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1.
以移动的正弦光栅作为刺激,用玻璃微电极记录以冰冻法毁损皮层17、18、19区和外侧上雪氏回(LS)区后的猫外膝体的单细胞反应,测定了了579个细胞的方位调谐特性.另外还在视觉剥夺猫外膝体测定了344个细胞的方位调谐特性.与正常猫相似,去视皮层猫和视觉剥夺猫外膝体的少数细胞(约占10%)具有非寻常的方位调谐特性,包括具蝴蝶形调谐曲线的方位调谐特性、双调谐(Bimodal)的方位调谐特性和最优方位随刺激空间频率的不同而变化的方位调谐特性。结果表明,外膝体的非寻常的方位调谐特性并非主要由皮层下行投射所致,而是主要与先天遗传因素有关。  相似文献   

2.
以移动的正弦光栅作为刺激,用玻璃微电极记录以冰冻法毁损皮层17、18、19区和外侧上雪氏回区后的猫外膝体的单细胞反应,测定了579个细胞的方位调谐特性,另外还在视觉剥夺猫外膝体测定了344个细胞的方位调谐特性,与正常猫相似,去视以猫和视觉剥夺猫外膝体的少数细胞具有非寻常的方位调谐特性,包括具蝴蝶形调谐曲线的方位调谐特性、双调谐的方位调谐特性和最优方位随刺激空间的不同而变化的方位调谐特性。结果表明外  相似文献   

3.
视觉信号识别训练可改变视觉通路神经元的可塑性, 其神经机制尚不清楚。已有少数研究显示, 动物(猴) 长时间进行特定方位的光栅识别学习后, 视皮层部分神经元对视觉刺激的反应表现出与学习任务相关的敏感性变化。这种敏感性变化是否亦存在于皮层下结构尚无报道。本实验训练两只成年猫分别进行水平和垂直方位的条形静止正弦光栅的识别以获得食物奖赏, 两只猫的行为识别能力逐渐提高, 4 个多月后识别的正确率达85%以上, 用与训练方位垂直的正弦光栅检测发现, 识别正确率明显下降。细胞外记录外膝体背核(Dorsal lat eral geniculate nucleus, dLGN) 神经元对不同方位正弦光栅刺激的反应显示, 与正常猫相比, 训练猫外膝体细胞的最优方位并未向着训练方位发生明显改变, 对于感受野位于中央区15度视角以内的细胞来说, 其方位选择性强度以及在训练方位的发放强度与正常猫无明显差异。以上结果表明, 猫对特定方位的光栅识别学习不改变外膝体神经元的方位敏感性, 其行为上方位识别特异性的提高可能与视皮层细胞的方位编码可塑性有关。  相似文献   

4.
自Hubel和Wiesel关于视皮层研究的开拓性工作以来,视觉方位敏感性一直被认为是视皮层细胞独有的功能。本文综述了80年代以来的最新研究成果,表明视觉方位敏感性起源于视网膜、丘脑外膝体等皮层下结构,而在视皮层方位功能柱形成之前,丘脑外膝体已对具有相似最优方位的外膝体神经元作了初步的编组或预安排。  相似文献   

5.
神经系统中存在大量下行投射,与上行输入一起形成复杂的前馈与反馈回路,调控神经信号的传导和处理,但目前对皮层内反馈投射的功能作用认识还比较薄弱.通过微量注射抑制性神经递质γ-氨基丁酸(γ-aminobutyric acid,GABA),使猫纹外皮层后内侧外上雪氏区(area posteromedial lateral suprasylvian,PMLS)局部可逆性失活,使用胞外记录方法,研究初级视皮层17区神经元反应特性的变化.实验结果显示,PMLS区失活后,17区细胞对运动刺激的反应总体减弱,反应的相对稳定性基本不变,最高发放率/自发之比有所下降.与此同时,细胞的方向选择性指数减小,朝向选择性无显著变化.除少数"双向"反应细胞外,绝大部分细胞的最优方向基本不变.进一步分析发现,细胞对各个方向刺激的反应普遍下降,最优方向上的下降程度最大,是导致方向选择性减弱的主要原因.这些结果表明,PMLS区反馈投射可增强初级视皮层的方向选择性,而对朝向选择性影响有限.这一作用特点体现了PMLS区在皮层中偏重处理运动视觉信息的功能.  相似文献   

6.
周逸峰  寿天德 《生理学报》1996,48(2):195-198
记录和测定了视觉剥夺猫(dark-rearedcats)外膝体344个细胞的方位调谐等感受野特性,多数细胞(82%)具有方位敏感性(Bias>0.1)。最优方位的分布与正常猫类似,偏向于水平方位,但分布特性强于正常猫。与正常猫类似,视觉剥夺猫外膝体细胞的最优方位与该细胞感受野在视网膜上的位置有关,偏向平行于视网膜中心区与感受野中心的连线(向心线);外膝体内位置相邻近的细胞具有相近的最优方位,亦呈现初步有序排列。结果表明:外膝体细胞最优方位的分布特性与后天视觉经验无关而可能来源于遗传因素。  相似文献   

7.
视觉系统皮层下细胞的方位和方向敏感性   总被引:4,自引:0,他引:4  
寿天德  周逸峰 《生理学报》1996,48(2):105-112
视觉方位、方向选择性曾被认为是高等哺乳动物视皮层细胞的特有功能。近年来大量的实验结果表明,视皮层下的外膝体神经元和视网膜神经节细胞都具一定程度的方位和方向敏感性,这些性质是遗传决定的,不受后天环境的影响。在外膝体内,已为视皮层细胞高度的方位、方向选择性和功能柱的形成做出了初步的分类与编组,提供了前级安排。这种皮层下的方位、方向敏感性细胞在发育过程中传递和加工了环境视觉信息,促进了视皮层更强的方位、方向选择性机制和方位功能柱的形成。外膝体在视觉信息平行处理通道的形成上起着分类集聚的重要作用。  相似文献   

8.
用适当剂量的麻醉剂和兴奋剂(如氯醛醣和胺基脲)混合处理的貓,短声和闪光均能在大脑皮层引起分布广泛的电反应。我们用运动区的电反应作为指标,分析了产生此反应的神经路径基础。短声在运动区激起的电反应包括三个正相的小波,潜伏期分别为8—9,18—20及30—35毫秒。除去两侧皮层听区对各波无甚影响,毁两侧内膝体则各波均消失。刺激内膝体在运动区引起的电反应舆短声引起的一样,只是潜伏期略短。毁丘脑(氵弥)散投射系统的VA,VM一带,第二及第三波即告消失。至於第一波,吸去皮层运动区後在白质上仍可引到,是皮层下的电活动波及到皮层的结果。在闪光所引起的电反应裹,也可分辨得出三个正相的小波,其潜伏期分别为29—33,38—42及48—52毫秒,但一般各波间分界不明。除去两侧皮层视区,反应即不易出现,且潜伏期增长,但此时刺激外膝体仍可恒定地引起和在视区存在时闪光所引起的同样的反应(仅潜伏期缩短)。毁外膝体,各波均消失。毁VA,VM一带,第二第三波大为减小,第一波不受影响。第一波亦同样为皮层下电流扩布的结果。概言之,我们所形容声和光在皮层运动区引起的电反应,是内膝体和外膝体兴奋丘脑(氵弥)散投射系统的结果,但皮层听区或视区可能对皮层下的传导发生易化作用。  相似文献   

9.
比较青年猫和老年猫初级视皮层(primary visual cortex)各层神经元密度,及S100蛋白在初级视皮层各层中的表达与分布,探讨其表达与分布的年龄相关性变化及意义.Nissl法显示初级视皮层各层神经元,免疫组织化学方法(SABC法)示S100蛋白免疫阳性(S100-IR)细胞.光镜下观察、拍照,计数初级视皮层各层中神经元密度和S100-IR细胞密度.S100-IR细胞在初级视皮层中分布呈现区域性特点,白质较灰质密集.与青年猫相比,老年猫初级视皮层神经元密度有下降,老年猫初级视皮层各层S100-IR细胞密度均有不同程度的显著增加(尤其是Ⅱ、Ⅲ、Ⅳ层),胞体较大,阳性较强.动物衰老过程中,初级视皮层存在着明显的星形胶质细胞反应性增生,这种增生可能对灰质层中神经元的丢失有补偿作用,并对维持老年个体初级视皮层形态结构和延缓老年动物初级视皮层功能衰退具有积极意义.  相似文献   

10.
猫视皮层17,18区神经元对错觉轮廓的反应   总被引:1,自引:0,他引:1  
研究了轻度麻醉下猫视皮层17, 18区细胞对错觉轮廓刺激的反应特性, 比较了对错觉轮廓有明显反应的细胞对真实轮廓和错觉轮廓刺激的感受野特性的异同. 共记录了猫视皮层17, 18区200个方位/方向选择性细胞, 其中有42%的细胞是错觉轮廓反应细胞. 将这些细胞对真实轮廓和错觉轮廓的反应进行比较, 尽管错觉轮廓反应细胞对移动光棒和错觉轮廓光棒的方位/方向调制曲线十分相似, 但对移动错觉棒和移动光棒的反应模式(潜伏期和反应时程)不同. 对由光栅组成的错觉轮廓而言, 细胞的反应大小与组成光栅的相位无关, 并且细胞对组成错觉轮廓光栅的最优空间频率比对普通移动光栅的最优空间频率要高得多, 说明细胞确实是对轮廓本身反应, 而不是对组成轮廓的光栅的末端反应. 某些速度调制类型的细胞对移动错觉棒反应的最优速度比对移动光棒的最优速度要低得多. 进一步验证了猫视皮层17, 18区部分细胞能对错觉轮廓反应, 并且观察到这些细胞对错觉轮廓和真实轮廓有不同的感受野反应特性, 提示视觉系统对两种刺激图形的检测机制可能存在着差异.  相似文献   

11.
We review results on the in vivo properties of neurons in the dorsal lateral geniculate nucleus (dLGN) that receives its afferent input from the retina and projects to the visual cortex. In addition, the dLGN receives input from the brain stem and from a rather strong corticothalamic back-projection, which originates in layer 6 of the visual cortex. We compare the behaviour of dLGN cells during spontaneous changes of the frequency contents of the electroencephalograph (EEG) (which are mainly related to a changing brain stem influence), with those that are obtained when experimentally silencing the corticothalamic feedback. The spatial and temporal response properties of dLGN cells are compared during these two conditions, and we report that the neurons behave similarly during a synchronized EEG state and during inactive corticothalamic feedback. In both situations, dLGN cells are rather phasic and their remaining tonic activity is temporally dispersed, indicating a hyperpolarizing effect. By means of a novel method, we were able to chronically eliminate a large proportion of the corticothalamic projection neurons from the otherwise intact cortex. In this condition, we found that cortical cells also lose their EEG specific response differences but, in this instance, probably due to a facilitatory (depolarizing) plasticity reaction of the remaining network.  相似文献   

12.
双眼和单眼视觉剥夺猫外膝体细胞的图形适应   总被引:1,自引:0,他引:1  
Wang W  Shou TD 《生理学报》2000,52(3):230-234
为测定丘脑外膝体细胞的图形适应是否依赖于早期视觉经验,在细胞外记录了双眼和单眼缝合的猫外膝体中断细胞对手工时间运动光栅刺激的反应。在双眼剥夺猫,占68%的记录到的细胞在30s内反应下降到稳定值,其平均反应值下降33%,适应程度较正常猫显著。在单眼剥夺猫,记录到的剥夺眼驱动的和非剥夺眼驱动的细胞中,分别有占53%和44%的细胞显示图形适应,两者差别不大。研究表明,早期视剥夺能增强或保持图形适应,提示  相似文献   

13.
The dorsal lateral geniculate nucleus (dLGN) serves as the primary conduit of retinal information to visual cortex. In addition to retinal input, dLGN receives a large feedback projection from layer VI of visual cortex. Such input modulates thalamic signal transmission in different ways that range from gain control to synchronizing network activity in a stimulus-specific manner. However, the mechanisms underlying such modulation have been difficult to study, in part because of the complex circuitry and diverse cell types this pathway innervates. To address this and overcome some of the technical limitations inherent in studying the corticothalamic (CT) pathway, we adopted a slice preparation in which we were able to stimulate CT terminal arbors in the visual thalamus of the mouse with blue light by using an adeno-associated virus to express the light-gated ion channel, ChIEF, in layer VI neurons. To examine the postsynaptic responses evoked by repetitive CT stimulation, we recorded from identified relay cells in dLGN, as well as GFP expressing GABAergic neurons in the thalamic reticular nucleus (TRN) and intrinsic interneurons of dLGN. Relay neurons exhibited large glutamatergic responses that continued to increase in amplitude with each successive stimulus pulse. While excitatory responses were apparent at postnatal day 10, the strong facilitation noted in adult was not observed until postnatal day 21. GABAergic neurons in TRN exhibited large initial excitatory responses that quickly plateaued during repetitive stimulation, indicating that the degree of facilitation was much larger for relay cells than for TRN neurons. The responses of intrinsic interneurons were smaller and took the form of a slow depolarization. These differences in the pattern of excitation for different thalamic cell types should help provide a framework for understanding how CT feedback alters the activity of visual thalamic circuitry during sensory processing as well as different behavioral or pathophysiological states.  相似文献   

14.
The transient visual response of feline dorsal lateral geniculate nucleus (dLGN) cells was studied under control conditions and during the application of repetitive transcranial magnetic stimulation at 1 Hz (rTMS@1Hz) on the primary visual cortex (V1). The results show that rTMS@1Hz modulates the firing mode of Y cells, inducing an increase in burst spikes and a decrease in tonic firing. On the other hand, rTMS@1Hz modifies the spatiotemporal characteristics of receptive fields of X cells, inducing a delay and a decrease of the peak response, and a change of the surround/center amplitude ratio of RF profiles. These results indicate that V1 controls the activity of the visual thalamus in a different way in the X and Y pathways, and that this feedback control is consistent with functional roles associated with each cell type.  相似文献   

15.
The mouse dorsal lateral geniculate nucleus (dLGN) is an intermediary between retina and primary visual cortex (V1). Recent investigations are beginning to reveal regional complexity in mouse dLGN. Using local injections of retrograde tracers into V1 of adult and neonatal mice, we examined the developing organisation of geniculate projection columns: the population of dLGN-V1 projection neurons that converge in cortex. Serial sectioning of the dLGN enabled the distribution of labelled projection neurons to be reconstructed and collated within a common standardised space. This enabled us to determine: the organisation of cells within the dLGN-V1 projection columns; their internal organisation (topology); and their order relative to V1 (topography). Here, we report parameters of projection columns that are highly variable in young animals and refined in the adult, exhibiting profiles consistent with shell and core zones of the dLGN. Additionally, such profiles are disrupted in adult animals with reduced correlated spontaneous activity during development. Assessing the variability between groups with partial least squares regression suggests that 4–6 cryptic lamina may exist along the length of the projection column. Our findings further spotlight the diversity of the mouse dLGN–an increasingly important model system for understanding the pre-cortical organisation and processing of visual information. Furthermore, our approach of using standardised spaces and pooling information across many animals will enhance future functional studies of the dLGN.  相似文献   

16.
Removal of visual cortex in the rat axotomizes projection neurons in the dorsal lateral geniculate nucleus (dLGN), leading to cytological and structural changes and apoptosis. Biotinylated dextran amine was injected into the visual cortex to label dLGN projection neurons retrogradely prior to removing the cortex in order to quantify the changes in the dendritic morphology of these neurons that precede cell death. At 12 hours after axotomy we observed a loss of appendages and the formation of varicosities in the dendrites of projection neurons. During the next 7 days, the total number of dendrites and the cross-sectional areas of the dendritic arbors of projection neurons declined to about 40% and 20% of normal, respectively. The response of dLGN projection neurons to axotomy was asynchronous, but the sequence of structural changes in individual neurons was similar; namely, disruption of dendrites began within hours followed by cell soma atrophy and nuclear condensation that commenced after the loss of secondary dendrites had occurred. However, a single administration of fibroblast growth factor-2 (FGF2), which mitigates injury-induced neuronal cell death in the dLGN when given at the time of axotomy, markedly reduced the dendritic degeneration of projection neurons. At 3 and 7 days after axotomy the number of surviving dendrites of dLGN projection neurons in FGF-2 treated rats was approximately 50% greater than in untreated rats, and the cross-sectional areas of dendritic arbors were approximately 60% and 50% larger. Caspase-3 activity in axotomized dLGN projection neurons was determined by immunostaining for fractin (fractin-IR), an actin cleavage product produced exclusively by activated caspase-3. Fractin-IR was seen in some dLGN projection neurons at 36 hours survival, and it increased slightly by 3 days. A marked increase in reactivity was seen by 7 days, with the entire dLGN filled with dense fractin-IR in neuronal cell somas and dendrites.  相似文献   

17.
The establishment of connectivity between specific thalamic nuclei and cortical areas involves a dynamic interplay between the guidance of thalamocortical axons and the elaboration of cortical areas in response to appropriate innervation. We show here that Sema6A mutants provide a unique model to test current ideas on the interactions between subcortical and cortical guidance mechanisms and cortical regionalization. In these mutants, axons from the dorsal lateral geniculate nucleus (dLGN) are misrouted in the ventral telencephalon. This leads to invasion of presumptive visual cortex by somatosensory thalamic axons at embryonic stages. Remarkably, the misrouted dLGN axons are able to find their way to the visual cortex via alternate routes at postnatal stages and reestablish a normal pattern of thalamocortical connectivity. These findings emphasize the importance and specificity of cortical cues in establishing thalamocortical connectivity and the spectacular capacity of the early postnatal cortex for remapping initial sensory representations.  相似文献   

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