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1.
目的研究大鼠局灶性脑缺血再灌注损伤后神经元和星形胶质细胞表达量的动态演变及各自cyclin D1的表达差异。方法建立大鼠大脑中动脉阻塞(MCAO)再灌注模型,随机分为再灌注后1d组,3d组,7d组,14d组和假手术组,应用流式细胞术检测各组再灌注后不同时间点神经元和星形胶质细胞数量变化及各自cyclin D1的表达。结果缺血侧梗死边缘区皮质星形胶质细胞的表达增加,而神经元的表达下降,与假手术组比较有明显差异(P〈0.05);神经元和星形胶质细胞中各自cyclin D1的表达在再灌注7d、14d后表达上调,且星形胶质细胞中的cyclinD1增加更明显,与假手术组比较有统计学差异(P〈0.05)。结论大鼠脑缺血再灌注后,缺血侧梗死边缘区皮质星形胶质细胞和神经元的cyclinD1表达均有不同程度的上调,星形胶质细胞的cyclin D1表达上调比神经元的更为显著。  相似文献   

2.
目的:探讨线粒体CB1受体(mitochondrial cannabinoid receptor1,mtCB1)在大鼠海马神经元缺氧复氧损伤中对线粒体分裂的影响。方法:原代培养新生的Wistar大鼠海马神经元,将培养至第8天的海马神经元采用随机数字表分为5组(n=60):正常组(N组):正常培养,不做任何处理;缺氧复氧组(H/R组):采用氧糖剥夺法构建海马神经元缺氧复氧损伤模型,缺氧6h,复氧20 h;缺氧复氧组+ACEA+AM251组(H/R+ACEA+AM251组):缺氧6 h结束后立即加入ACEA和AM251,终浓度分别为1μmol/L、10μmol/L,复氧20 h;缺氧复氧+ACEA+Hemopressin(H/R+ACEA+Hemo组):缺氧6h结束后立即加入ACEA和Hemopressin,终浓度分别为1μmol/L、10μmol/L,复氧20 h;缺氧复氧+赋形剂组(H/R+V组):同样于缺氧6h结束后立即加入二甲基亚砜(DMSO),终浓度0.1%,复氧20 h。使用激光共聚焦显微镜检测细胞内Ca~(2+)的浓度,流式细胞仪检测细胞凋亡率,Western blot检测凋亡诱导因子(AIF)、线粒体分裂相关蛋白Drp1、Fis1,细胞凋亡相关蛋白细胞色素C(Cytc)和Rho相关的卷曲蛋白激酶1(ROCK1)的表达。结果:与N组相比,H/R组、H/R+ACEA+AM251组、H/R+ACEA+Hemo组和H/R+V组的细胞内Ca~(2+)浓度、细胞凋亡率、以及AIF、Drp1、Fis1、Cytc、ROCK1蛋白的表达水平均明显增加(P0.05);与H/R组相比,H/R+ACEA+Hem组上述各检测指标明显降低(P0.05),H/R+ACEA+AM251组和H/R+V组各指标比较差异无统计学意义(P0.05)。结论:线粒体CB1受体(mtCB1受体)可能通过降低细胞内ROS的含量来减少细胞内Ca~(2+)浓度和ROCK1的表达,进而抑制线粒体分裂,并最终减轻海马神经元缺氧复氧损伤。  相似文献   

3.
H2O2诱导的线粒体损伤神经元内硫氧还蛋白mRNA水平的变化   总被引:3,自引:0,他引:3  
线粒体缺陷和氧化应激参与了神经退行性疾病的发病机制。叠氮钠(NaN3)是线粒体细胞色素C氧化酶(COX)的特异性抑制剂,能诱导线粒体缺陷。本实验通过细胞活性检测(MTT法),形态学观察,分析H2O2对原代培养的正常神经元及NaN3诱导的线粒体缺陷神经元的损伤作用的差异。并通过RT-PCR半定量法检测H2O2损伤后两类神经元内硫氧还蛋白(Thioredoxin,Trx)mRNA水平的变化,以阐明细胞内这一重要氧化还原调节蛋白在神经元损伤时的作用机制。实验表明,在正常神经元内,H2O2的损伤对Trx表达量的改变似乎不明显;而线粒体缺陷神经元内Trx的表达量下降,且对于H2O2的损伤具有浓度、时间依赖性。提示:在线粒体功能缺陷神经元中,Trx似乎发挥更重要的作用。  相似文献   

4.
目的:研究Che-1蛋白对氧糖剥夺(Oxygen glucose deprivation, OGD)所致神经元损伤的保护作用及机制。方法:OGD处理神经元后,采用免疫荧光染色和免疫印迹法检测Che-1蛋白的表达;慢病毒转染神经元实现Che-1过表达,检测乳酸脱氢酶(Lactate dehydrogenase, LDH)释放量和流式细胞术检测神经元凋亡反映OGD所致神经元损伤程度,采用免疫荧光染色和免疫印迹法检测神经元自噬;使用自噬激动剂雷帕霉素(Rapamycin)处理神经元,并通过检测LDH释放量和流式细胞术研究自噬在Che-1保护作用中的作用。结果:免疫荧光结果显示,OGD后神经元Che-1蛋白表达明显增高;免疫印迹结果显示,OGD后6至48 h神经元Che-1蛋白表达明显增高;慢病毒转染过表达Che-1蛋白后,OGD所致神经元LDH释放量明显减低,且OGD所致神经元凋亡明显减少;过表达Che-1蛋白可显著减少OGD所致神经元Beclin1和LC3II的表达;自噬激动剂Rapamycin可逆转Che-1对OGD所致神经元损伤的保护作用。结论:过表达Che-1蛋白可通过抑制神经元自噬对OGD所致神经元损伤发挥保护作用。  相似文献   

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目的:探索糖原合成激酶3β(GSK-3β)在电针预处理诱导的脑缺血再灌损伤保护中的作用.方法:60只雄性SD大鼠随机分成5组(n=12):假手术(Sham)、大脑中动脉栓塞组(MCAO)、电针预处理组(EA)、电针预处理加LY294002组(EA+LY)、电针预处理加溶剂组(vehicle);通过梗死面积及Garcia评分评价脑损伤程度,通过Western Blot检测GSK-3β活性.结果:与MCAO组相比,EA组梗死容积减少,Garcia评分改善(P<0.05);与vehicle组相比,EA+LY组梗死容积增加,Garcia评分降低(P<0.05);与MCAO组相比再灌注后2小时EA组GSK-3β磷酸化水平升高(P<0.05);与EA组相比EA+LY组GSK-3β3磷酸化水平降低(P<0.05).结论:电针预处理通过促进缺血再灌注后GSK-3β的磷酸化发挥脑保护作用.  相似文献   

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目的探讨大鼠局灶性脑缺血后磷酸化Rb蛋白(p-Rb,ser 795)的表达定位与神经元凋亡的时空关系。方法制备大鼠大脑中动脉梗塞(MCAO)模型,分为假手术对照组、缺血1h再灌注12h,1d,3d,7d组。利用TUNEL法检测缺血周边区细胞凋亡情况;TUNEL与p-Rb荧光双标观察神经元凋亡与p-Rb表达、定位的关系。结果缺血半暗带内大部分TUNEL阳性细胞为神经元;大鼠MCAO再灌注12h和1d,TUNEL与p-Rb分别以重叠和镶嵌的方式共定位;再灌注3d,7d发生p-Rb核浆转移的神经元与TUNEL染色细胞仍然分别维持在高水平,但是两者却没有明显的共定位关系。结论 p-Rb可能参与短暂局灶脑缺血后神经元早期凋亡过程,间接或者不参与神经元晚期凋亡过程。  相似文献   

7.
目的:探讨SIRT3调控的线粒体自噬对高糖加重神经元缺氧再灌注损伤的影响及机制。方法:高糖(50 mmol/L)干预HT22细胞后,构建细胞缺氧/复氧模型,利用SIRT3抑制剂3-TYP抑制SIRT3表达。倒置显微镜观察细胞形态改变,CCK8法检测细胞存活率,流式细胞术检测细胞凋亡率,TMRE荧光试剂盒检测细胞线粒体膜电位,RT-qPCR、Western blot检测相关分子的基因和蛋白质表达。结果:高糖使神经元缺氧再灌注后的细胞碎片进一步增加,细胞存活率降低,细胞凋亡率升高(P<0.05)。此外,高糖降低了神经元缺氧再灌注后的线粒体膜电位(P<0.05)。进一步研究发现,高糖上调神经元缺氧再灌注后线粒体分裂相关蛋白DRP1的表达水平,降低了线粒体融合相关蛋白OPA1和线粒体外膜蛋白TOM20的表达;并且增加了自噬相关蛋白LC3Ⅱ、Beclin-1和线粒体自噬相关蛋白PINK1、Parkin的表达;同时,高糖升高了SIRT3的基因和蛋白质表达(P<0.05)。而SIRT3抑制剂3-TYP使神经元高糖缺氧再灌注损伤加重,同时进一步上调DRP1、LC3Ⅱ和PINK1的蛋白质表达(P<0.05)。结论:高糖可显著加重神经元缺氧再灌注损伤,破坏细胞线粒体功能,激活细胞线粒体自噬;SIRT3可抑制PINK1-Parkin通路介导的线粒体自噬并减轻神经元高糖缺氧再灌注损伤。  相似文献   

8.
目的:研究大鼠海马注射淀粉样β蛋白(β-amyloid,Aβ)后海马神经元凋亡及线粒体凋亡途径相关蛋白表达的变化,探讨其在阿尔茨海默病发病机制与病理改变中的作用.方法:SD大鼠36只随机分为正常对照组,生理盐水组和模型组.大鼠双侧海马注射Aβ1-42越建立AD模型,不同时间点Y迷宫进行行为学测试,TUNEL法检测海马神经元凋亡表达,western-blot检测海马细胞色素C、caspase-9蛋白表达.结果:模型组大鼠术后14天达到学会标准所需电击次数较生理盐水组和正常对照组增加(P<0.05),21天、28天增加更显著(P<0.01).模型组凋亡细胞数较正常对照组、生理盐水组明显增多(P<0.01).模型组大鼠海马细胞色素C与caspase-9蛋白表达明显高于生理盐水组与正常对照组(P<0.05).结论:Aβ1-42>海马注射通过激活线粒体凋亡途径诱导海马神经元凋亡.引起大鼠学习记忆能力损害,在AD的发病机制与病理进程中发挥重要作用.  相似文献   

9.
Sirtuin 3 (Sirt3), a major mitochondrial NAD+-dependent deacetylase, targets various mitochondrial proteins for lysine deacetylation and regulates important cellular functions such as energy metabolism, aging, and stress response. In this study, we identified the human 8-oxoguanine-DNA glycosylase 1 (OGG1), a DNA repair enzyme that excises 7,8-dihydro-8-oxoguanine (8-oxoG) from damaged genome, as a new target protein for Sirt3. We found that Sirt3 physically associated with OGG1 and deacetylated this DNA glycosylase and that deacetylation by Sirt3 prevented the degradation of the OGG1 protein and controlled its incision activity. We further showed that regulation of the acetylation and turnover of OGG1 by Sirt3 played a critical role in repairing mitochondrial DNA (mtDNA) damage, protecting mitochondrial integrity, and preventing apoptotic cell death under oxidative stress. We observed that following ionizing radiation, human tumor cells with silencing of Sirt3 expression exhibited deteriorated oxidative damage of mtDNA, as measured by the accumulation of 8-oxoG and 4977 common deletion, and showed more severe mitochondrial dysfunction and underwent greater apoptosis in comparison with the cells without silencing of Sirt3 expression. The results reported here not only reveal a new function and mechanism for Sirt3 in defending the mitochondrial genome against oxidative damage and protecting from the genotoxic stress-induced apoptotic cell death but also provide evidence supporting a new mtDNA repair pathway.  相似文献   

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Ischemic stroke, caused by the blockage of blood supply, is a major cause of death worldwide. For identifying potential candidates, we explored the effects microRNA-150 (miR-150) has on ischemic stroke and its underlying mechanism by developing a stable middle cerebral artery occlusion (MCAO) rat model. Gene expression microarray analysis was performed to screen differentially expressed genes associated with MCAO. We evaluated the expression of miR-150 and Mal and the status of ERK1/2 axis in the brain tissues of MCAO rats. Then the cerebral cortical neurons (CCNs) were obtained and introduced with elevated or suppressed miR-150 or silenced Mal to validate regulatory mechanisms for miR-150 governing Mal in vitro. The relationship between miR-150 and Mal was verified by dual luciferase reporter gene assay. Besides, cell growth and apoptosis of CCNs were detected by means of MTT assay and flow cytometry analyses. We identified Mal as a downregulated gene in MCAO, based on the microarray data of GSE16561. MiR-150 was over-expressed and negatively targeted Mal in the brain tissues obtained from MCAO rats and their CCNs. Increasing miR-150 blocked the ERK1/2 axis, resulting in an inhibited cell growth of CNNs but an enhanced apoptosis. Furthermore, MiR-150 inhibition was observed to have effects on CNNs as opposed to those inhibited by miR-150 promotion. The key findings of this study support the notion that miR-150 under-expression-mediated direct promotion of Mal protects CNN functions through the activation of the ERK1/2 axis, and underscore the concept that miR-150 may represent a novel pharmacological target for ischemic stroke intervention.  相似文献   

12.
Glucose is the primary energy substrate for neurons. Glucose transporter 3 (Glut3) localizes at the neuronal cellular membrane, which transports glucose from the extracelluar space into neurons. Ischemia results in an increased energy demand that is associated with profound changes in brain energy metabolism. Magnesium sulfate (MgSO4) ameliorates ischemia‐induced neuronal death in the rat and gerbil model. We investigated the effects of MgSO4 administration on the expression of Glut3 in cortex and hippocampus of gerbils during ischemia. The focal cerebral ischemia was produced by unilateral occlusion of the right common carotid artery and right middle cerebral artery. Following ischemia, Glut3 expression increased significantly versus non‐ischemic (contra‐lateral) cortex and hippocampus. MgSO4 treatment significantly increased the level of Glut3 expression in the non‐ischemic and ischemic cortex and hippocampus. We found that the MgSO4‐induced increase in Glut3 expression was not reversed by administration of U0126, a MEK kinase inhibitor. These results suggest that other factors may function to modulate the MgSO4‐induced Glut3 response. In all, our data showed that MgSO4 increases the expression of Glut3 in the cortex and hippocampus of gerbil brains both in non‐ischemia and ischemia status. However, the MEK signaling pathway might not be involved in MgSO4‐induced Glut3 expression following focal ischemia. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

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Chen C  Hu Q  Yan J  Lei J  Qin L  Shi X  Luan L  Yang L  Wang K  Han J  Nanda A  Zhou C 《Journal of neurochemistry》2007,102(6):1831-1841
Despite 2-methoxyestradiol (2ME2) and tricyclodecan-9-yl-xanthogenate (D609) having multiple effects on cancer cells, mechanistically, both of them down-regulate hypoxia-inducible factor-1alpha (HIF-1alpha) and vascular endothelial growth factor (VEGF). We hypothesize HIF-1alpha plays an essential role in cerebral ischemia as a pro-apoptosis regulator; 2ME2 and D609 decrease the levels of HIF-1alpha and VEGF, that might contribute to protecting brain from ischemia injury. A total of 102 male Sprague-Dawley rats were split into five groups: sham, middle cerebral artery occlusion (MCAO), MCAO + dimethyl sulfoxide, MCAO + 2ME2, and MCAO + D609. 2ME2 and D609 were injected intraperitoneally 1 h after reperfusion. Rats were killed at 24 h and 7 days. At 24 h, 2ME2 and D609 reduce the levels of HIF-1alpha and VEGF (enzyme-linked immunosorbent assay), depress the expression of HIF-1alpha, VEGF, BCL2/adenovirus E1B 19 kDa interacting protein 3 (BNIP3) and cleaved caspase 3 (western blot and immunohistochemistry) in the brain infarct area. Double fluorescence labeling shows HIF-1alpha positive immunoreactive materials are co-localized with BNIP3 and terminal deoxynucleotidyl transferase biotin-dUTP nick end labeling inside the nuclei of neurons. At 7 days, 2ME2 and D609 reduce the infarct volume (2,3,7-triphenyltetrazolium chloride) and blood-brain barrier extravasation, decrease the mortality and improve the neurological deficits. In conclusion, 2ME2 and D609 are powerful agents to protect brain from cerebral ischemic injury by inhibiting HIF-1alpha expression, attenuating the superfluous expression of VEGF to avoid blood-brain barrier disruption and suppressing neuronal apoptosis via BNIP3 pathway.  相似文献   

15.
Human albumin therapy is highly neuroprotective in focal cerebral ischemia. Because albumin is the main carrier of free fatty acids (FFA) in plasma, we investigated the content and composition of plasma FFA in jugular vein (JV), femoral artery (FA) and femoral vein (FV) of rats given intravenous human albumin (1.25 g/kg) or saline vehicle (5 mL/kg) 1 h after a 2 h middle cerebral artery occlusion (MCAo) or sham surgery. Arachidonic acid was the only FFA significantly increased by MCAo in all plasma samples prior to albumin administration, remaining at the same level regardless of subsequent treatments. Albumin treatment induced in both MCAo- and sham-groups a 1.7-fold increase in total plasma FFA (mainly 16:0, 18:1, 18:2n-6) during 90-min reperfusion. MCAo selectively stimulated the albumin-mediated mobilization of n-3 polyunsaturated fatty acids (PUFA), with an early increase in 22:5n-3 and 22:6n-3 in the FA prior to detectable changes in the JV. In the MCAo-albumin group, the lower level of FFA in JV as compared with FA and FV suggests an albumin-mediated systemic mobilization and supply of FFA to the brain, which may favor the replenishment of PUFA lost from cellular membranes during ischemia and/or to serve as an alternative source of energy, thus contributing to albumin neuroprotection.  相似文献   

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Y Lu  J Zhang  B Ma  K Li  X Li  H Bai  Q Yang  X Zhu  J Ben  Q Chen 《Neurochemistry international》2012,61(5):649-658
Glycine is a cytoprotector to protect cells against ischemic damage by counteracting neuronal depolarization. However, whether it can directly inhibit neuronal apoptosis is unknown. In this study, we demonstrated that glycine could attenuate ischemia/reperfusion (I/R) induced cerebral infarction and improved neurological outcomes in mice. The protective effect of glycine was associated with reduction of terminal deoxynucleotidyl transferase biotin-dUTP nick end labeling (TUNEL) positive cells, deactivation of phosphor-JNK, inhibition of caspase-3 cleavage, down-regulation of FasL/Fas, and up-regulation of bcl-2 and bcl-2/bax in the mouse I/R penumbra. The beneficial effect of glycine against oxygen and glucose deprivation (OGD) induced injury was also confirmed in SH-SY5Y cells as well as in primary cultured neurons, which was significantly dampened by knockdown of glycine receptor α1 (GlyR α1) with siRNA transfection or by preventing glycine binding with glycine receptor using a specific antibody against glycine receptor. These results suggest that glycine antagonize cerebral I/R induced injury by inhibiting apoptosis in mice. Glycine could block both extrinsic and intrinsic apoptotic pathways for which GlyR may be required.  相似文献   

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