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1.
在中枢神经系统 ,成年后新神经元发生主要见于两个脑区 ,即室管下区 (subventricularzone)与海马的颗粒下区 (subgranularzone)。正常情况下 ,除上述脑区外的其它脑区能够产生神经胶质细胞 ,但是不能产生神经元。为了研究神经元和 /或神经胶质细胞对来源于成年的神经干细胞分化的影响 ,Song等分离了成年大鼠海马的神经元和星形胶质细胞 ,将其分别或联合与来自成年的、依赖FGF 2的神经干细胞共培养 ,意外地发现神经元促进神经干细胞分化为少突胶质细胞 ,而星形胶质细胞则促进神经干细胞分化为神经…  相似文献   

2.
室管膜下区(subventricular zone,SVZ)存在着神经干细胞(nueral stem cells,NSCs),是成年哺乳动物脑内重要的神经发生区域。神经发生过程极为复杂,包括一系列的生物学事件。在病理状态下,SVZ区的细胞增殖,新生的神经细胞迁移到病灶处,取代或修复受损的细胞,起到保护脑组织的作用。该文就SVZ区的神经干细胞、神经发生过程及病理状态下神经发生的相关研究做一综述。  相似文献   

3.
神经干细胞是一类具有自我更新能力和多向分化潜能的干细胞。在特定条件下,神经干细胞可分化为神经元、少突胶质细胞和星形胶质细胞从而参与神经功能的修复过程,该过程称为神经发生。一直以来,人们认为神经发生主要发生在哺乳动物胚胎时期,而成体是不存在神经发生的。然而近年的研究表明,成体神经发生在哺乳动物中枢神经系统中是终生存在的,且通过多种信号通路来调控。现就成年哺乳动物神经发生的研究进展展开论述。  相似文献   

4.
在整个哺乳动物的生命周期,海马齿状回的颗粒下区及侧脑室的室下区都会不断产生新的神经元.借助新的研究方法,对脊髓内源性神经干细胞(室管膜细胞)的特性及它们在在成年脊髓发育方面作用的研究已取得了重大进展.最近的研究揭示了重要的外在和内在的分子机制,它们支配着成人脊髓神经发生的顺序步骤.这篇综述主要讨论内源性神经发生的概念;脊髓损伤后室管膜细胞的反应;室管膜细胞的异质性和标志物,调节室管膜细胞的因子,及影响室管膜细胞激活或分化小生境.  相似文献   

5.
陈慧灵  陈晓萍 《遗传》2013,35(3):281-286
哺乳动物的神经发育过程极其复杂, 其形态结构和机能变化受到严格的调控。细胞极性是哺乳动物神经发生中最基本的特征之一, 在其调控因素中, Par极性复合体是研究最多的蛋白质。神经发育过程中Par蛋白的分布与量呈现动态变化, 影响细胞连接建立、细胞极性形成、神经突触发生及神经元迁移, 也影响到神经前体细胞的命运。文章主要从胚胎新皮层神经前体细胞及体外培养神经元角度, 总结了近年在Par极性蛋白的细胞内分布、机能及作用机制方面的研究进展。  相似文献   

6.
成年哺乳动物大脑中的脑室室下区(subventricular zone, SVZ)和海马齿状回颗粒层下区(subgranular zone, SGZ)存在持续的神经发生。成年内源性神经发生不仅在正常脑功能中发挥重要作用,同时也在脑损伤或脑疾病的修复治疗中具有重要意义。本文通过综述成年内源性神经发生过程及其在创伤性脑损伤(traumatic brain injury, TBI)和缺血性脑卒中修复中的应用,讨论激活成年内源性神经发生修复脑损伤的策略及其促进脑损伤后功能恢复的意义。  相似文献   

7.
神经再生(Neurogenesis)是指具有自我更新能力的神经干细胞(Neural Stem Cells,NSCs)经过迁移、增殖,最终分化为具有特定功能的神经细胞的过程。以往人们认为,神经再生只存在于胚胎期或外周神经系统,近几年发现,在成年动物的中枢神经系统也存在神经再生,研究发现侧脑室室管膜下区(SVZ)是神经再生发生的主要区域之一,产生新的神经元和神经胶质细胞通过RMS通路运输至嗅球进而对嗅觉损伤部分进行修复。本文主要从成年神经再生的发展、神经再生与疾病的关系、神经再生的过程等方面进行综述。  相似文献   

8.
近年来,关于胶质细胞有许多令人惊奇的发现。其中最令人感兴趣的是部分胶质细胞在体内外都表现出神经千细胞/祖细胞的特性,在适当条件下能分化成神经元、星形胶质细胞和/或少突胶质细胞。不仅存在于非哺乳类脊椎动物整个生命周期的放射胶质显示出这一特性,存在于成年哺乳动物脑室下区和颗粒下层的星形胶质细胞也是如此。在体外培养中,部分胶质细胞具有形成多潜能神经球的能力。在体内,胶质细胞充当前驱细胞时的命运受到细胞间相互作用、细胞因子、血脉系统、胞外基质以及基膜等所构建的微环境的影响。胶质细胞的这些特性将对神经修复产生深远影响。  相似文献   

9.
Wang YQ  Sun FY 《生理科学进展》2007,38(3):202-207
血管内皮生长因子(vascular endothelial growth factor,VEGF)是一种重要的血管发育调节因子,最早发现于肿瘤细胞。上世纪90年代,人们发现VEGF在神经细胞上也有广泛表达,并具有神经细胞保护作用。此外,VEGF显著促进成年哺乳动物结构性神经元再生区(constitutive neurogenic regions)和非神经元再生区(non-neurogenic regions)的神经元再生/更新(neurogenesis/regenera-tion),显示了VEGF在神经损伤性及退行性疾病治疗中的潜在意义。本文着重讨论VEGF在脑缺血损伤中的神经保护(neuroprotection)和神经修复(neural repair)及其细胞和分子机制研究进展。  相似文献   

10.
汪作新 《动物学报》2003,49(2):151-162
哺乳动物成体神经元的再生现象是最近三十年才被科学家们所认识并逐渐接受的。随着科研方法与实验技术的发展,在成年哺乳动物的一些特定脑区,比如海马齿状回(Dentate gyrus of the hippocampus)、室下区(Subventricular zone)和杏仁核(Amygdala)中发现了新生细胞。研究表明,内外环境因子可影响成体神经元的再生。具体表现在环境多样性、自主活动、有益社会交往、短日光照、化学刺激以及诸如5—羟色胺和脑源性神经营养因子等神经递质水平的增加,都会促进新生细胞的增生或存活。而负面社会交往及应激激素皮质酮对成体神经元的再生有抑制和降低作用。研究还表明,根据种和性别的差异,类脂醇激素对成体神经元的再生起到促进或抑制作用。最新的实验证实新生细胞在成体中具有显著功能[动物学报49(2):151—162,2003]。  相似文献   

11.
12.
The Role of Notch Signaling in Adult Neurogenesis   总被引:1,自引:0,他引:1  
Neurogenesis occurs throughout adulthood in the mammalian brain. Newly born neurons are incorporated into the functional networks of both the olfactory bulb and the hippocampal dentate gyrus, and there is growing evidence that adult neurogenesis is important for various brain functions. Continuous neurogenesis is achieved by the coordinated proliferation and differentiation of adult neural stem cells. In this review, we discuss the recent findings concerning the roles of Notch signaling in adult neural stem cells.  相似文献   

13.
Neurogenesis in the adult mammalian hippocampus may contribute to repairing the brain after injury. The signals that regulate neurogenesis in the dentate gyrus following ischemic stroke insult are not well known. We have previously reported that inducible nitric oxide synthase (iNOS) expression is necessary for ischemia-stimulated neurogenesis in the adult dentate gyrus. Here, we show that mice subjected to 90 min of middle cerebral artery occlusion (MCAO) significantly increased the number of new neurons and up-regulated iNOS expression in the dentate gyrus. Blockade of the L-type voltage-gated Ca(2+) channel (L-VGCC) prevented neurogenesis in the dentate gyrus and subventricular zone (SVZ), and down-regulated iNOS expression in the dentate gyrus after cerebral ischemia. This study suggests that Ca(2+) influx through L-VGCC is involved in ischemia-induced neurogenesis by up-regulating iNOS expression.  相似文献   

14.
Neurogenesis in the adult dentate gyrus (DG) of the hippocampus occurs constitutively throughout postnatal life, and the rate of neurogenesis within the DG can be altered under various physiological and pathophysiological conditions. Adult neurogenesis includes the process in which the division of a precursor cell takes place and the multi-step process (proliferation, differentiation, migration, targeting, and synaptic integration) that ends with the formation of a postmitotic functionally integrated new neuron. During specific time-frames of adult neurogenesis, various markers are expressed that correlate with the differentiation steps along the pathway from early progenitor cells to newly generated postmitotic neurons within the DG. Markers that are currently widely used for the investigation of adult hippocampal neurogenesis are: glial fibrillary acidic protein, nestin, Pax6, NeuroD, PSA-NCAM, doublecortin, TUC-4, Tuj-1, and calretinin. The discovery and development of specific markers that allow the time-course and fate of neurons to be followed during adult neurogenesis in a detailed and precise fashion are not only helpful for gaining further insights into the genesis of new neurons in the hippocampus, but also might be applicable to the development of strategies for therapeutic interventions. This study was supported by the DFG (SFB 636/A5).  相似文献   

15.
Neurogenesis occurs in the cerebral cortex of adult rats after focal cerebral ischemia. Whether or not the newborn neurons could synthesize neurotransmitters is unknown. To elucidate such a possibility, a photothrombotic ring stroke model with spontaneous reperfusion was induced in adult male Wistar rats. The DNA duplication marker BrdU was repeatedly injected, and the rats were sacrificed at various times after stroke. To detect BrdU nuclear incorporation and various neurotransmitters, brain sections were processed for single/double immunocytochemistry and single/double/triple immunofluorescence. Stereological cell counting was performed to assess the final cell populations. At 48 h, 5 days, 7 days, 30 days, 60 days and 90 days after stroke, numerous cells were BrdU-immunolabeled in the penumbral cortex. Some of these were doubly immunopositive to the cholinergic neuron-specific marker ChAT or GABAergic neuron-specific marker GAD. As analyzed by 3-D confocal microscopy, the neurotransmitters acetylcholine and GABA were colocalized with BrdU in the same cortical cells. In addition, GABA was colocalized with the neuron-specific marker Neu N in the BrdU triple-immunolabeled cortical cells. This study suggests that the newborn neurons are capable of synthesizing the neurotransmitters acetylcholine and GABA in the penumbral cortex, which is one of the fundamental requisites for these neurons to function in the poststroke recovery.  相似文献   

16.
Neurogenesis, the generation of new neurons from neural precursor cells (NPCs), is a multi-step process that includes the proliferation of NPCs, fate determination, migration, and neuronal maturation. Neurogenesis is regulated by several extrinsic factors,such as enriched environment, physical exercise, hormones and stress, many of which also induce the expression of neurotrophins.In this review, we summarize studies on the role of neurotrophins in neurogenesis during development and in adults.We discuss the functional significance of neurogenesis in learning and memory, and how neurotrophins regulate this process.In this context, we describe recent experiments linking adult neurogenesis to long-term synaptic plasticity in the hippocampal dentate gyrus. Further study of the relationship between neurotrophins, adult neurogenesis and dentate synaptic plasticity might provide new insights into the mechanisms by which gene-environment interactions control cognition and brain plasticity.  相似文献   

17.
哺乳动物进化过程中,大脑皮层逐渐增大增厚和脑容量增大,从而构成了脑神经环路复杂性的细胞生物学基础.皮层出现皱褶是非人类灵长类演化的重要特征.成体人脑大约由近860多亿个神经细胞组成,其中,在人脑神经发生高峰,每小时有近400多万个兴奋性神经细胞产生.如此高速的神经生成过程需要精确的细胞与分子调控机制.本文主要讨论调控大脑皮层增大增厚的细胞与分子机制和相关的脑发育疾病.  相似文献   

18.
Peng J  Andersen JK 《Aging cell》2011,10(2):255-262
Neurogenesis, the production of new neurons from less differentiated precursor cells, normally occurs in adult brains in the subventricular zone (SVZ) of the lateral ventricles and the subgranular zone of the hippocampal dentate gyrus. Neurogenesis declines with aging. In previous studies, neurogenesis was stimulated by 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine hydrochloride (MPTP) in young animals. In this study, we examined the effect of acute MPTP administration and mutant α-synuclein A53T on neurogenesis and migration of newborn neurons in the aged (23-month) vs. young (2-month) rodent brain. Cell proliferation and neurogenesis were assessed via bromodeoxyuridine labeling and immunostaining for cell type-specific markers. In the aged brain, neural precursor cells in the rostral SVZ retained the capacity for proliferation and migration in response to MPTP-induced Parkinsonism, although the response is less robust than in younger animals. Furthermore, in transgenic mice that overexpress mutant α-synuclein (A53T), brains examined day 21 after MPTP administration showed markedly decreased olfactory bulb and substantia nigra neurogenesis. Our data suggest that in addition to aging effects associated with decline in the number of newly generated cells, mutant α-synuclein reduces MPTP-induced neurogenesis. This could provide a novel therapeutic target for chronic brain repair in this condition.  相似文献   

19.
During development of the mammalian cerebral cortex neural stem cells (NSC) first generate neurons and subsequently produce glial cells. The mechanism(s) responsible for this developmental shift from neurogenesis to gliogenesis is unknown. Brain-derived neurotrophic factor (BDNF) is believed to play important roles in the development of the mammalian cerebral cortex; it enhances neurogenesis and promotes the differentiation and survival of newly generated neurons. Here, we provide evidence that a truncated form of the BDNF receptor tyrosine kinase B (trkB-t) plays a pivotal role in directing embryonic mouse cortical NSC to a glial cell fate. Expression of trkB-t promotes differentiation of NSC toward astrocytes while inhibiting neurogenesis both in cell culture and in vivo. The mechanism by which trkB-t induces astrocyte genesis is not simply the result of inhibition of full-length receptor with intrinsic tyrosine kinase activity signaling. Instead, binding of BDNF to trkB-t activates a signaling pathway (involving a G-protein and protein kinase C) that induced NSC to become glial progenitors and astrocytes. Thus, the increased expression of trkB-t in the embryonic cerebral cortex that occurs coincident with astrocyte production plays a pivotal role in the developmental transition from neurogenesis to gliogenesis. Our findings suggest a mechanism by which a single factor (BDNF) regulates the production of the two major cell types in the mammalian cerebral cortex.  相似文献   

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