulation was found to produce a facilitatory effect on the OFF-response of ON-OFF neurons. It lowered the threshold of the off-response of that neuron, and therefore changed the response pattern or enhanced the firing rate of the OFF-response of the neuron. The study on receptive fields of ON-OFF neurons showed that the excitation of the ACC could change an ON-response on the verge of a receptive field into an ON-OFF response. The above results suggest that the ACC modulation sharpens the response of a VB neuron to a moving stimulus within its receptive field, indicating that the limbic system can modulate tactile ascending sensory information.  相似文献   

13.
14.
Experiments on cats anesthetized with pentobarbital showed that, depending on the intensity and frequency of acoustic stimulation, neurons in auditory area AI give responses of EPSP, EPSP-spike-IPSP, EPSP-IPSP, and IPSP type. Presentation of a tone of characteristic or near-characteristic frequency and above-threshold intensity, and also electrical stimulation of nerve fibers of the spiral ganglion, innervating the central zone of the receptive field of the neuron, evoke in most cases a response of EPSP-spike-IPSP type. Tone differing considerably in frequency from the characteristic, and electrical stimulation of peripheral zones of the receptive field, evoked responses of EPSP-IPSP or IPSP type. The range of frequencies of tones to which, at threshold intensity, an action potential is generated by the neuron is considerably narrower than the range of frequencies of tones evoking an EPSP and IPSP. Above the intensity of tone threshold IPSP is an invariable component of the response of most neurons in area AI. The appearance of an IPSP in the neuron is accompanied by depression of spontaneous activity and the neuronal response to testing stimulation. Two types of IPSP were distinguished: One type is a component of the EPSP-spike-IPSP response and arises during excitation of auditory receptors located in the central part of the receptive field of the neuron, the other arises during excitation of receptors located at the periphery of the field, and which project to neurons with other characteristic frequencies. The former arise after spike excitation of the neuron, the latter after EPSP or primarily.A. A. Bogomolets Institute of Physiology, Academy of Sciences of the Ukrainian SSR, Kiev. Translated from Neirofiziologiya, Vol. 16, No. 1, pp. 123–131, January–February, 1984.  相似文献   

15.
A model for the coding of sounds in the discharge pattern of single neurons in the auditory periphery is described. The model consists of a non-linear differential equation and a conventional diffusion neuron model. The same model describes 1) the unit interspike interval distribution in response to continuous stimulation, 2) the response to tone bursts, as well as 3) the responses to sinusoidally amplitude-modulated stimuli. The parameters of the model are determined quantitatively for each neuron. The responses of a certain unit can be described by 5 parameters.  相似文献   

16.
Neurons in the central nucleus of the inferior colliculus (IC) receive excitatory and inhibitory inputs from both lower and higher auditory nuclei. Interaction of these two opposing inputs shapes response properties of IC neurons. In this study, we examine the interaction of excitation and inhibition on the responses of two simultaneously recorded IC neurons using a probe and a masker under forward masking paradigm. We specifically study whether a sound that serves as a probe to elicit responses of one neuron might serve as a masker to suppress or facilitate the responses of the other neuron. For each pair of IC neurons, we deliver the probe at the best frequency (BF) of one neuron and the masker at the BF of the other neuron and vice versa. Among 33 pairs of IC neurons recorded, this forward masking produces response suppression in 29 pairs of IC neurons and response facilitation in 4 pairs of IC neurons. The degree of suppression decreases with recording depth, sound level and BF difference between each pair of IC neurons. During bicuculline application, the degree of response suppression decreases in the bicuculline-applied neuron but increases in the paired neuron. Our data indicate that the forward masking of responses of IC neurons observed in this study is mostly mediated through GABAergic inhibition which also shapes the discharge pattern of these neurons. These data suggest that interaction among individual IC neurons improves auditory sensitivity during auditory signal processing.  相似文献   

17.
Characteristic frequencies of neurons in the cat auditory cortex (area AI) whose receptive fields are located in different parts of the basilar membrane of the cochlea were determined in cats anesthetized with pentobarbital. The higher the characteristic frequency of a neuron in area AI, the nearer its receptive field lies to the base of the cochlea. Receptive fields of neurons with a characteristic frequency higher than 4 kHz lie on the first 10 mm of the basilar membrane. Receptive fields of neurons with a characteristic frequency below 4 kHz lie on the remaining 11–12 mm of the membrane. The effect of electrical stimulation of the center of the receptive field of a neuron corresponds to its response to a tone of characteristic frequency. The more the frequency of the acting tone differs from the characteristic frequency, or the further the point of stimulation from the center of the receptive field of the neuron, the less likely is the neuron to respond with an action potential. Neurons with a low characteristic frequency have wider receptive fields than neurons with a high characteristic frequency. Receptive fields of neurons with close characteristic frequencies on the basilar membrane overlap considerably. It was shown by the method of paired stimulation that excitation evoked in neurons in area AI by the action of a tone of a particular frequency is followed by long-lasting inhibition. This inhibition lasts longest and is most effective if a tone of the characteristic frequency is used.  相似文献   

18.
Summary Most of the auditory neurons in the ventral nerve cord ofLocusta migratoria carry information not only from the tympanal organs but also from the subgenual organs (vibration sensors). Six of the eight neuron types studied electrophysiologically respond to at least these two modalities. Artificial sounds (white noise and pure tones varying in frequency and intensity) and sinusoidal vibration (200 Hz with an acceleration of 15.8 cm/s2 or 2000 Hz and 87 cm/s2) were used as stimuli.Complex excitatory and/or inhibitory interactions of the signals from both tympanal organs form the discharge patterns of auditory ventral-cord neurons in response to stimulation with air-borne sound. Normally the input of the ipsilateral sense organ dominates. The response patterns of these same neurons elicited by vibration stimuli are formed differently, as follows: (1) the sensory inputs of all subgenual organs are integrated in the responses of the ventral-cord neurons; in a single neuron they have either excitatory or inhibitory effects, but not both. (2) The more legs vibrated, the larger is the response. (3) The subgenual organs in the middle legs are most effective, those in the hind legs least so. (4) Ipsilateral vibration has more effect than contralateral.The six auditory neurons react to vibration combined with air-borne sound in different ways. The B neuron is the only one inhibited by vibration stimuli. The G neuron has been studied more intensively; because its anatomical arrangement and the location of the endings of the subgenual receptor fibers are known, it could be inferred from effects of transection of the connectives that interneurons are interposed between receptor cells and the G neuron.Part of the program Sonderforschungsbereich 114 (Bionach) Bochum, under the auspices of the Deutsche Forschungsgemeinschaft, with the support of the Slovenic Research Society (RSS)  相似文献   

19.
Activity of single neurons and mass evoked potentials (EP) were recorded from the auditory (area 41) and associative (area 39) cortices in acute experiments on rats anesthetized with urethane, nembutal, or chloralose; pure tones were used as acoustic stimuli. The EP appearing in response to a wide range of sound tones on the surface of the auditory and associative cortices were dissimilar in their latency and shape. For neurons exhibiting stable responses, the frequency-threshold curves (FTC) were plotted.Weak and variable responses of neurons were observed under slight urethane anesthesia. Nembutal anesthesia increased the responsiveness of neurons and the probability of appearing of late components in the responses. Chloralose anesthesia was characterized by extension of frequency range perceived by a neuron, while its sharpness of tuning remained unchanged. Under all types of anesthesia employed, the responses recorded from the associative cortex neurons had longer latencies than those recorded from the auditory cortex neurons. Neurons exhibiting the frequency selectivity were much less numerous in the associative cortex than in the auditory cortex. The former neurons were often characterized by intermittent FTC and they responded to a more extended frequency range. No clear tonotopic organization was found in the associative cortex.Neirofiziologiya/Neurophysiology, Vol. 25, No. 5, pp. 343–349, September–October, 1993.  相似文献   

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