共查询到20条相似文献,搜索用时 93 毫秒
1.
胎鼠脊髓源性神经干细胞分离培养与鉴定 总被引:1,自引:1,他引:1
目的:研究胎鼠的脊髓源性神经干细胞的分离培养方法并观察其增殖和分化能力。方法:利用显微操作技术分离获得胎鼠脊髓组织、无血清培养技术和酶消化法结合机械法传代培养神经干细胞、免疫细胞化学方法鉴定神经干细胞和分化情况。结果:建立了胎鼠脊髓源性神经干细胞的分离、培养和鉴定的方法,观察到了脊髓源性神经干细胞具有较强的增殖能力,在添加有5ng/mlEGF和5ng/mlbFGF的无血清培养液中可贴壁分化为神经元、少突细胞和星形胶质细胞。结论:在体外培养条件下分离培养的胎鼠脊髓源性神经干细胞具有干细胞的特性即较强的增殖能力和多向分化潜能。 相似文献
2.
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
3.
人胎儿脊髓神经干细胞的分离培养 总被引:6,自引:0,他引:6
本文旨在探讨是否能够从低温保存的流产儿分离培养出脊髓神经干细胞。将14周流产儿在4℃下保存,2、6和12h后取脊髓,将颈段、胸段、腰骶段分别进行无血清培养,并用胎牛血清诱导分化。用克隆培养的方法验证培养细胞的干细胞特性;用免疫荧光细胞化学的方法检测神经干细胞标志nestin及干细胞诱导分化后神经元标志MAP2、星形胶质细胞标志GFAP、胆碱能标志ChAT,并比较不同时间点以及不同部位分离的神经T细胞的差异。在各个时间点,从颈段、胸段、腰骶段脊髓均分离培养出具有连续增殖能力的神经球,其中腰骶段分离出的神经球数量最多,12h组各段分离出的神经球较2、6h组显著减少。各段培养中的神经球均为nestin阳性,诱导分化后均能够产生GFAP阳性星形胶质细胞、MAP2阳性神经元以及ChAT阳性胆碱能神经元。各段培养中的神经干细胞的克隆形成能力相似。以上结果表明,从低温保存的人胎儿能够分离培养出脊髓神经干细胞,这为基础研究以及未来治疗应用提供了新的细胞来源。 相似文献
4.
汪亦男丛义梅张鑫淼胡魁刘忠华 《现代生物医学进展》2012,12(1):186-188
神经干细胞用于神经学临床修复和基础理论研究的前提是首先完成神经干细胞的体外分离、培养、纯化并大量扩增。鼠、人、猪中都已成功分离出神经干细胞并已尝试用于动物神经系统损伤等疾病的治疗,尽管在鼠和人上的研究很多,相对于鼠神经干细胞在神经学临床应用上的局限和人神经干细胞在材料来源上的不便,猪作为神经干细胞临床应用和基础研究的模式动物有很大的潜力。但关于猪神经干细胞体外分离培养的研究非常少,本文对这方面的研究进展做一综述。 相似文献
5.
新生大鼠脊髓神经干细胞的分离培养及鉴定 总被引:6,自引:0,他引:6
目的 从新生大鼠的脊髓中分离培养神经干细胞并观察其增殖和分化能力。方法 采用细胞培养技术结合间接免疫荧光细胞化学法。结果 分离的细胞生长旺盛 ,单克隆化生成的细胞团 ,BrdU掺入呈强阳性。分离培养获得的细胞团呈Nestin强阳性 ,至今已在体外连续传代 8个月。培养的细胞团经 1%小牛血清诱导可分化为神经元和星形胶质细胞。结论 成功分离培养了新生大鼠脊髓神经干细胞 相似文献
6.
7.
兔胚胎神经干细胞的分离、培养和鉴别 总被引:2,自引:0,他引:2
目的:研究兔胎脑神经干细胞体外生长特性,为探讨神经干细胞的临床应用及神经系统的发育奠定基础。方法:采用含碱性成纤维细胞生长因子(bFGF)和表皮细胞生长因子(EGF)的N2无血清培养技术,取18天龄兔胚胎脑组织,分离神经干细胞,并观察分离的细胞体外培养、增殖、分化潜能,免疫组化鉴定。结果:从18天龄兔胎脑皮质和纹状体中成功分离出具有自我更新和多分化潜能的神经干细胞,在无血清培养时细胞呈半贴壁状态生长,形成神经球,可传代。细胞呈Nestin免疫反应阳性;在含血清培养基中培养时则分化,分化后的细胞表达神经元细胞、星形胶质细胞和少突胶质细胞的特异性抗原。结论:来自兔胎脑神经干细胞能在体外培养、增殖并保持传代能力。无血清N2EGF、bFGF培养基有利于兔胎脑神经干细胞的存活和增殖,含血清培养基能诱导兔胎脑神经干细胞分化。 相似文献
8.
对培养斑马鱼卵母细胞体外成熟中的两种分离方法进行了比较。结果表明,在卵母细胞的分离过程中,机械分离法获得的完整卵细胞的比例(87.0%)显著多于EDTA-胰酶消化法(33.2%)(P<0.01)。但机械分离法较费时,其平均分离每个卵细胞所用的时间(0.69min)显著多于EDTA-胰酶消化法(0.17min)(P<0.01)。此外,经过18h 27℃培养,机械分离法获得的卵细胞的存活率(88.2%)显著高于EDTA-胰酶消化法所获卵细胞的存活率(60.1%),而采用机械分离法和消化分离法对所获卵细胞的成熟度-GVBD%分别为83.9%、77.5%,无显著差异(P>0.05)。基于数据所示,机械分离法可以获得存活率高、完整性好的卵细胞,但所需操作时间较长;EDTA-胰酶消化法操作便捷,但其分离出的卵细胞的活力较差;两种方法对卵细胞体外培养成熟率的影响无明显差异。 相似文献
9.
探讨海马神经干细胞(neuralstemcells,NSCs)在体外分离扩增和诱导分化的可行性。无菌条件下分离新生(24h)SD大鼠海马神经干细胞,采用无血清培养和胎牛血清诱导分化。免疫荧光染色技术分别检测诱导前细胞巢蛋白(Nestin)的表达,以及分化细胞的神经元特异性烯醇化酶(neuron specific enolase,NSE)、胶质纤维酸性蛋白(glialfibrillaryacidicprotein,GFAP)的表达,以鉴定细胞类型。流式细胞仪检测神经干细胞分化前后增殖能力的变化。结果显示:从乳鼠海马分离培养的细胞生长状态良好,具有克隆增殖能力,并呈Nestin表达阳性,分化后可出现NSE及GFAP表达阳性的细胞。流式细胞仪检测显示:诱导前,细胞增殖活跃,S+G2/M期细胞为(36.27±1.99)%,而分化各阶段(3,7,10d)S+G2/M期细胞比例与诱导前(Ctrl)相比则明显下降(尸〈0.05),分别为(26.39±1.10)%、(26.33±1.33)%和(24.54±1.12)%。这些结果表明乳鼠海马存在神经干细胞,并具有自我更新和多向分化的潜能,可用于基础和临床的相关研究。 相似文献
10.
胚胎大鼠中枢神经系统神经干细胞分离培养方法研究 总被引:2,自引:0,他引:2
为了建立经济实用的神经干细胞培养方法 ,以Wistar大鼠胚龄 1 4~ 1 5天的胚胎为实验材料 ,选取中枢神经系统的大脑和小脑神经组织 ,经 0 1 2 5 %胰酶消化处理 ,在生长因子 (aFGF和bFGF)作用下 ,采用无血清培养法进行培养。通过倒置相差显微镜进行观察 ,可观察到明显的干细胞的不对称分裂图像。神经干细胞在培养一段时间后均出现细胞团 ,细胞团贴壁后可进行分化 ,形态上表现为神经元样和神经胶质样细胞。利用激光扫描共聚焦显微镜对其进行鉴定 ,可检测到神经干细胞标志性蛋白-Nestin蛋白。采用此法可以分离得到具有干细胞特征和多分化潜能的神经干细胞 ,建立了一套神经干细胞的分离、培养和鉴定的方法 ,这将对更好地理解神经系统的发育机制 ,及临床治疗神经系统疾病具有重要意义。 相似文献
11.
Atiyeh Mohammadshirazi Hoda Sadrosadat Razieh Jaberi Masoomeh Zareikheirabadi Sara Mirsadeghi Zahra Naghdabadi Mahdieh Ghaneezabadi Mehdi Fardmanesh Hossein Baharvand Sahar Kiani 《Journal of cellular physiology》2019,234(11):20742-20754
A large number of treatment approaches have been used for spinal cord injury improvement, a medically incurable disorder, and subsequently stem cell transplantation appears to be a promising strategy. The main objective of this study is to ascertain whether combinational therapy of human neural stem cells (hNSCs) together with lithium chloride improves cell survival, proliferation, and differentiation in a rat spinal contusion model, or not. Contusive spinal cord injury was implemented on Wistar male rats. Experimental groups comprised of: control, hNSCs transplanted, lithium chloride (Li), and hNSCs and lithium chloride (hNSCs + Li). In every experimental group, locomotor activity score and motor evoked potential (MEP) were performed to evaluate motor recovery as well as histological assessments to determine mechanisms of improvement. In accordance with our results, the hNSCs + Li and the Li groups showed significant improvement in locomotor scores and MEP. Also, Histological assessments revealed that transplanted hNSCs are capable of differentiation and migration along the spinal cord. Although NESTIN-positive cells were proliferated significantly in the Lithium group in comparison with control and the hNSCs + Li groups, the quantity of ED1 cells in the hNSCs + Li was significantly larger than the other two groups. Our results demonstrate that combinational therapy of hNSCs with lithium chloride and lithium chloride individually are adequate for ameliorating more than partial functional recovery and endogenous repair in spinal cord-injured rats. 相似文献
12.
Meng XT Li C Dong ZY Liu JM Li W Liu Y Xue H Chen D 《Cell biology international》2008,32(12):1546-1558
We have previously demonstrated that amniotic epithelial cells (AECs) can enhance survival and neural differentiation of neural stem cells (NSCs) when co-cultured in basal media. In addition, the presence of basic fibroblast growth factor (bFGF) enhances this AEC function. The aim of the present study was to extend those findings and investigate whether AECs modified with the bFGF gene will also enhance NSCs survival and neural differentiation in vivo and promote repair of the injured spinal cord. Female Wistar rats were used for a contusive spinal cord injury (SCI) model. Contusive SCIs were induced using a weight-drop device at levels T9-T11. Seven days following contusion, rats received grafts of NSCs only, NSCs with AECs/pLEGFP-hbFGF, or NSCs with AECs/pLEGFP-C1 into the injured region. Significant locomotor improvement was observed in the NSCs/AECs co-graft group beginning at 3 weeks compared with the NSCs or NaCl only groups. These results were confirmed and extended in an electrophysiological analysis. An immunohistological analysis revealed that AECs/pLEGFP-hbFGF promoted the survival (vs NaCl group: 194+/-9.17 vs 103.6+/-13.05) and neural differentiation (vs NaCl group: 14.24+/-1.11 vs 7+/-0.63) of co-transplanted NSCs. We also confirmed that AECs could promote the survival of host neurons. These results suggest that AECs/pLEGFP-hbFGF improve the NSCs survival and differentiation microenvironment and may be useful as a source of sustained trophic supported to improve NSCs differentiation into neurons in vivo. These findings suggest that a cograft of AECs/pLEGFP-hbFGF and NSCs may have benefits for SCI. 相似文献
13.
14.
Li X Xu J Bai Y Wang X Dai X Liu Y Zhang J Zou J Shen L Li L 《Biochemical and biophysical research communications》2005,326(2):425-434
This paper described that neural stem cells (hsNSCs) were isolated and expanded rapidly from human fetal striatum in adherent culture. The population was serum- and growth factor-dependent and expressed neural stem cell markers. They were capable of multi-differentiation into neurons, astrocytes, and oligodendrocytes. When plated in the dopaminergic neuron inducing medium, human striatum neural stem cells could differentiate into tyrosine hydroxylase positive neurons. hsNSCs were morphologically homogeneous and possessed high proliferation ability. The population doubled every 44.28h and until now it has divided for more than 82 generations in vitro. Normal human diploid karyotype was unchanged throughout the in vitro culture period. Together, this study has exploited a method for continuous and rapid expansion of human neural stem cells as pure population, which maintained the capacity to generate almost fifty percent neurons. The availability of such cells may hold great interest for basic and applied neuroscience. 相似文献
15.
Xiao Li Yuantao Gao Feng Tian Ruochen Du Yitong Yuan Pengfei Li Fang Liu Chunfang Wang 《Experimental biology and medicine (Maywood, N.J.)》2021,246(11):1274
This study aims to examine whether miR-31 promotes endogenous NSC proliferation and be used for spinal cord injury management. In the present study, the morpholino knockdown of miR-31 induced abnormal neuronal apoptosis in zebrafish, resulting in impaired development of the tail. miR-31 agomir transfection in NSCs increased Nestin expression and decreased ChAT and GFAP expression levels. miR-31 induced the proliferation of mouse NSCs by upregulating the Notch signaling pathway, and more NSCs entered G1; Notch was inhibited by miR-31 inactivation. Injection of a miR-31 agomir into mouse models of spinal cord injury could effectively restore motor functions after spinal cord injury, which was achieved by promoting the proliferation of endogenous NSCs. After the injection of a miR-31 agomir in spinal cord injury mice, the expression of Nestin and GFAP increased, while GFAP expression decreased. In conclusion, the zebrafish experiments prove that a lack of miR-31 will block nervous system development. In spinal cord injury mouse models, miR-31 overexpression might promote spinal cord injury repair. 相似文献
16.
Akhirin regulates the proliferation and differentiation of neural stem cells in intact and injured mouse spinal cord 下载免费PDF全文
Felemban Athary Abdulhaleem M Xiaohong Song Rie Kawano Naohiro Uezono Ayako Ito Giasuddin Ahmed Mahmud Hossain Kinichi Nakashima Hideaki Tanaka Kunimasa Ohta 《Developmental neurobiology》2015,75(5):494-504
Although the central nervous system is considered a comparatively static tissue with limited cell turnover, cells with stem cell properties have been isolated from most neural tissues. The spinal cord ependymal cells show neural stem cell potential in vitro and in vivo in injured spinal cord. However, very little is known regarding the ependymal niche in the mouse spinal cord. We previously reported that a secreted factor, chick Akhirin, is expressed in the ciliary marginal zone of the eye, where it works as a heterophilic cell‐adhesion molecule. Here, we describe a new crucial function for mouse Akhirin (M‐AKH) in regulating the proliferation and differentiation of progenitors in the mouse spinal cord. During embryonic spinal cord development, M‐AKH is transiently expressed in the central canal ependymal cells, which possess latent neural stem cell properties. Targeted inactivation of the AKH gene in mice causes a reduction in the size of the spinal cord and decreases BrdU incorporation in the spinal cord. Remarkably, the expression patterns of ependymal niche molecules in AKH knockout (AKH?/?) mice are different from those of AKH+/+, both in vitro and in vivo. Furthermore, we provide evidence that AKH expression in the central canal is rapidly upregulated in the injured spinal cord. Taken together, these results indicate that M‐AKH plays a crucial role in mouse spinal cord formation by regulating the ependymal niche in the central canal. © 2014 Wiley Periodicals, Inc. Develop Neurobiol 75: 494–504, 2015 相似文献
17.
Basic research on pluripotent stem cells is designed to enhance understanding of embryogenesis, whereas applied research is designed to develop novel therapies and prevent diseases. Attainment of these goals has been enhanced by the establishment of embryonic stem cell lines, the technological development of genomic reprogramming to generate induced-pluripotent stem cells, and improvements in vitro techniques to manipulate stem cells. This review summarizes the techniques required to generate neural cells from pluripotent stem cells. In particular, this review describes current research applications of a simple neural differentiation method, the neural stem sphere method, which we developed. 相似文献
18.
脊髓损伤(SCI)由于复杂病理生理和神经修复再生困难,至今仍旧是难以攻克的医学难题,而干细胞因其神经再生和神经保护特性被认为是治疗SCI最有希望的方法。其中人脐带间充质干细胞(HUC-MSCs)近年培养分化方法不断改进、神经修复机制初步阐明,联合移植等综合治疗方案也不断实践,使HUC-MSCs移植治疗效果提高。另外关于HUC-MSCs治疗SCI的临床试验逐渐开展,术后患者神经功能恢复改善且无严重并发症出现,表明干细胞移植应用于人体是安全有效的。本文就HUC-MSCs治疗SCI的研究状况及进展进行综述。 相似文献
19.
Venkata Ramesh Dasari Krishna Kumar Veeravalli Dzung H Dinh 《World journal of stem cells》2014,6(2):120-133
With technological advances in basic research,the intricate mechanism of secondary delayed spinal cord injury(SCI)continues to unravel at a rapid pace.However,despite our deeper understanding of the molecular changes occurring after initial insult to the spinal cord,the cure for paralysis remains elusive.Current treatment of SCI is limited to early administration of high dose steroids to mitigate the harmful effect of cord edema that occurs after SCI and to reduce the cascade of secondary delayed SCI.R ecent evident-based clinical studies have cast doubt on the clinical benefit of steroids in SCI and intense focus on stem cell-based therapy has yielded some encouraging results.An array of mesenchymal stem cells(MSCs)from various sources with novel and promising strategies are being developed to improve function after SCI.In this review,we briefly discuss the pathophysiology of spinal cord injuries and characteristics and the potential sources of MSCs that can be used in the treatment of SCI.We will discuss the progress of MSCs application in research,focusing on the neuroprotective properties of MSCs.Finally,we will discuss the results from preclinical and clinical trials involving stem cell-based therapy in SCI. 相似文献
20.
Somatostatin-immunoreactive fiber projections into the brain stem and the spinal cord of the rat 总被引:2,自引:0,他引:2
Dr. Brigitte Krisch 《Cell and tissue research》1981,217(3):531-552
Summary By use of the PAP-immunohistochemical staining technique with serial sections, somatostatin-immunoreactive fiber projections into the brain stem and the spinal cord are described. These projections originate in the periventricular somatostatin-immunoreactive perikarya of the hypothalamus and form three main pathways: (1) along the stria medullaris thalami and the fasciculus retroflexus into the interpeduncular nucleus; (2) along the medial forebrain bundle into the mammillary body; and (3) via the periventricular gray and the bundle of Schütz into the midbrain tegmentum. Densely arranged immunoreactive fibers and/or basket-like fiber terminals are observed within the following afferent systems: somatic afferent systems (nucleus spinalis nervi trigemini, substantia gelatinosa dorsalis of the entire spinal cord), and visceral afferent systems (nucleus solitarius, regio intermediolateralis and substantia gelatinosa of the sacral spinal cord). These projections form terminals around the perikarya of the second afferent neuron. Perikarya of the third afferent neuron are influenced by somatostatin-immunoreactive projections into the auditory system (nucleus dorsalis lemnisci lateralis, nucleus corporis trapezoidei). Furthermore, a somatostatin-immunoreactive fiber projection is found in the ventral part of the medial accessory olivary nucleus, in nuclei of the limbic system (nucleus habenularis medialis, nuclei supramamillaris and mamillaris lateralis) and in the formatio reticularis (nucleus Darkschewitsch, nuclei tegmenti lateralis and centralis, nucleus parabrachialis lateralis, as well as individual perikarya of the reticular formation). Targets of these projections are interneurons within interlocking neuronal chains.Supported by the Deutsche Forschungsgemeinschaft (Grant Nr. Kr 569/3) and Stiftung Volkswagenwerk 相似文献