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1.
GDNF对多巴胺能神经元作用机制的研究进展   总被引:3,自引:0,他引:3  
Pan J  Chen SD 《生理科学进展》2006,37(3):247-251
胶质细胞源性神经营养因子(glial cell line-derived neurotrophic factor,GDNF)是神经保护治疗帕金森病(Parkinson's disease,PD)的一种神经营养因子,越来越多的在体和离体实验研究显示GDNF是中脑多巴胺(dopaminergic neuron,DA)能神经元的有效存活因子。GDNF受体是由结合在细胞质膜外的糖基化磷酯酰基(glycosyl-phosphatidylinositol,GPI)和GDNF功能性孤儿受体酪氨酸激酶Ret蛋白质组成。特异性的GDNF与其受体结合后,激活其胞内部分c-Ret,经由不同的第二信使来传递信号发挥作用。主要可能的机制有顺式作用和反式作用。而探索GDNF促进中脑黑质DA能神经元再生修复的可能机制,为进一步深入研究GDNF的作用机制提供科学依据。  相似文献   

2.
胶质细胞源性神经营养因子(glial cell derived neurotrophic factor,GDNF)属转化生长因子β超家族成员,其成熟蛋白由134个氨基酸残基组成,而GDNF受体广泛分布于外周和中枢神经系统。GDNF不仅可以促进多巴胺能神经元、运动神经元的存活,对交感、副交感以及感觉神经元具有营养作用,还能够影响神经元的发育、分化并对非神经系统的发育也具有重要作用。近年来随着人们对疼痛认识的深入,疼痛的机制也不再限于神经元功能的改变,还受胶质细胞活化、多种营养因子、细胞因子及相应受体、离子通道等多方面因素的影响。为此,本文就近年来GDNF参与疼痛调节的相关研究进展做一简要综述。  相似文献   

3.
叙述了新近纯化的胶质细胞源神经营养因子(GDNF)的生物功能及其在鼠胚中的分布,着重介绍了该因子对损伤的多巴胺能神经元及运动神经元促进存活、修复损伤及再生的活性.  相似文献   

4.
胶质细胞源神经营养因子陈哲宇何成王成海(第二军医大学神经生物教研室,上海200433)关键词胶质细胞源神经营养因子多巴胺能神经元运动神经元神经营养因子是指能够促进神经细胞存活、生长和分化的一类蛋白质。胶质细胞源神经营养因子(GDNF),因其最初从大鼠...  相似文献   

5.
胶质细胞源性神经营养因子能够促进多种神经细胞特别是多巴胺能神经元及运动神经元存活。胶质细胞源性神经营养因子的信号传递受体是RET受体酪氨酸激酶,受体α亚基是它与RET相互作用的媒介。胶质细胞源性神经营养因子生物学活性的发挥需要RET与受体α亚基同时存在。  相似文献   

6.
将人胶质细胞源性神经营养因子(GDNF)基因克隆入酵母分泌型表达载体pPIC9K中,酶切线性化后电穿孔导入酵母细胞进行整合,经G418筛选得到多拷贝转化子,甲醇诱导表达。将人GDNF基因克隆入昆虫病毒转移载体pBacPAK8中,与线性化Bm-BacPAK6修饰病毒基因组DNA共转染家蚕细胞,经体内重组,筛选到重组病毒。用重组病毒感染家蚕幼虫,5d后收集血淋巴。SDS-PAGE和蛋白质印迹杂交结果证实了酵母培养上清液及家蚕幼虫血淋巴中含有GDNF蛋白。活性研究表明,甲醇酵母及家蚕幼虫表达的GDNF蛋白能促进多巴胺能神经元的存活和突起生长。  相似文献   

7.
神经营养因子对神经系统的发育和维持起着至关重要的作用。它们不但能够促进神经元的分化和存活 ,而且抑制与神经系统退行性疾病、神经损伤和神经毒相关的神经元的退化。最近被确认的GDNF家族是TGF β家族成员的远亲。GDNF作为该家族的第一个成员 ,发现于 1 993年 ,由Lin等人[1] 由大鼠胶质细胞株B49中提纯到 ,发现它能促进胚胎中脑多巴胺能神经元的存活和形态分化 ,以及提高它们对高亲和性多巴胺的摄取。最近的研究发现 ,与其它神经营养因子相比 ,GDNF对多巴胺能神经元和去甲状腺能神经元有更强的促活能力[2 ] ,并且对…  相似文献   

8.
《生物学通报》2007,42(8):6-6
目前用于治疗帕金森氏症的药物只治疗症状.而不能阻止脑中多巴胺神经元的退化和死亡,从而引起与这种疾病有关的运动缺陷。用“胶质细胞源性神经营养因子”(GDNF)治疗能获得有限的成功,但却有安全方面的问题。Lindholm等人报告,他们发现并纯化了一种新的神经营养因子。被称为“保留型多巴胺神经营养因子”(CDNF),[第一段]  相似文献   

9.
目的研究神经干细胞在体外向多巴胺能神经元分化的条件,为帕金森病的细胞移植治疗提供基础实验资料。方法体外培养扩增中脑神经干细胞,在有血清条件下分别予以GDNF,IL-1β及GDNF IL-1β诱导分化,TH免疫细胞化学鉴定分化结果,流式细胞术检测TH阳性神经元比例。结果有血清条件下GDNF,IL-1β及两者联合促进中脑神经干细胞分化为TH阳性神经元的比例分别为13.41%,9.23%,15.59%,明显高于对照组(约3.49%,P≤0.01),GD-NF及联合诱导组多巴胺能神经元形态更成熟。结论GDNF,IL-1β及两者联合可明显促进中脑神经干细胞分化为多巴胺能神经元。GDNF较IL-1β更能促进诱导的多巴胺能神经元的表型成熟。  相似文献   

10.
GDNF对体外运动神经元和感觉神经元的影响   总被引:5,自引:0,他引:5  
目的:探讨胶质细胞源性神经营养因子(GDNF)对正常胎鼠脊髓运动神经元(SMN)和背根神经节神经元(DRG)生长活性的作用.方法:建立大鼠胚胎SMN和DRG单细胞培养体系,观察1 μg/L、10 μg/L、50 μg/L和100 μg/L GDNF对SMN和DRG存活及突起生长的影响.结果: GDNF组培养的SMN和DRG存活数目明显增加,神经元突起长度比对照组明显增长,且具有剂量依赖趋势.结论: GDNF对正常大鼠胚胎发育期运动神经元和感觉神经元具有神经营养作用.  相似文献   

11.
Glial cell line-derived neurotrophic factor (GDNF) was originally recognized for its ability to promote survival of midbrain dopaminergic neurons, but it has since been demonstrated to be crucial for the survival and differentiation of many neuronal subpopulations, including motor neurons, sympathetic neurons, sensory neurons and enteric neurons. To identify possible effectors or regulators of GDNF signaling, we performed a yeast two-hybrid screen using the intracellular domain of RET, the common signaling receptor of the GDNF family, as bait. Using this approach, we identified Rap1GAP, a GTPase-activating protein (GAP) for Rap1, as a novel RET-binding protein. Endogenous Rap1GAP co-immunoprecipitated with RET in neural tissues, and RET and Rap1GAP were co-expressed in dopaminergic neurons of the mesencephalon. In addition, overexpression of Rap1GAP attenuated GDNF-induced neurite outgrowth, whereas suppressing the expression of endogenous Rap1GAP by RNAi enhanced neurite outgrowth. Furthermore, using co-immunoprecipitation analyses, we found that the interaction between RET and Rap1GAP was enhanced following GDNF treatment. Mutagenesis analysis revealed that Tyr981 in the intracellular domain of RET was crucial for the interaction with Rap1GAP. Moreover, we found that Rap1GAP negatively regulated GNDF-induced ERK activation and neurite outgrowth. Taken together, our results suggest the involvement of a novel interaction of RET with Rap1GAP in the regulation of GDNF-mediated neurite outgrowth.  相似文献   

12.
Glial cell line-derived neurotrophic factor (GDNF) is a neurotrophic polypeptide, distantly related to transforming growth factor-beta (TGF- beta), originally isolated by virtue of its ability to induce dopamine uptake and cell survival in cultures of embryonic ventral midbrain dopaminergic neurons, and more recently shown to be a potent neurotrophic factor for motorneurons. The biological activities and distribution of this molecule outside the central nervous system are presently unknown. We report here on the mRNA expression, biological activities and initial receptor binding characterization of GDNF and a shorter spliced variant termed GDNF beta in different organs and peripheral neurons of the developing rat. Both GDNF mRNA forms were found to be most highly expressed in developing skin, whisker pad, kidney, stomach and testis. Lower expression was also detected in developing skeletal muscle, ovary, lung, and adrenal gland. Developing spinal cord, superior cervical ganglion (SCG) and dorsal root ganglion (DRG) also expressed low levels of GDNF mRNA. Two days after nerve transection, GDNF mRNA levels increased dramatically in the sciatic nerve. Overall, GDNF mRNA expression was significantly higher in peripheral organs than in neuronal tissues. Expression of either GDNF mRNA isoform in insect cells resulted in the production of indistinguishable mature GDNF polypeptides. Purified recombinant GDNF promoted neurite outgrowth and survival of embryonic chick sympathetic neurons. GDNF produced robust bundle-like, fasciculated outgrowth from chick sympathetic ganglion explants. Although GDNF displayed only low activity on survival of newborn rat SCG neurons, this protein was found to increase the expression of vasoactive intestinal peptide and preprotachykinin-A mRNAs in cultured SCG neurons. GDNF also promoted survival of about half of the neurons in embryonic chick nodose ganglion and a small subpopulation of embryonic sensory neurons in chick dorsal root and rat trigeminal ganglia. Embryonic chick sympathetic neurons expressed receptors for GDNF with Kd 1-5 x 10(-9) M, as measured by saturation and displacement binding assays. Our findings indicate GDNF is a new neurotrophic factor for developing peripheral neurons and suggest possible non-neuronal roles for GDNF in the developing reproductive system.  相似文献   

13.
The loss of nigral dopaminergic (DA) neurons is the disease-defining pathological change responsible for progressive motor dysfunction in Parkinson’s disease. In this study, we sought to establish a culture method for adult rat tyrosine hydroxylase (TH)-immunoreactive DA neurons. In this context, we investigated the role of fibroblast growth factor 2 (FGF2), brain-derived neurotrophic factor (BDNF), transforming growth factor-β3 (TGF-β3), glial-derived neurotrophic factor (GDNF) and dibutyryl-cyclic AMP (dbcAMP) in these cultures. Culturing in the presence of FGF2, BDNF and GDNF enhanced the survival of DA neurons by 15-fold and promoted neurite growth. In contrast, dbcAMP promoted neurite growth in all neurons but did not enhance DA cell survival. This study demonstrates that long-term cultures of DA neurons can be established from the mature rat brain and that survival and regeneration of DA neurons can be manipulated by epigenetic factors such as growth factors and intracellular cAMP pathways.  相似文献   

14.
Glial cell line-derived neurotrophic factor (GDNF) and neurturin (NRTN) are neurotrophic factors for parasympathetic neurons including ciliary ganglion (CG) neurons. Recently, we have shown that survival and signaling mediated by GDNF in CG neurons essentially requires transforming growth factor β (TGFβ). We have provided evidence that TGFβ regulates the availability of the glycosyl phosphatidylinositol (GPI)-anchored GDNF receptor alpha 1 (GFRα1) by promoting the recruitment of the receptor to the plasma membrane. We report now that in addition to GDNF, NRTN, but not persephin (PSPN) or artemin (ARTN), is able to promote survival of CG neurons. Interestingly, in contrast to GDNF, NRTN is not dependent on cooperation with TGFβ, but efficiently promotes neuronal survival and intracellular signaling in the absence of TGFβ. Additional treatment with TGFβ does not further increase the NRTN response. Both NRTN and GDNF exclusively bind to and activate their cognate receptors, GFRα2 and GFRα1, respectively, as shown by the use of receptor-specific neutralizing antibodies. Immunocytochemical staining for the two receptors on the surface of CG neurons reveals that, in contrast to the effect on GFRα1, TGFβ is not required for recruitment of GFRα2 to the plasma membrane. Moreover, binding of radioactively labeled GDNF but not NRTN is increased upon treatment of CG neurons with TGFβ. Disruption of TGFβ signaling does interfere with GDNF-, but not NRTN-mediated signaling and survival. We propose a model taking into account data from GFRα1 crystallization and ontogenetic development of the CG that may explain the differences in TGFβ-dependence of GDNF and NRTN.  相似文献   

15.
The effect of GDNF on long-term cultured spinal cord neurons was studied. GDNF could promote spinal cord neurons survival after 7 d or 14 d culture by MTT assay. The effect of GDNF on growth cones, neuron soma magnitude, neurite length and spines formulation of spinal cord neurons in cell culture was observed by phase microscopy, Nissl stain and NSE immunocytochemistry stain. The results indicated that GDNF had significant trophic effects on long-term cultured spinal cord neurons.  相似文献   

16.
Neurotrophic factors play a key role in development, differentiation, synaptogenesis, and survival of neurons in the brain as well as in the process of their adaptation to external influences. The serotonergic (5-HT) system is another major factor in the development and neuroplasticity of the brain. In the present review, the results of our own research as well as data provided in the corresponding literature on the interaction of brain-derived neurotrophic factor (BDNF) and glial cell line-derived neurotrophic factor (GDNF) with the 5-HT-system of the brain are considered. Attention is given to comparison of BDNF and GDNF, the latter belonging to a different family of neurotrophic factors and being mainly considered as a dopaminergic system controller. Data cited in this review show that: (i) BDNF and GDNF interact with the 5-HT-system of the brain through feedback mechanisms engaged in autoregulation of the complex involving 5-HT-system and neurotrophic factors; (ii) GDNF, as well as BDNF, stimulates the growth of 5-HT neurons and affects the expression of key genes of the brain 5-HT-system–those coding tryptophan hydroxylase-2 and 5-HT1A and 5-HT2A receptors. In turn, 5-HT affects the expression of genes that control BDNF and GDNF in brain structures; (iii) the difference between BDNF and GDNF is manifested in different levels and relative distribution of expression of these factors in brain structures (BDNF expression is highest in hippocampus and cortex, GDNF expression in the striatum), in varying reaction of 5-HT2A receptors on BDNF and GDNF administration, and in different effects on certain types of behavior.  相似文献   

17.
Glial cell line-derived neurotrophic factor (GDNF) is expressed in the gastrointestinal tract of the developing mouse and appears to play an important role in the migration of enteric neuron precursors into and along the small and large intestines. Two other GDNF family members, neurturin and artemin, are also expressed in the developing gut although artemin is only expressed in the esophagus. We examined the effects of GDNF, neurturin, and artemin on neural crest cell migration and neurite outgrowth in explants of mouse esophagus, midgut, and hindgut. Both GDNF and neurturin induced neural crest cell migration and neurite outgrowth in all regions examined. In the esophagus, the effect of GDNF on migration and neurite outgrowth declined with age between E11.5 and E14.5, but neurturin still had a strong neurite outgrowth effect at E14.5. Artemin did not promote neural migration or neurite outgrowth in any region investigated. The effects of GDNF family ligands are mediated by the Ret tyrosine kinase. We examined the density of neurons in the esophagus of Ret-/- mice, which lack neurons in the small and large intestines. The density of esophageal neurons in Ret-/- mice was only about 4% of the density of esophageal neurons in Ret+/- and Ret+/+ mice. These results show that GDNF and neurturin promote migration and neurite outgrowth of crest-derived cells in the esophagus as well as the intestine. Moreover, like intestinal neurons, the development of esophageal neurons is largely Ret-dependent.  相似文献   

18.
The isthmo-optic nucleus (ION) of chick embryos is a model system for the study of retrograde trophic signaling in developing CNS neurons. The role of brain-derived neurotrophic factor (BDNF) is well established in this system. Recent work has implicated neurotrophin-4 (NT-4), glial cell line-derived neurotrophic factor (GDNF), and insulin-like growth factor I (IGF-I) as additional trophic factors for ION neurons. Here it was examined in vitro and in vivo whether these factors are target-derived trophic factors for the ION in 13- to 16-day-old chick embryos. Unlike BDNF, neither GDNF, NT-4, nor IGF-I increased the survival of ION neurons in dissociated cultures identified by retrograde labeling with the fluorescent tracer DiI. BDNF and IGF-I promoted neurite outgrowth from ION explants, whereas GDNF and NT-4 had no effect. Injections of NT-4, but not GDNF, in the retina decreased the survival of ION neurons and accelerated cell death in the ION. NT-4-like immunoreactivity was present in the retina and the ION. Exogenous, radiolabeled NT-4, but not GDNF or IGF-I, was retrogradely transported from the retina to the ION. NT-4 transport was significantly reduced by coinjection of excess cold nerve growth factor (NGF), indicating that the majority of NT-4 bound to p75 neurotrophin receptors during axonal transport. Binding of NT-4 to chick p75 receptors was confirmed in L-cells, which express chick p75 receptors. These data indicate that GDNF has no direct trophic effects on ION neurons. IGF-I may be an afferent trophic factor for the ION, and NT-4 may act as an antagonist to BDNF, either by competing with BDNF for p75 and/or trkB binding or by signaling cell death via p75.  相似文献   

19.
Abstract: The effect of glial cell line-derived neurotrophic factor (GDNF) on the growth of mesencephalic dopaminergic neurons and on their survival following exposure to the neurotoxin 1-methyl-4-phenylpyridinium (MPP+) was examined in vitro. In cultures developing under normal conditions, GDNF at 1 ng/ml optimally improved the survival and stimulated the growth of dopaminergic neurons without affecting glial growth. In cultures treated with MPP+, GDNF could not prevent toxicity to dopaminergic neurons. The uptake of [3H]dopamine and the number of tyrosine hydroxylase-positive neurons were similarly reduced by MPP+ in the presence or absence of GDNF. However, after removal of MPP+, GDNF protected dopaminergic neurons from the continuous cell death and stimulated the regrowth of dopaminergic fibers damaged by MPP+. We conclude that GDNF supports the growth of normally developing dopaminergic neurons and stimulates their survival and recovery after damage. These findings suggest that GDNF could be useful in the development of therapeutic approaches to Parkinson's disease, which is characterized by dopaminergic cell loss.  相似文献   

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