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1.
目的 研究抑制褪黑素的生物合成对大鼠海马Tau蛋白磷酸化的影响。方法 侧脑室注射氟哌啶醇并腹腔注射加强,利用免疫组化检测大鼠海马区域Tau蛋白磷酸化情况;HPLC检测血清中褪黑素水平。结果 模型组大鼠海马Tau蛋白在Ser199/Ser202和Ser396/Ser404位点均发生异常过度磷酸化,褪黑素治疗组较模型组的磷酸化程度轻。结论 褪黑素水平的降低可能与AD样Tau蛋白异常过度磷酸化相关,外源性补充褪黑素可以减轻Tau蛋白的异常过度磷酸化。  相似文献   

2.
Tau蛋白过度磷酸化是Alzheimer病(AD)发病的关键事件.由于2型糖尿病是AD的风险因子,并且胰岛素抵抗是2型糖尿病的特征,检测了胰岛素抵抗大鼠大脑海马tau蛋白磷酸化水平,以及运用胰岛素增敏剂罗格列酮(TZD)后磷酸化的变化,发现胰岛素抵抗组大鼠海马tau蛋白呈过度磷酸化改变,但运用TZD后,tau蛋白的磷酸化状态有所恢复.由于糖原合成激酶-3β(GSK-3β)位于胰岛素信号转导途径中,并且是tau蛋白的重要磷酸激酶,研究检测罗格列酮干预前后GSK-3β活性,发现均升高.研究结果表明,肥胖时胰岛素抵抗导致细胞内胰岛素信号转导途径中,GSK-3β活性上调可能是引起大鼠海马内tau蛋白过度磷酸化的一个重要原因;虽然TZD可抑制tau蛋白的过度磷酸化,但可能不是通过下调GSK-3β活性的途径.  相似文献   

3.
Tau蛋白异常过度磷酸化修饰在阿尔茨海默病(Alzheimerdisease,AD)发病机理中起非常重要的作用,而2型糖尿病是AD的风险因素之一.采用蛋白质印迹研究2型糖尿病及单纯肥胖大鼠脑中海马回tau蛋白磷酸化程度,发现在这两种大鼠模型中海马tau蛋白在多个位点上都呈现过度磷酸化状态.同时,胰岛素信号传导系统中的关键酶糖原合成激酶-3β(glycogensynthasekinase-3β,GSK-3β)活性在这两种大鼠模型的海马回中明显增高,经脑立体定位法向大鼠海马回注射GSK-3β抑制剂氯化锂(LiCl),可阻止2型糖尿病及肥胖大鼠模型中的GSK-3β激活,但仅阻止单纯肥胖大鼠海马回tau蛋白过度磷酸化.另外,海马神经细胞膜上胰岛素受体β亚基水平在两种实验模型中显著下降.研究结果表明,2型糖尿病及肥胖可能通过增高胰岛素抵抗,从而导致GSK-3β激活和tau蛋白的过度磷酸化来提高AD的发病风险.2型糖尿病脑中低下的葡萄糖代谢也可能在tau蛋白的过度磷酸化起一定作用.  相似文献   

4.
摘要 目的:探究载脂蛋白APOE4对小鼠海马组织中tau蛋白磷酸化的作用。方法:采用6月龄人载脂蛋白APOE3,APOE4转基因纯合小鼠,用Western Blot检测小鼠海马组织中tau蛋白的磷酸化程度及Calpain蛋白、p35/25、CDK5等蛋白表达水平。使用脑立体定位术向小鼠侧脑室注射Ca2+螯合剂EGTA或二甲基亚砜DMSO两次,给药时间间隔4小时,第二次给药结束后两小时内处死小鼠。检测海马中Calpain蛋白、CDK5、p35/25及tau蛋白的磷酸化的变化情况。结果:①与野生型小鼠和APOE3-TR小鼠相比,APOE4-TR小鼠海马中tau蛋白在Ser396,Thr181及Thr231位点的磷酸化均显著性增高,同时Calpain2、p35/25和CDK5的表达水平也增加。②使用Ca2+螯合剂EGTA后,与对照DMSO给药组相比,Ca2+螯合剂EGTA给药组小鼠海马组织中tau蛋白在Ser396位的磷酸化显著下降,但未检测到tau蛋白在Thr181及Thr231位点的磷酸发生显著性变化,同时Calpain 2蛋白、p35/25和CDK5的表达水平降低。结论:人载脂蛋白APOE4引起小鼠海马tau蛋白磷酸化异常增高,并且可能是通过Calpain/p35-p25/CDK5信号通路调控tau蛋白Ser396位点磷酸化。  相似文献   

5.
Tau蛋白过度磷酸化是Alzheimer病 (Alzheimer′s disease, AD) 的一个重要特征.本研究检测了Ⅱ型糖尿病大鼠海马tau蛋白磷酸化水平,对其形成机制进行探讨. 以同龄正常Wistar大鼠作为对照,高脂高蛋白高糖饮食加小剂量链脲佐菌素(streptozotocin,STZ)注射诱导造Ⅱ型糖尿病模型(T2DM组).放免法检测血浆胰岛素;葡萄糖氧化酶法检测血浆葡萄糖;蛋白质印迹技术检测各组大鼠海马内总tau蛋白、tau蛋白上部分位点磷酸化、神经细胞膜上胰岛素受体及葡萄糖转运子3(glucose transport 3,GLUT3)水平;表面等离子共振技术(surface plasmon resonance, SPR)检测细胞膜上胰岛素受体与血浆胰岛素结合力;γ32-P标记的ATP和特异性底物肽检测海马内胰岛素信号传导系统中的关键酶糖原合酶激酶-3β(glycogen synthase kinase-3β, GSK-3β)活性.结果显示,T2DM组血浆血糖、血浆胰岛素及运用HOMA-IR公式计算的胰岛素抵抗指数显著高于对照组.蛋白质印迹结果显示两组大鼠海马回总tau蛋白水平无差异;T2DM组中tau蛋白在Ser199、Thr212、Ser214、Thr217、Ser396及Ser422位点上的磷酸化水平均显著高于对照组;T2DM组海马神经细胞膜上胰岛素受体水平及与胰岛素结合的功能均显著低于对照组;GSK-3β活性检测结果显示,T2DM组大鼠模型海马回中GSK-3β活性明显增高.研究结果表明,Ⅱ型糖尿病中由于胰岛素抵抗导致GSK-3β激活从而出现AD样tau蛋白的过度磷酸化,葡萄糖代谢紊乱也可能在tau蛋白的过度磷酸化起一定作用.  相似文献   

6.
本研究旨在探讨米诺环素(minocycline)对新生大鼠缺氧后认知功能的影响及其可能的作用机制。取出生后1 d的Sprague Dawley(SD)大鼠,经系统性缺氧,构建缺氧性脑损伤(hypoxic brain damage,HBD)模型。缺氧结束后2 h,腹腔注射生理盐水(Hy组)或米诺环素(Hy+M组),未造模的同龄大鼠为正常对照组(NG组)。各组大鼠出生后第30天用Y臂电子迷宫检测学习、记忆能力;缺氧后7 d用Western blot检测大鼠海马组织炎症介质(Iba-1、IL-1β、TNF-α和TGF-β1)、谷氨酸转运体(EAAT1和EAAT2)、总Tau及不同位点(Tyr18、Thr205、Thr231、Ser396和Ser404)磷酸化Tau蛋白的表达情况。结果显示,缺氧后大鼠学习、记忆能力显著下降,米诺环素处理后能改善其学习、记忆能力。缺氧后7 d,大鼠海马组织Iba-1、IL-1β、TNF-α、EAAT2和T231位点磷酸化的Tau蛋白表达升高,总Tau蛋白的表达下降;米诺环素处理后能降低缺氧后大鼠海马组织Iba-1、IL-1β、TNF-α和EAAT2的表达水平,但不能干预总Tau及磷酸化Tau蛋白的表达。以上结果提示,米诺环素能改善缺氧后大鼠认知功能障碍,其保护机制可能与其对脑内炎症反应和功能异常的谷氨酸转运体的抑制有关,但不涉及对Tau蛋白异常过度磷酸化的调节。  相似文献   

7.
观察膜糖蛋白(GP) Ⅱb/Ⅲa 单抗对小鼠动脉粥样硬化(atherosclerosis,As)病变和HMGB1/TLR4途径基因表达变化的影响,以探讨膜糖蛋白Ⅱb/Ⅲa 受体拮抗剂对As进程的影响及其机制.30只5周龄雄性ApoE-/-小鼠随机均分为3组:溶剂对照组(生理盐水50 μl,腹腔注射),IgG 对照组(50 μg,腹腔注射),GP Ⅱb/Ⅲa 单抗组(50 μg,腹腔注射).实验ApoE-/-小鼠均已高脂、高胆固醇饲料喂养,10周后处死动物.油红O染色观察主动脉窦As病变;活体荧光显微镜观察颈总动脉As病变处血小板黏附;Western blot 检测HMGB-1、TLR4与NF-κB蛋白的表达;免疫组化观察主动脉窦As病变部位MOMA-2 和VCAM-1的表达;ELISA法检测血浆中HMGB-1、IL-1β、TNF-α 与MCP-1的含量.研究结果表明:与对照组相比,GPⅡb/Ⅲa 单抗组ApoE-/-小鼠As病变和血小板黏附显著减少(P < 0.05);且该组小鼠主动脉TLR4与NF-κB蛋白的表达明显降低;其血清中的HMGB-1、IL-1β、TNF-α 与MCP-1的水平也明显下降(P < 0.05).此外,GP Ⅱb/Ⅲa 单抗治疗显著减少As病变处MOMA-2 和VCAM-1的表达(P < 0.05).GP Ⅱb/Ⅲa 单抗减轻ApoE-/-小鼠As病变可能与抑制HMGB1/TLR4途径介导的炎症有关.  相似文献   

8.
目的 本研究旨在阐明青蒿素对II型糖尿病(T2DM)小鼠认知功能障碍的改善作用及其机制。方法 C57BL/6J小鼠单次腹腔注射STZ(100 mg/kg)后联合高脂饲料喂养建立T2DM模型。T2DM小鼠随后腹腔注射青蒿素(40 mg/kg/d)或等体积溶剂。干预4周后,新物体识别、Y迷宫和Morris水迷宫实验检测小鼠的学习和记忆能力。蛋白质印迹法(Western blot)检测海马PI3K、Akt、磷酸化Akt、SYN和PSD-95蛋白的表达。透射电镜观察海马CA1区突触密度和突触超微结构改变。结果 与模型组相比,青蒿素干预组T2DM小鼠的认知功能显著改善,海马中PI3K和磷酸化Akt水平升高,SYN和PSD-95蛋白表达增加,CA1区神经元丢失减少。此外,青蒿素干预组小鼠CA1区的突触密度、PSD-95和突触界面曲率增加,突触间隙宽度减小。结论 青蒿素可能通过激活海马PI3K/Akt途径增强突触可塑性,从而减轻T2DM小鼠认知功能障碍;青蒿素有望成为治疗糖尿病性认知功能障碍的新型药物。  相似文献   

9.
目的 探讨慢性捆绑紧张对大鼠学习与记忆的影响及其可能的神经生物学机制。方法 选雄性 SD大鼠 18只 ,其中 10只为实验组 ,8只为对照组。对实验组采用捆绑器每天捆绑 6 h,2 1天后用 Y迷宫对两组大鼠进行行为检测 ,并用酶组织化学和免疫组织化学方法观察海马内一氧化氮合酶 (NOS)阳性神经元及 Tau蛋白 (Tau5 )免疫反应的变化。结果  1实验组大鼠学会躲避电击的次数为 35 .7± 7.5次 ,对照组为 2 5 .2± 2 .8次 ,P<0 .0 1;2海马右侧 CA1 区 NOS阳性神经元数目 ,对照组 2 7.2± 4.8个 ,实验组 38.9± 6 .4个 ,P<0 .0 5 ;NOS阳性神经元胞质平均灰度 ,对照组 170 .7± 11.8,实验组 16 2 .5± 12 .6 ,P<0 .0 5 ;3海马右侧 CA3 区 Tau5免疫阳性产物的平均灰度 ,对照组 16 1.7± 12 .8,实验组 145 .8± 13.8,P<0 .0 5。结论 一氧化氮产生过多而导致的神经毒性作用可能是慢性捆绑紧张导致动物学习与记忆功能受损的部分神经生物学机制 ,而海马 CA3 区神经元内所有的 Tau蛋白 (磷酸化及非磷酸化的 Tau)的总量增多说明 Tau蛋白的变化可能在此过程中起一定的作用。  相似文献   

10.
Li YK  Chen XC  Zhu YG  Peng XS  Zeng YQ  Sheng J  Huang TW 《生理学报》2005,57(2):154-160
为研究人参皂甙Rb1(ginsenoside Rb1)对冈田酸(okadaic acid,OA)诱导的大鼠海马神经元Tau蛋白过度磷酸化的影响及其可能机制,实验随机分为正常组、溶媒对照组、OA模型组和Rb1预处理组。正常组不作任何处理;Rb1预处理组大鼠分别用5、10、20 mg/kg的Rb1预处理,每天一次,共14 d,于第13天向海马背侧注射1.5μl OA[0.483 μl,溶于10% 二甲基亚砜(dimethysulphoxide,DMSO)];OA模型组大鼠于第13天时海马背侧注射OA,溶媒对照组则注射等体积的生理盐水。各组均于第15天收取标本。通过Biescbowski’s染色、免疫组化和Western blot,分别观察大鼠海马神经元胞体和突起内神经原纤维的改变和磷酸化Tau蛋白的表达水平,同时检测蛋白磷酸酯酶2A(protein phosphatase-2A,PP2A)活性以探讨其作用机制。结果显示:(1)OA模型组与溶媒对照组及正常组比较,海马神经元胞体和突起着色较深,染色不均匀;神经元中Thr231和Sei396位点磷酸化的Tau蛋白和总Tau含量增多;PP2A活性则明显下降(P<0.01):(2)Rb1预处理组大鼠海马神经元胞体和突起染色均匀,神经原纤维走行规则;海马神经元中Thr231和Ser396位点磷酸化的Tau蛋白和总Tau 含量较OA模型组减少,而PP2A活性明显增高(P<0.01)。以上观察结果表明,人参皂甙Rb1可以减轻OA诱导的大鼠海马神经元Tau蛋白过度磷酸化,其机制可能与提高PP2A活性有关。  相似文献   

11.
Liu C  Min S  Wei K  Liu D  Dong J  Luo J  Liu XB 《生理学报》2012,64(4):387-402
This study explored the effect of the excitatory amino acid receptor antagonists on the impairment of learning-memory and the hyperphosphorylation of Tau protein induced by electroconvulsive shock (ECT) in depressed rats, in order to provide experimental evidence for the study on neuropsychological mechanisms improving learning and memory impairment and the clinical intervention treatment. The analysis of variance of factorial design set up two intervention factors which were the electroconvulsive shock (two level: no disposition; a course of ECT) and the excitatory amino acid receptor antagonists (three level: iv saline; iv NMDA receptor antagonist MK-801; iv AMPA receptor antagonist DNQX). Forty-eight adult Wistar-Kyoto (WKY) rats (an animal model for depressive behavior) were randomly divided into six experimental groups (n = 8 in each group): saline (iv 2 mL saline through the tail veins of WKY rats ); MK-801 (iv 2 mL 5 mg/kg MK-801 through the tail veins of WKY rats) ; DNQX (iv 2 mL 5 mg/kg DNQX through the tail veins of WKY rats ); saline + ECT (iv 2 mL saline through the tail veins of WKY rats and giving a course of ECT); MK-801 + ECT (iv 2 mL 5 mg/kg MK-801 through the tail veins of WKY rats and giving a course of ECT); DNQX + ECT (iv 2 mL 5 mg/kg DNQX through the tail veins of WKY rats and giving a course of ECT). The Morris water maze test started within 1 day after the finish of the course of ECT to evaluate learning and memory. The hippocampus was removed from rats within 1 day after the finish of Morris water maze test. The content of glutamate in the hippocampus of rats was detected by high performance liquid chromatography. The contents of Tau protein which included Tau5 (total Tau protein), p-PHF1(Ser396/404), p-AT8(Ser199/202) and p-12E8(Ser262) in the hippocampus of rats were detected by immunohistochemistry staining (SP) and Western blot. The results showed that ECT and the glutamate ionic receptor blockers (NMDA receptor antagonist MK-801 and AMPA receptor antagonist DNQX) induced the impairment of learning and memory in depressed rats with extended evasive latency time and shortened space exploration time. And the two factors presented a subtractive effect. ECT significantly up-regulated the content of glutamate in the hippocampus of depressed rats which were not affected by the glutamate ionic receptor blockers. ECT and the glutamate ionic receptor blockers did not affect the total Tau protein in the hippocampus of rats. ECT up-regulated the hyperphosphorylation of Tau protein in the hippocampus of depressed rats, while the glutamate ionic receptor blockers down-regulated it, and combination of the two factors presented a subtractive effect. Our results indicate that ECT up-regulates the content of glutamate in the hippocampus of depressed rats, which up-regulates the hyperphosphorylation of Tau protein resulting in the impairment of learning and memory in depressed rats.  相似文献   

12.
Alzheimer's disease is a progressive neurodegenerative disorder characterized by extracellular accumulation of amyloid-beta (Aβ) peptide, which induces synaptic dysfunction, alteration of intracellular signaling pathways, hyperphosphorylation of the Tau protein, and cognitive impairment. Genistein, one of the major isoflavones present in soy and soy products, has been shown to modulate some of the pathogenic events associated with the neurodegeneration process. However, its underlying mechanisms remain to be clarified. Therefore, the objectives of the present study were to evaluate the ability of genistein to protect against Aβ1–42-induced cognitive impairment in rats and to elucidate some of the possible mechanisms involved in its neuroprotective effects in the hippocampus. Male Wistar rats received bilateral intracerebroventricular infusions of Aβ1–42 (2 nmol) and genistein 10 mg/kg orally for 10 days. The Aβ-infused animals showed significant impairment of memory, which was accompanied by the following neurochemical alterations in the hippocampus: decreased levels of the synaptic proteins synaptophysin and postsynaptic density protein 95 (PSD-95), hyperphosphorylation of Tau with increased activation of glycogen synthase kinase-3β and c-Jun N-terminal kinase, and inactivation of ERK. Treatment with genistein improved Aβ-induced cognitive impairment by attenuation of synaptotoxicity, hyperphosphorylation of Tau, and inactivation of ERK. Furthermore, treatment with this soy isoflavone did not cause systemic toxicity. These findings provide further evidence of the neuroprotective effect of genistein in an in vivo model of Aβ toxicity and, importantly, extend the current knowledge concerning the mechanisms associated with the neuroprotective effects of this compound in the hippocampus.  相似文献   

13.

Background

Chronic formaldehyde exposure leads to memory impairment and abnormal elevation of endogenous formaldehyde has been found in the brains of Alzheimer's disease (AD) patients. Hyperphosphorylated Tau protein with subsequent aggregates as neurofibrillary tangles (NFTs) is one of the typical pathological characteristics in AD brains. The mechanism underlying abnormally elevated concentrations of endogenous formaldehyde that induce Tau hyperphosphorylation is unknown.

Methods

N2a cells and mice were treated with formaldehyde for different time points, then Western blotting and immunocytochemistry were utilized to determine the phosphorylation and polymerization of Tau protein. HPLC was used to detect the concentration of formaldehyde in cell media.

Results

Under formaldehyde stress, Tau became hyperphosphorylated, not only in the cytoplasm, but also in the nucleus of neuroblastoma (N2a) cells, and mouse brains. Polymers of cellular phospho-Tau were also detected. Significant accumulation of glycogen synthase kinase-3β (GSK-3β) in the nucleus of N2a and mouse brain cells, and elevation of its phosphorylation at Y216, was observed under formaldehyde stress. Formaldehyde-induced Tau hyperphosphorylation was blocked in the presence of LiCl and CT99021, inhibitors of GSK-3β, and by RNAi interference.

Conclusions

Formaldehyde, which may cause age-related memory loss, can act as a factor triggering Tau hyperphosphorylation via GSK-3β catalysis and induces polymerization of Tau.

General significance

Investigation of formaldehyde-induced Tau hyperphosphorylation may provide novel insights into mechanisms underlying tauopathies.  相似文献   

14.
Tau蛋白过度磷酸化是Alzheimer病(Alzheimer disease, AD)的一个重要病理特征.采用 I 型糖尿病大鼠模型,研究胰岛素信号传导途径及葡萄糖代谢失调对tau蛋白过度磷酸化的形成机制进行探讨.以同龄Wistar大鼠做对照(CTL),胰腺大部分切除造低胰岛素组(PX),STZ较大剂量一次性注射造1型糖尿病模型即低胰岛素高血糖组(T1DM).葡萄糖氧化酶法检测血浆血糖,放免法检测血浆胰岛素,蛋白质印迹分析海马内总tau蛋白及tau蛋白上部分位点(Ser199、Thr212、Ser214、Ser396及Ser422)的磷酸化及神经细胞膜上葡萄糖转运子3(Glucose transport 3,GLUT3)水平.γ-32P-ATP和特异性底物肽检测海马内胰岛素信号传导系统中的关键酶糖原合成酶激酶-3β(Glycogen synthase kinase-3β, GSK-3β)活性.发现3组大鼠海马回总tau蛋白水平无显著差异,但以高血糖、低胰岛素血症为特征的T1DM组在tau蛋白Ser199、Thr212、Ser214、Ser396及Ser422位点上,呈现过度磷酸化状态,以低胰岛素血症为特征而血糖正常的PX组在位点Ser199、Thr212及Ser396上磷酸化程度比CTL组显著上升, 在位点Ser214及 Ser422上的磷酸化程度的改变不显著;T1DM及PX组大鼠海马 GSK-3β活性显著高于CTL组, 而GLUT3水平在T1DM和PX组均降低, 尤以T1DM组降低更显著.研究结果显示,胰岛素水平低下可能通过激活GSK-3β和下调细胞内葡萄糖代谢的双重作用引起脑内tau蛋白过度磷酸化.  相似文献   

15.
α-Synuclein (ASN) plays an important role in pathogenesis of Parkinson''s disease (PD) and other neurodegenerative disorders. Novel and most interesting data showed elevated tauopathy in PD and suggested relationship between ASN and Tau protein. However, the mechanism of ASN-evoked Tau protein modification is not fully elucidated. In this study we investigated the role of extracellular ASN in Tau hyperphosphorylation in rat pheochromocytoma (PC12) cells and the involvement of glycogen synthase kinase-3β (GSK-3β) and cyclin-dependent kinase 5 (CDK5) in ASN-dependent Tau modification. Our results indicated that exogenously added ASN increases Tau phosphorylation at Ser396. Accordingly, the GSK-3β inhibitor (SB-216763) prevented ASN-evoked Tau hyperphosphorylation, but the CDK5 inhibitor had no effect. Moreover, western blot analysis showed that ASN affected GSK-3β via increasing of protein level and activation of this enzyme. GSK-3β activity evaluated by its phosphorylation status assay showed that ASN significantly increased the phosphorylation of this enzyme at Tyr216 with parallel decrease in phosphorylation at Ser9, indicative of stimulation of GSK-3β activity. Moreover, the effect of ASN on microtubule (MT) destabilization and cell death with simultaneous the involvement of GSK-3β in these processes were analyzed. ASN treatment increased the amount of free tubulin and concomitantly reduced the amount of polymerized tubulin and SB-216763 suppressed these ASN-induced changes in tubulin, indicating that GSK-3β is involved in ASN-evoked MT destabilization. ASN-induced apoptotic processes lead to decrease in PC12 cells viability and SB-216763 protected those cells against ASN-evoked cytotoxicity. Concluding, extracellular ASN is involved in GSK-3β-dependent Tau hyperphosphorylation, which leads to microtubule destabilization. GSK-3β inhibition may be an effective strategy for protecting against ASN-induced cytotoxicity.  相似文献   

16.
Glycogen synthase kinase-3β (GSK-3β) plays a crucial role in memory deficits and tau hyperphosphorylation as seen in Alzheimer's disease, the most common dementia in the aged population. We reported that ventricular co-injection of wortmannin and GF-109203X (WT/GFX) can induce tau hyperphosophorylation and memory impairment of rats through activation of GSK-3 [Liu S. J., Zhang A. H., Li H. L., Wang Q., Deng H. M., Netzer W. J., Xu H. X. and Wang J. Z. (2003) J. Neurochem. 87, 1333]. In the present study, we found that feeding the rats with Acetyl-L-Carnitine (ALCAR, 50 mg/day·rat, per os) for 2 weeks rescued the WT/GFX-induced spatial memory retention impairment of the rats by antagonizing GSK-3β activation independent of Akt, PKCζ and Erk1/2. We also found that ALCAR arrested microtubule-associated protein tau hyperphosphorylation at multiple Alzheimer's disease sites in vivo and in vitro. Moreover, ALCAR enhanced the expression of several memory-associated proteins including c-Fos, synapsin I in rat hippocampus. These results suggest that ALCAR could ameliorate WT/GFX-induced spatial memory deficits through inhibition tau hyperphosphorylation and modulation of memory-associated proteins.  相似文献   

17.
Numerous enzymes hyperphosphorylate Tau in vivo, leading to the formation of neurofibrillary tangles (NFTs) in the neurons of Alzheimer's disease (AD). Compared with age-matched normal controls, we demonstrated here that the protein levels of WW domain-containing oxidoreductase WOX1 (also known as WWOX or FOR), its Tyr33-phosphorylated form, and WOX2 were significantly down-regulated in the neurons of AD hippocampi. Remarkably knock-down of WOX1 expression by small interfering RNA in neuroblastoma SK-N-SH cells spontaneously induced Tau phosphorylation at Thr212/Thr231 and Ser515/Ser516, enhanced phosphorylation of glycogen synthase kinase 3beta (GSK-3beta) and ERK, and enhanced NFT formation. Also an increased binding of phospho-GSK-3beta with phospho-Tau was observed in these WOX1 knock-down cells. In comparison, increased phosphorylation of Tau, GSK-3beta, and ERK, as well as NFT formation, was observed in the AD hippocampi. Activation of JNK1 by anisomycin further increased Tau phosphorylation, and SP600125 (a JNK inhibitor) and PD-98059 (an MEK1/2 inhibitor) blocked Tau phosphorylation and NFT formation in these WOX1 knock-down cells. Ectopic or endogenous WOX1 colocalized with Tau, JNK1, and GSK-3beta in neurons and cultured cells. 17Beta-estradiol, a neuronal protective hormone, increased the binding of WOX1 and GSK-3beta with Tau. Mapping analysis showed that WOX1 bound Tau via its COOH-terminal short-chain alcohol dehydrogenase/reductase domain. Together WOX1 binds Tau via its short-chain alcohol dehydrogenase/reductase domain and is likely to play a critical role in regulating Tau hyperphosphorylation and NFT formation in vivo.  相似文献   

18.
Abnormal hyperphosphorylation of Tau leads to the formation of neurofibrillary tangles, a hallmark of Alzheimer disease (AD), and related tauopathies. The phosphorylation of Tau is regulated by protein phosphatase 2A (PP2A), which in turn is modulated by endogenous inhibitor 2 (I2PP2A). In AD brain, I2PP2A is translocated from neuronal nucleus to cytoplasm, where it inhibits PP2A activity and promotes abnormal phosphorylation of Tau. Here we describe the identification of a potential nuclear localization signal (NLS) in the C-terminal region of I2PP2A containing a conserved basic motif, 179RKR181, which is sufficient for directing its nuclear localization. The current study further presents an inducible cell model (Tet-Off system) of AD-type abnormal hyperphosphorylation of Tau by expressing I2PP2A in which the NLS was inactivated by 179RKR181 → AAA along with 168KR169 → AA mutations. In this model, the mutant NLS (mNLS)-I2PP2A (I2PP2AAA-AAA) was retained in the cell cytoplasm, where it physically interacted with PP2A and inhibited its activity. Inhibition of PP2A was associated with the abnormal hyperphosphorylation of Tau, which resulted in microtubule network instability and neurite outgrowth impairment. Expression of mNLS-I2PP2A activated CAMKII and GSK-3β, which are Tau kinases regulated by PP2A. The immunoprecipitation experiments showed the direct interaction of I2PP2A with PP2A and GSK-3β but not with CAMKII. Thus, the cell model provides insights into the nature of the potential NLS and the mechanistic relationship between I2PP2A-induced inhibition of PP2A and hyperphosphorylation of Tau that can be utilized to develop drugs preventing Tau pathology.  相似文献   

19.
We have reported that activation of glycogen synthase kinase-3 (GSK-3) by ventricle injection of wortmannin (WT) and GF-109203X (GFX) induces Alzheimer-like memory deficit in rats [Liu et al., J. Neurochem. 87 (2003), 1333]. To further explore the factors responsible for the memory loss, we studied here the temporal alterations of GSK-3, tau phosphorylation, beta-amyloid (Abeta), and acetylcholine (ACh) after injection of WT/GFX, and analyzed their correlation with the memory loss. We observed that the severe memory deficit occurred at 24 and 48 h, and simultaneously, GSK-3 activation, tau hyperphosphorylation at Thr231, Ser396, and Ser404 and decline of ACh in hippocampus were detected, and these changes were mostly recovered at 72 and 96 h after the injection of WT/GFX. Remarkable increase of Abeta and intracellular accumulation of argentophilic substances were detected at 72 h. Pearson analysis showed that the memory deficit was correlated with GSK-3 activation, tau hyperphosphorylation, and decline of ACh but not with Abeta overproduction. Our data provide direct evidence demonstrating that activation of GSK-3 by WT/GFX may cause memory deficit through tau hyperphosphorylation and suppression of ACh in hippocampus.  相似文献   

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