首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 160 毫秒
1.
《生命科学研究》2019,(6):479-486
中枢神经系统由数量庞大、类型多样的神经细胞和神经胶质细胞组成,它调节生物体各种生理活动以及学习、记忆和思维等认知功能。神经细胞和神经胶质细胞由神经干细胞产生,所以对神经干细胞的研究有十分重要的意义。果蝇作为一种经典模式生物,长期被用于神经干细胞增殖、分化、凋亡等方面的研究。本文阐述了果蝇神经干细胞的最新研究进展,包括神经干细胞的类型和起源,参与神经干细胞不对称分裂的关键蛋白质,神经干细胞的静息、激活和最终的分化或凋亡,以及神经元多样性产生的机制,希望对神经生物学的基础研究有所帮助。  相似文献   

2.
随着神经干细胞理论的提出,为神经系统疾病的治疗带来了很大的希望。神经干细胞(NSCs)是指自我更新、且具有分化为神经元、星形胶质细胞、少突胶质细胞等多向分化潜能的细胞。当中枢神经系统受到损伤或退行性变时,内源性神经干细胞开始启动神经修复,但受到数量及微环境的影响,作用非常有限。近年,人们采用各种体外培养方法,可以获得一定数量的外源性神经干细胞,在神经干细胞移植治疗各种神经系统疾病,包括缺血性脑卒中、帕金森病、阿尔茨海默病和脊髓损伤等方面做了很多动物及临床前研究。本文综述神经干细胞移植在神经系统疾病治疗中的应用。  相似文献   

3.
王重 《生命科学》1997,9(4):166-171
干细胞自我更新的不对称分裂能产生一个与本身相同的子细胞和一个分化的子细胞。近来通过对神经母细胞(Neuroblast,一组神经干细胞,负责产生中枢神经系统中的多种神经元和胶质细胞)的研究,揭示了干细胞这种自我更新的不对称分裂能力的机制,令人振奋不已。人们发现了几个重要的特异定位的细胞命运决定因子。并探索了它们在细胞骨架重组、细胞周期的进程、细胞质分裂和有丝分裂定向等过程中的分离机制。这些发现为理解干细胞分裂的共同机制提供了有益的启示。  相似文献   

4.
IL-1β和胎牛血清对大鼠神经干细胞分化的影响   总被引:10,自引:1,他引:9  
在成年大鼠纹状体区分离神经干细胞,使用白介素-1β、神经生长因子、全反维甲酸和不同含量的胎牛血清作为诱导因子,通过免疫荧光化学方法和流式细胞仪检测细胞分化。结果表明胎牛血清有助于神经干细胞向星形胶质细胞和少突胶质细胞分化,IL-1β虽然对神经元数目没有明显影响,但对神经干细胞向多巴胺能神经元的分化却有明显促进作用。神经生长因子和全反维甲酸对神经干细胞向神经元、星形胶质细胞、少突胶质细胞和多巴胺能神经元的分化数量无明显影响。  相似文献   

5.
探讨大鼠巨细胞病毒(rat cytomegalovirus,RCMV)感染大鼠星形胶质细胞后,对神经干细胞分化的影响。原代分离培养新生大鼠星形胶质细胞和胚胎海马神经干细胞,将星形胶质细胞感染RCMV后和神经干细胞在Transwell24孔共培养体系下进行共培养,同时设对照组;用免疫荧光染色等方法检测神经干细胞与感染RCMV的星形胶质细胞共培养后,其分化细胞中神经元微管相关蛋白(microtubule-associated protein 2,MAP2)和星形胶质细胞胶质纤维酸性蛋白(glial fibril—lary acidic protein,GFAP)的表达。结果发现,感染RCMV的星形胶质细胞与神经干细胞共培养时,神经干细胞分化减慢,分化成的神经元和星形胶质细胞比率低于对照组,提示星形胶质细胞感染RCMV后可抑制神经干细胞的分化,可能与RCMV影响星形胶质细胞合成和分泌各种营养因子,干扰了神经干细胞的分化进程有关。  相似文献   

6.
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   

7.
神经干细胞及其对脑缺血损伤的潜在治疗作用   总被引:6,自引:0,他引:6  
新神经元在成年哺乳动物脑的特定区域出现,起源于海马齿状回和室下带的神经干细胞,神经干细胞可以分化成神经元,星形胶质细胞和少突胶质细胞,采用双标技术可以检测新神经元的发生,神经干细胞具有自我更新和多方向分化的潜能,受内在因素和外部环境的调控,证据显示成年人脑海马齿9状回的颗粒细胞产生新神经元,恒河猴的室下带产生新神经元,迁移到新皮质区分化为成熟神经元,人的神经干细胞已从胚胎前脑获得,缺血损伤可以激活齿状回的神经干细胞增殖,激活或移植神经干细胞对缺血损伤的脑组织具有潜在的治疗作用。  相似文献   

8.
神经干细胞是一类具有自我更新和多向分化潜能的细胞。在特定的条件下能够分化成神经元、星形胶质细胞和少突胶质细胞,从而参与神经发生和损伤修复。通常情况下,成体神经干细胞大多数处于静息状态。最新研究表明,在病理状况下,静息态的神经干细胞可以被激活,经增殖、迁移和分化,从而在损伤的部位进行神经元的再生和环路重建。该文主要对静息态和激活态神经干细胞的特征以及静息态神经干细胞激活的细胞和分子机制等方面进行了综述。  相似文献   

9.
Mao L  Wang JQ 《生理学报》2003,55(3):233-244
尽管传统概念长期认为成体哺乳动物中枢神经系统缺乏再生增殖能力,但近年来发现,在成体若干脑区内确实存在具有再生与分化能力的神经干或神经前体细胞。这些干细胞在正常倩况下仅表现较低的再生分化活动。不过,在神经退行性病变中,病灶区内的干细胞可被动员、激活,并以较高的速率分裂分化以及取代坏死的神经元或胶质细胞,达到自身原位修复的作用。许多神经生长和营养因子具有增强或抑制干细胞分裂秋或分化的能力,在神经退行性病变中,病灶区内外成熟或新生细胞即可通过表达这些因子,有效调节干细胞的活动和干细胞主导的修复过程。总之,成体神经干细胞可以积极参与急性或慢性神经组织损伤的修复,通过再生来提供新的神经元以及其他必需的细胞,以促进功能的恢复。  相似文献   

10.
神经干细胞的分离、培养及应用前景   总被引:6,自引:0,他引:6  
胚胎和成年哺乳动物脑内均存在神经干细胞,具有潜在的增值和分化能力。在一定条件下,神经干细胞可向多个方向分化,生成神经元和神经胶质细胞,这为利用神经干细胞进行中枢神经系统退行性病变和损伤的治疗打下基础。  相似文献   

11.
在成体的许多组织中发现了多能干细胞,这些干细胞可以进行自我复制,参与组织的正常修复。神经干细胞在体外能分化为神经元、星形胶质细胞和少突胶质细胞,并具有多向分化潜能。成体神经干细胞和胚胎干细胞都能分化成成体神经系统中的各种神经细胞。神经干细胞具有自我更新能力,因此神经干细胞可以应用于神经损伤或者神经疾病的修复。本文概述了神经干细胞体外分离培养的方法及其生长影响因子。  相似文献   

12.
Lu F  Wong CS 《Radiation research》2005,163(1):63-71
Neural stem cells play an important role in neurogenesis of the adult central nervous system (CNS). Inhibition of neurogenesis has been suggested to be an underlying mechanism of radiation-induced CNS damage. Here we developed an in vivo/ in vitro clonogenic assay to characterize the survival of neural stem cells after exposure to ionizing radiation. Cells were isolated from the rat cervical spinal cord and plated as single cell suspensions in defined medium containing epidermal growth factor and basic fibroblast growth factor. The survival of the proliferating cells was determined by their ability to form neurosphere colonies. The number and size of neurospheres were analyzed quantitatively at day 10, 12, 14 and 16 after plating. Plating cells from 5, 10 and 15 mm of the cervical spinal cord resulted in a linear increase in the number of neurospheres from day 10-16. Compared to the nonirradiated spinal cord, there was a significant decrease in the number and size of neurosphere colonies cultured from a 10-mm length of the rat spinal cord after a single dose of 5 Gy. When dissociated neurospheres derived from a spinal cord that had been irradiated with 5 Gy were allowed to differentiate, the percentages of neurons, oligodendrocytes and astrocytes as determined by immunocytohistochemistry were not altered compared to those from the nonirradiated spinal cord. Secondary neurospheres could be obtained from cells dissociated from primary neurospheres that had been cultured from the irradiated spinal cord. In conclusion, exposure to ionizing radiation reduces the clonogenic survival of neural stem cells cultured from the rat spinal cord. However, neural stem cells retain their pluripotent and self-renewing properties after irradiation. A neurosphere-based assay may provide a quantitative measure of the clonogenic survival of neural stem cells in the adult CNS after irradiation.  相似文献   

13.
14.
神经干细胞(neural stem cells,NSCs)具有如下特点:(1)可以向神经组织分化或源自神经系统的一部分。(2)具备维持和更新的自主能力。(3)可通过细胞分裂增殖。以上特点决定了它的应用价值,被公认为治疗阿尔茨海默氏病,帕金森氏症,脊髓损伤,中风等神经退行性疾病的最佳方案。用干细胞治疗癌症,免疫相关性疾病,和其他疾病被认为是很有创新的新疗法,可能有一天会扩展到修复和补充大脑损伤。胶质细胞源性神经营养因子(glial Cell line一derived neurotrophic factor,GDNF)为TGF一β超家族的一员,具有很强神经保护作用,大量实验研究证实GDNF可促进帕金森病大鼠模型的中脑神经干细胞定向分化为多巴胺能神经元,同时大量实验发现其可促进神经干细胞增殖及分化,为神经干细胞的应用奠定了基础。  相似文献   

15.
Neural stem/progenitor cells in the neurogenic niches of the adult brain are widely assumed to give rise predominantly to neurons, rather than glia. Here, we performed a quantitative analysis of the resident neural progenitors and their progeny in the adult pacemaker nucleus (Pn) of the weakly electric fish Apteronotus leptorhynchus. Approximately 15% of all cells in this brainstem nucleus are radial glia‐like neural stem/progenitor cells. They are distributed uniformly within the tissue and are characterized by the expression of Sox2 and Meis 1/2/3. Approximately 2–3% of them are mitotically active, as indicated by expression of proliferating cell nuclear antigen. Labeling of proliferating cells with a single pulse of BrdU, followed by chases of up to 100 days, revealed that new cells are generated uniformly throughout the nucleus and do not undergo substantial migration. New cells differentiate into S100+ astrocytes and Hu C/D+ small interneurons at a ratio of 4:1, reflecting the proportions of the total glia and neurons in this brain region. The continuous addition of new cells leads to a diffuse growth of the Pn, which doubles in volume and total cell number over the first 2 years following sexual maturation of the fish. However, the number of pacemaker and relay cells, which constitute the oscillatory neural network, remains constant throughout adult life. We hypothesize that the dominance of gliogenesis is an adaptation to the high‐frequency firing of the oscillatory neurons in this nucleus. © 2014 Wiley Periodicals, Inc. Develop Neurobiol 74: 934–952, 2014  相似文献   

16.
Neural stem cells in the mammalian eye: types and regulation   总被引:6,自引:0,他引:6  
Neural stem cells/progenitors that give rise to neurons and glia have been identified in different regions of the brain, including the embryonic retina. Recently, such cells have been reported to be present, in a mitotically quiescent state, in the ciliary epithelium of the adult mammalian eye. The retinal and ciliary epithelium stem cells/progenitors appear to share similar signaling pathways that are emerging as important regulators of stem cells in general. Yet, they are different in certain respects, such as in the potential to self-renew. These two neural stem cell/progenitor populations not only will serve as models for investigating stem cell biology but also will help explain the relationships between embryonic and adult neural stem cells/progenitors.  相似文献   

17.
18.
Neural stem cells generate neurons in the hippocampal dentate gyrus in mammals, including humans, throughout adulthood. Adult hippocampal neurogenesis has been the focus of many studies due to its relevance in processes such as learning and memory and its documented impairment in some neurodegenerative diseases. However, we are still far from having a complete picture of the mechanism regulating this process. Our study focused on the possible role of cyclic nucleotide-gated (CNG) channels. These voltage-independent channels activated by cyclic nucleotides, first described in retinal and olfactory receptors, have been receiving increasing attention for their involvement in several brain functions. Here we show that the rod-type, CNGA1, and olfactory-type, CNGA2, subunits are expressed in hippocampal neural stem cells in culture and in situ in the hippocampal neurogenic niche of adult mice. Pharmacological blockade of CNG channels did not affect cultured neural stem cell proliferation but reduced their differentiation towards the neuronal phenotype. The membrane permeant cGMP analogue, 8-Br-cGMP, enhanced neural stem cell differentiation to neurons and this effect was prevented by CNG channel blockade. In addition, patch-clamp recording from neuron-like differentiating neural stem cells revealed cGMP-activated currents attributable to ion flow through CNG channels. The current work provides novel insights into the role of CNG channels in promoting hippocampal neurogenesis, which may prove to be relevant for stem cell-based treatment of cognitive impairment and brain damage.  相似文献   

19.
Neural stem cells, which differentiate into neurons and glia, are present in the ventricular zone of the embryonal brain. The precise mechanism by which neural stem cells are maintained during embryogenesis remains to be determined. Here, we found that transient misexpression of the basic helix-loop-helix genes Hes1 and Hes5 keeps embryonal telencephalic cells undifferentiated although they have been shown to induce gliogenesis in the retina. These telencephalic cells later differentiate into neurons and astroglia when Hes expression is down-regulated, suggesting that Hes1- and Hes5- expressing cells are maintained as neural stem cells during embryogenesis. Conversely, in the absence of Hes1 and Hes5, neural stem cells are not properly maintained, generating fewer and smaller neurospheres than the wild type. These results indicate that Hes1 and Hes5 play an important role in the maintenance of neural stem cells but not in gliogenesis in the embryonal telencephalon.  相似文献   

20.
Brain diseases, including brain tumors, neurodegenerative disorders, cerebrovascular diseases, and traumatic brain injuries, are among the major disorders influencing human health, currently with no effective therapy. Due to the low regeneration capacity of neurons, insufficient secretion of neurotrophic factors, and the aggravation of ischemia and hypoxia after nerve injury, irreversible loss of functional neurons and nerve tissue damage occurs. This damage is difficult to repair and regenerate the central nervous system after injury. Neural stem cells (NSCs) are pluripotent stem cells that only exist in the central nervous system. They have good self-renewal potential and ability to differentiate into neurons, astrocytes, and oligodendrocytes and improve the cellular microenvironment. NSC transplantation approaches have been made for various neurodegenerative disorders based on their regenerative potential. This review summarizes and discusses the characteristics of NSCs, and the advantages and effects of NSCs in the treatment of brain diseases and limitations of NSC transplantation that need to be addressed for the treatment of brain diseases in the future.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号