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1.
从人星形胶质细胞瘤BT-325细胞中克隆胶质细胞源性神经营养因子(GDNF) cDNA序列.以大肠杆菌作为表达系统,GDNF蛋白在大肠杆菌JM103中获得了高效表达;表达产物经纯化、复性后,以8日龄鸡胚背根节(DRG)、14日龄胎鼠脊髓前角运动神经元以及新生大鼠大脑皮层胶质细胞作为实验材料,研究了GDNF的生物学活性,结果表明: rhGDNF可有效地促进DRG突起的生长,rhGDNF对体外培养的运动神经元表现出明显的促突起生长作用,并可显著提高体外培养运动神经元的存活率,rhGDNF 对体外培养的胶质细胞具有促增殖作用.  相似文献   

2.
为了研究胶质细胞源性神经营养因子 (GDNF) 在中枢神经系统疾病中的治疗应用,运用基因突变、蛋白质融合表达和蛋白质纯化技术获得分子质量较小的GDNF(ΔN39)活性片段. 将HIV-1 Tat 蛋白转导区 (protein transduction domain,PTD) 的9个碱性氨基酸49RKKRRQRRR57模拟物9个精氨酸(R9)与GDNF(ΔN39)活性片段融合表达,获得纯度达95%以上的GDNF(ΔN39)-R9融合蛋白. 将GDNF、GDNF(ΔN39)、GDNF(ΔN39)-R9分别加入原代培养的中脑多巴胺能神经元和转染GDNF受体GFRα1和Ret的PC12细胞中,观察它们的神经营养活性和毒性. 运用脑微血管内皮细胞株B-Endo 3,观察GDNF(ΔN39)-R9蛋白穿越血管内皮细胞膜的功能;运用脑血管内皮细胞和Matrigel铺板模拟血脑屏障,Transwell法检测Tat-GDNF(ΔN39)蛋白穿越脑血管内皮细胞和外周胶质膜的能力. 结果显示:GDNF(ΔN39)-R9蛋白具有类似GDNF的神经营养活性,促进原代培养的中脑多巴胺能神经元和稳定表达GFRα1和Ret受体的PC12-GFRα1-Ret细胞株的存活,没有显示毒性,并且能很好地穿过脑微血管内皮细胞层和模拟的血脑屏障.  相似文献   

3.
用 PCR方法构建了一个不能形成二聚体的 C端缺失半胱氨酸 57的 h ITF突变体 .将其克隆到大肠杆菌表达载体 p GEX- 4T- 1中 ,ITPG诱导表达 ,融合蛋白经 Glutathione- Sepharose 4B亲和层析 ,凝血酶酶切和 Sephacryl S 1 0 0纯化 ,得到突变体蛋白 .SDS- PAGE,氨基酸组成 ,飞行质谱 ,N端氨基酸序列测定结果与期望值一致 .研究表明突变体的生物学活性有所降低 .对胃蛋白酶作用的稳定性降低 .  相似文献   

4.
本作已有的研究结果证明,完整的人干细胞生长因子(hSCGF)没有种属特异性,即可以作用于小鼠骨髓造血细胞。这一点与在Ca^2 依赖糖识别结构域(CRD)缺失了78个氨基酸残基的截短分子(hSCGFβ)有所不同。本研究从hSCGF全长cDNA中完全删除了CRD结构域编码序列,进一步探讨CRD结构域的生物学功能。由于该突变体序列GC含量较高.因此将该缺失突变体序列克隆在GST融合表达载体中进行融合表达。通过低温(28℃)诱导,表达产物主要以可溶蛋白的形式存在。利用亲和层析纯化CRD结构域完全缺失的hSCGF突变体融合蛋白,通过检测重组突变分子的协同刺激造血活性有无改变来初步探讨CRD结构域在hSCGF分子中的生物学功能。研究结果表明,去掉完整CRD结构域的突变分子仍然具有造血刺激活性。据此推断CRD结构域在hSCGF分子中可能对于受体配体结合起辅助作用。  相似文献   

5.
采用PCR的方法对睫状神经营养因子(CNTF)基因进行改造,获得CNTF突变体基因(CNTFM) ,将CNTFM基因克隆入表达载体pBV2 2 0 ,在大肠杆菌BL 2 1(Gold)中进行了表达.目的蛋白占细胞总蛋白5 5 %左右,以包涵体形式存在,经Superdex 75凝胶过滤柱一步纯化和复性,获得纯度达90 %目的蛋白.纯化的重组CNTFM蛋白能促进培养的鸡胚背根神经节长出神经突起,能明显减轻实验小鼠的体重,表明CNTFM具有良好的体内、体外生物学活性,为开发新型高效的减肥药奠定了基础.  相似文献   

6.
为研究人白细胞介素 18(hIL 18)结构与功能的关系 ,用PCR定点突变技术分别构建了N末端、C末端缺失突变体(ΔNC)和IL 1特征样序列突变体S154A/Y156F/E157P/C163 T (S)。将突变体cDNA与原核表达载体 pJW 2重组并转化大肠杆菌DH5α ,经热诱导表达蛋白质 ,SDS PAGE证实表达的目的蛋白质以包涵体形式存在。菌体经超声破碎后 ,包涵体以 2mol/L尿素洗涤 ,8mol/L尿素溶解 ,并经SephadexG 75柱纯化 ,纯度可达 95 %以上。突变体蛋白质经逐步稀释复性后 ,以诱导人外周血单个核细胞 (PBMC)产生干扰素 γ(IFN γ)及对核因子 κB(NF κB)的激活能力为指标 ,检测突变体的生物学活性。结果显示ΔNC、S这 2个突变体对IFN γ的诱生能力显著低于野生型hIL 18,分别为野生型hIL 18的 13%和 4 8%。同时 ,ΔNC、S对NF κB的激活能力也低于野生型hIL 18,分别为野生型hIL 18的 6 9.7%和 89.8%。这些结果表明缺失的片段或突变的位点对hIL 18的功能有重要的作用。  相似文献   

7.
为了提高人睫状神经营养因子(CNTF)的生物学活性,用PCR方法获取N端缺失14个氨基酸的CNTF基因片段,经酶切鉴定、核酸测序证实突变体的核苷酸序列,将其重组至表达质粒pBV220,构建了CNTF突变体表达载体pBV-CNTFΔ.用SDS-PAGE测定其表达水平,鸡胚背根节无血清培养法检测表达蛋白的生物学活性.结果表明,pBV-CNTFΔ能表达生物学活性高于天然CNTF的约26kD蛋白质,表达水平达30%.为今后通过基因工程方法获得CNTF突变体,从而制备高效的CNTF制剂创造了条件.  相似文献   

8.
转铁蛋白受体单链抗体与BDNF融合蛋白的表达及活性鉴定   总被引:1,自引:0,他引:1  
脑源性神经营养因子(BDNF)对中枢神经系统的多种神经元具有营养,修复和保护功能,但因无法通过血脑屏障限制了其应用。本文利用抗转铁蛋白受体(TfR)的单链抗体(ox26-scFv)作为脑转运载体,分别扩增单链抗体和BDNF基因,插入pTIG-Trx载体,构建融合基因表达载体pTIG-Trx/scFv-BDNF,在大肠杆菌BL21(DE3)中实现了高效表达。经Ni-NTA金属鏊合层析柱纯化后,在41Kd处可见目的纯化条带。大鼠GH3细胞免疫酶染色显示,ScFv-BDNF融合蛋白能与转铁蛋白受体特异性结合。同时能够促进鸡胚背根节神经突起的生长,具备了BDNF的生物学活性。为使BDNF能够跨越血脑屏障成为中枢神经系统的治疗药物打下了实验基础。  相似文献   

9.
目的:通过在大肠杆菌中分段表达禽流感病毒聚合酶酸性蛋白(PA蛋白),探索PA基因中可能影响表达的区域。方法:构建分段缺失的PA蛋白突变体,用IPTG在大肠杆菌RosettaGamiB(DE3)中诱导表达,比较各突变体的表达效率。结果:N端缺失长度在143~408个氨基酸残基之间的9个突变体在大肠杆菌中的表达水平较高;而突变体PA/K(Δ1-40aa)、PA/M(Δ1-56aa)、PA/N(Δ41-56aa)和PA/P(Δ57-75aa)的表达水平很低;全长PA蛋白和缺失N端20个氨基酸残基的突变体PA/L则检测不到表达。结论:PA基因的61~225bp和325~426bp可能是影响PA蛋白表达的2个重要区域,为下一步表达全长PA蛋白奠定了基础。  相似文献   

10.
睫状神经营养因子突变体蛋白的活性研究   总被引:3,自引:1,他引:2  
为了进一步研究我室应用计算机分子模拟设计并表达纯化的睫状神经营养因子突变体蛋白的生物学活性,分别采用鸡胚背根神经节无血清培养法、TF-1细胞增殖法、正常小鼠减重法对其活性进行研究。结果是突变体蛋白能促进鸡胚背根神经节的生长;促进TF-1细胞增殖,MTT测定法表明突变体蛋白与国际参考品相比,比活不低于2.0×106U/mg;使正常小鼠的体重减轻,摄食量减少,脂肪指数下降,并且体重的减轻与突变体蛋白的给药剂量呈现良好的剂量依赖关系,其ED50为:150.986?g/kg/d。以上实验表明CNTF突变体蛋白具有促神经生长、促TF-1细胞增殖和减重的生物学活性。从而为其进一步的应用和开发提供了线索。  相似文献   

11.
Galectin-1 (GAL-1), a member of a family of β-galactoside binding animal lectins, is predominantly expressed in isolectin B4 (IB4)-binding small non-peptidergic (glial cell line-derived neurotrophic factor (GDNF)-responsive) sensory neurons in the sections of adult rat dorsal root ganglia (DRG), but its functional role and the regulatory mechanisms of its expression in the peripheral nervous system remain unclear. In the present study, both recombinant nerve growth factor (NGF) and GDNF (50 ng/ml) promoted neurite outgrowth from cultured adult rat DRG neurons, whereas GDNF, but not NGF, significantly increased the number of IB4-binding neurons and the relative protein expression of GAL-1 in the neuron-enriched culture of DRG. The GAL-1 expression in immortalized adult rat Schwann cells IFRS1 and DRG neuron-IFRS1 cocultures was unaltered by treatment with GDNF, which suggests that GDNF/GAL-1 signaling axis is more related to neurite outgrowth, rather than neuron-Schwann cell interactions. The GDNF-induced neurite outgrowth and GAL-1 upregulation were attenuated by anti-GDNF family receptor (RET) antibody and phosphatidyl inositol-3′-phosphate-kinase (PI3K) inhibitor LY294002, suggesting that the neurite-outgrowth promoting activity of GDNF may be attributable, at least partially, to the upregulation of GAL-1 through RET-PI3K pathway. On the contrary, no significant differences were observed between GAL-1 knockout and wild-type mice in DRG neurite outgrowth in the presence or absence of GDNF. Considerable immunohistochemical colocalization of GAL-3 with GAL-1 in DRG sections and GDNF-induced upregulation of GAL-3 in cultured DRG neurons imply the functional redundancy between these galectins.  相似文献   

12.
GDNF (glial cell-line-derived neurotrophic factor), and the closely related cytokines artemin and neurturin, bind strongly to heparin. Deletion of a basic amino-acid-rich sequence of 16 residues N-terminal to the first cysteine of the transforming growth factor beta domain of GDNF results in a marked reduction in heparin binding, whereas removal of a neighbouring sequence, and replacement of pairs of other basic residues with alanine had no effect. The heparin-binding sequence is quite distinct from the binding site for the high affinity GDNF polypeptide receptor, GFRalpha1 (GDNF family receptor alpha1), and heparin-bound GDNF is able to bind GFRalpha1 simultaneously. The heparin-binding sequence of GDNF is dispensable both for GFRalpha1 binding, and for activity for in vitro neurite outgrowth assay. Surprisingly, the observed inhibition of GDNF bioactivity with the wild-type protein in this assay was still found with the deletion mutant lacking the heparin-binding sequence. Heparin neither inhibits nor potentiates GDNF-GFRalpha1 interaction, and the extracellular domain of GFRalpha1 does not bind to heparin itself, precluding heparin cross-bridging of cytokine and receptor polypeptides. The role of heparin and heparan sulfate in GDNF signalling remains unclear, but the present study indicates that it does not occur in the first step of the pathway, namely GDNF-GFRalpha1 engagement.  相似文献   

13.
Cdc42Hs is involved in cytoskeletal reorganization and is required for neurite outgrowth in N1E-115 cells. To investigate the molecular mechanism by which Cdc42Hs regulates these processes, a search for novel Cdc42Hs protein partners was undertaken by yeast two-hybrid assay. Here, we identify the 58-kD substrate of the insulin receptor tyrosine kinase (IRS-58) as a Cdc42Hs target. IRS-58 is a brain-enriched protein comprising at least four protein-protein interaction sites: a Cdc42Hs binding site, an Src homology (SH)3-binding site, an SH3 domain, and a tryptophan, tyrptophan (WW)-binding domain. Expression of IRS-58 in Swiss 3T3 cells leads to reorganization of the filamentous (F)-actin cytoskeleton, involving loss of stress fibers and formation of filopodia and clusters. In N1E-115 cells IRS-58 induces neurite outgrowth with high complexity. Expression of a deletion mutant of IRS-58, which lacks the SH3- and WW-binding domains, induced neurite extension without complexity in N1E-115 cells. In Swiss 3T3 cells and N1E-115 cells, IRS-58 colocalizes with F-actin in clusters and filopodia. An IRS-58(1267N) mutant unable to bind Cdc42Hs failed to localize with F-actin to induce neurite outgrowth or significant cytoskeletal reorganization. These results suggest that Cdc42Hs facilitates cytoskeletal reorganization and neurite outgrowth by localizing protein complexes via adaptor proteins such as IRS-58 to F-actin.  相似文献   

14.
15.
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   

16.
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   

17.
How vesicular transport participates in neurite outgrowth is still poorly understood. Neurite outgrowth is not sensitive to tetanus neurotoxin thus does not involve synaptobrevin-mediated vesicular transport to the plasma membrane of neurons. Tetanus neurotoxin-insensitive vesicle-associated membrane protein (TI-VAMP) is a vesicle-SNARE (soluble N-ethylmaleimide-sensitive fusion protein [NSF] attachment protein [SNAP] receptor), involved in transport to the apical plasma membrane in epithelial cells, a tetanus neurotoxin-resistant pathway. Here we show that TI-VAMP is essential for vesicular transport-mediating neurite outgrowth in staurosporine-differentiated PC12 cells. The NH(2)-terminal domain, which precedes the SNARE motif of TI-VAMP, inhibits the association of TI-VAMP with synaptosome-associated protein of 25 kD (SNAP25). Expression of this domain inhibits neurite outgrowth as potently as Botulinum neurotoxin E, which cleaves SNAP25. In contrast, expression of the NH(2)-terminal deletion mutant of TI-VAMP increases SNARE complex formation and strongly stimulates neurite outgrowth. These results provide the first functional evidence for the role of TI-VAMP in neurite outgrowth and point to its NH(2)-terminal domain as a key regulator in this process.  相似文献   

18.
19.
The diversity of neurons in sympathetic ganglia and dorsal root ganglia (DRG) provides intriguing systems for the analysis of neuronal differentiation. Cell surface receptors for the GDNF family ligands (GFLs) glial cell-line-derived neurotrophic factor (GDNF), neurturin and artemin, are expressed in subpopulations of these neurons prompting the question regarding their involvement in neuronal subtype specification. Mutational analysis in mice has demonstrated the requirement for GFL signalling during embryonic development of cholinergic sympathetic neurons as shown by the loss of expression from the cholinergic gene locus in ganglia from mice deficient for ret, the signal transducing subunit of the GFL receptor complex. Analysis in mutant animals and transgenic mice overexpressing GFLs demonstrates an effect on sensitivity to thermal and mechanical stimuli in DRG neurons correlating at least partially with the altered expression of transient receptor potential ion channels and acid-sensitive cation channels. Persistence of targeted cells in mutant ganglia suggests that the alterations are caused by differentiation effects and not by cell loss. Because of the massive effect of GFLs on neurite outgrowth, it remains to be determined whether GFL signalling acts directly on neuronal specification or indirectly via altered target innervation and access to other growth factors. The data show that GFL signalling is required for the specification of subpopulations of sensory and autonomic neurons. In order to comprehend this process fully, the role of individual GFLs, the transduction of the GFL signals, and the interplay of GFL signalling with other regulatory pathways need to be deciphered.  相似文献   

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