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1.
为了探讨糖原合酶激酶3β(glycogen synthase kinase 3β,GSK3β)和腺瘤性结肠息肉病(adenomatous polyposis coli, APC)蛋白在气道上皮细胞(airway epithelial cells,AECs)损伤和修复中的作用,我们采用机械划线损伤的方法建立体外气道上皮损伤修复模型,采用Western blot、免疫荧光双标共聚焦成像和免疫沉淀的方法观察损伤修复过程中APC蛋白和GSK3β在AECs中表达及分布的动态变化。结果显示:(1)用Western blot方法观察到划线损伤0.5 h后即有GSK3β磷酸化增强(P〈 0.05),6 h达到高峰(P〈0.05),持续到12 h(P〈0.05),24 h开始下降,而GSK3β总量大致保持一致。(2)在免疫荧光双标共聚焦成像实验中,划线损伤0 h组APC蛋白主要表达于胞浆,而划线损伤6 h后APC蛋白主要聚集于损伤前沿区的迁移活跃细胞。(3)免疫共沉淀的实验结果显示,划线损伤0 h时GSK3B和APC蛋白能共同沉淀,但在划线损伤6 h之后,两者发生了分离。以上结果表明:划线损伤后AECs立即启动修复过程,此时GSK3B的活性被抑制,促使APC蛋白游离出来;游离出来的APC蛋白则与微管正极结合,增加了微管的稳定性,从而调节细胞骨架运动,促进气道上皮的损伤修复。 相似文献
2.
糖原合成酶激酶 3( G S K 3)在 30℃与 τ蛋白保温 4 h 可催化 17±04 m ol磷酸参入 1 m olτ蛋白 将磷酸化的 τ蛋白经胰蛋白酶消化, Fe Cl3 亲和柱分离及 C18反相高压液相层析纯化后,再用高压电泳,手工 Edm an 降解及自动氨基酸序列分析等检测技术,对其磷酸化位点进行鉴定 结果发现: G S K 3 可使 τ蛋白 Thr 181, Ser 184, Ser 262, Ser 356 和 Ser 400 发生磷酸化 其中 Ser 262 和 Ser 400 为 Alzheim er 病( A D)τ蛋白的异常磷酸化位点根据上述磷酸化作用仅轻度抑制τ蛋白生物学活性,推测: A D τ蛋白 Ser 262 和 Ser 400 的磷酸化可能不是决定其生物功能的关键性位点,单纯 G S K 3 不能复制 A D 样 τ蛋白的病理改变 相似文献
3.
糖原合成酶激酶-3β (glycogen synthase kinase-3β,GSK-3β)除了在抑制糖原合成中的重要作用外,越来越多的研究表明它是细胞凋亡过程中的一个关键信号调节蛋白.然而,在细胞凋亡过程中它调节的主要下游促凋亡蛋白依然不明确,尤其是Bcl-2家族的促凋亡蛋白(Bax是其中最重要的蛋白之一).通过对GSK-3β和Bax两种蛋白进行荧光标记,在单分子水平上研究了十字孢碱(staurosperine,STS)诱导人肺腺癌细胞(ASTC-α-1)凋亡过程中,GSK-3β活化与Bax转位之间的关系.实验结果表明STS诱导ASTC-α-1凋亡过程中,共转染pCFP-Bax和 pYFP-GSK-3β的细胞发生凋亡的时间明显早于单转染 pYFP-Bax的细胞,并且Bax发牛转位的时间也明显提前.这些结果显示在STS这种凋亡因素刺激下,GSK-3β可以通过促进Bax转位从而加速细胞凋亡.这是单分子荧光成像技术研究活细胞内分子事件的又一个重要应用. 相似文献
4.
目的研究大鼠气道上皮鳞状化生时β-连环素(-βcatenin,-βcat)及其相关基因表达的变化,探讨-βcat与气道上皮鳞化及癌变的关系。方法采取缺乏VitA饲料饲养(12周)联合被动吸烟(4周)的方法建立支气管上皮鳞状化生模型,应用免疫组织化学(SABC法)和原位杂交技术研究-βcat、c-myc、增殖细胞核抗原(PCNA)以及-βcat mR-NA在气道上皮的表达。结果实验组大鼠支气管上皮细胞层次明显增多,其中4只大鼠支气管上皮出现明显的复层鳞状上皮化生。实验组支气管上皮-βcat在胞膜的表达减少(P<0.01),其中有6例在细胞质表达。实验组与对照组胞质中β-cat mRNA表达无明显差异(P>0.05)。实验组支气管上皮细胞核c-myc表达增加(P<0.01),PCNA阳性率明显增加(P<0.01)。结论-βcat、c-myc的表达异常参与了VitA缺乏与吸烟所致的大鼠支气管上皮鳞状化生的形成。 相似文献
5.
糖原合酶激酶-3β(glycogen synthase kinase-3β,GSK-3β)是调控糖 原代谢的主要激酶.它可以使多种底物蛋白磷酸化,参与调节细胞增殖、细胞分化和细胞凋亡.最 近研究表明,GSK-3β与帕金森病发生密切相关. 在帕金森病研究模型中,GSK-3β活性增高,诱导多巴胺能神经元凋亡;而GSK-3β活性被抑制时,tau蛋白磷酸化减少,α共核蛋白表达降低,神经元得到保护.因此,GSK-3 β可能成为帕金森病治疗的新靶点. 相似文献
6.
目的研究β-cat在新生儿细支气管中的表达情况,探讨β-cat在新生儿支气管发育中的作用。方法采用免疫组化(SP)法,检测22例尸检新生儿β-cat、GSK-3β在细支气管上皮细胞的表达,以12例儿童为对照。结果β-cat在新生儿组有6例出现细胞膜表达降低、3例出现胞质表达、2例胞核表达;对照组中2例胞膜表达减少,1例胞质表达。β-cat的平均光密度值在新生儿组为0·112±0·024,对照组为0·128±0·037。两组比较P>0·05,无显著性差异;GSK-3β平均光密度值在对照组为0·147±0·037,新生儿组为0·115±0·028,两组比较P<0·05,有显著性差异。结论β-cat在新生儿细支气管的异位表达,提示Wnt信号与支气管的发育成熟有关。 相似文献
7.
糖元合成酶激酶3β对微管相关蛋白tau的磷酸化作用 总被引:1,自引:0,他引:1
tau蛋白是中枢神经系统中重要的微管相关蛋白,其功能受磷酸化调节.异常过度磷酸化的tau蛋白是阿尔茨海默病患者脑中神经纤维缠结的主要组成部分.糖元合成酶激酶3β(glycogen synthase kinase-3β,GSK-3β)是重要的tau蛋白激酶之一,它虽可催化tau蛋白多个位点的磷酸化,但对不同位点,其催化效率不同.通过位点特异性、磷酸化依赖的tau蛋白抗体,用免疫印迹技术,检测GSK-3β对tau蛋白位点特异性的磷酸化作用及动力学.用双倒数作图,计算GSK-3β催化tau磷酸化以及各个位点磷酸化的Km值,并结合培养细胞中的实验,研究GSK-3β对tau蛋白磷酸化作用的位点特异性.结果显示,GSK-3β催化tau蛋白多个位点的磷酸化,其中包括Thr181、Ser199、Ser202、Thr205、Thr212、Thr217、Thr231、Ser396和Ser404,对不同的位点磷酸化作用,其Km值不同,GSK-3β对Ser396的Km值最低,即对Ser396位点的亲和性最高,催化其磷酸化的能力最强.在培养的细胞中,也显示了GSK-3β的表达引起Ser396位点的磷酸化最明显. 相似文献
8.
糖原合酶激酶-3β(glycogen synthase kinase-3β,GSK-3β)是一种多功能丝氨酸/苏氨酸激酶,通过磷酸化酪氨酸、丝氨酸和苏氨酸位点介导Wnt、Hedgehog、NF-κB和PI3K/Akt等信号通路,参与各类细胞功能的调节。GSK-3β在不同信号通路和细胞类型中扮演不同的角色,导致其在不同的恶性肿瘤中发挥促癌或抑癌的双重作用,与癌细胞的迁移和侵袭有直接关系。在胰腺癌和结肠癌研究中,GSK-3β的高表达调控通过相关信号通路,增强细胞增殖调控因子表达,抑制负性调控因子的活性,促进癌细胞的增殖。GSK-3β能激活上皮细胞间质转型过程中相关因子的表达,增强癌细胞扩散能力;相反,在胃癌和肺癌中,GSK-3β具有积极的抑癌作用。GSK-3β通过阻滞细胞周期和诱导细胞凋亡发挥抑癌作用,通过调节Wnt和PI3K/Akt信号通路,负向调控癌细胞的生长与侵袭,并且GSK-3β磷酸化相关因子以减弱其对癌细胞转移能力的刺激。本文总结了GSK-3β在不同恶性肿瘤中的作用及机制,并针对研究中存在的问题进行分析与展望,为相关领域的研究提供一定的理论基础。 相似文献
9.
为了探讨结肠腺瘤性息肉病(adenomatous polyposis coli,APC)蛋白、糖原合成酶激酶3β(glycogen synthase kinase3β,GSK3β)在吸烟致气道上皮细胞(airway epithelial cell,AEC)损伤修复中的作用,本实验建立了吸烟导致AEC损伤修复的小鼠模型,采用HE染色、免疫组织化学染色、免疫荧光共聚焦成像和Western blot方法,观察损伤修复过程中APC蛋白、GSK3β在AEC中表达及分布的动态变化.结果显示:(1)随着吸烟时间延长,AEC形态学上呈现损伤(1、4周)、修复(8周)、再损伤(12周)的变化.(2)免疫组化染色显示:AEC中APC蛋白表达在吸烟1周时较对照组明显增强,4周时较对照组明显减弱,8、12周时均较4周时增强但与对照组无差异;对照组GSK3β表达较强,吸烟组表达较对照组均减弱.Western blot检测小鼠肺组织中APC蛋白、GSK3β的表达变化与免疫组化结果一致,磷酸化GSK3β(p-GSK3β)在吸烟组的表达较对照组均有不同程度增高,尤以吸烟1周时明显.(3)荧光共聚焦成像显示:对照组APC蛋白在AEC胞质内均匀分布,吸烟1、8周时APC蛋白定位发生改变,呈簇状聚集于AEC腔面和侧面质膜下;GSK3β在对照组和吸烟组AEC胞质内均匀分布,无定位改变.由上述结果可见,吸烟致小鼠AEC损伤修复过程中APC蛋白表达及在胞质内分布呈动态变化,同时伴有GSK3β表达下调和磷酸化水平增高,提示二者可能通过参与修复过程中细胞迁移、分裂增殖等活动,在气道上皮损伤修复过程中发挥重要作用. 相似文献
10.
糖原合酶激酶-3 (glycogen synthase kinase-3,GSK-3) 是一种多功能的丝氨酸/苏氨酸蛋白激酶,在蛋白质合成、信号传递、细胞增殖、细胞分化、神经功能、肿瘤形成及胚胎发育等众多细胞进程中均扮演重要的角色.GSK-3 能够使多种底物发生磷酸化,并参与胰岛素、Wnt及Hedgehog 等多个信号通路的调控. GSK-3抑制剂在信号通路中能有效地抑制病理情况下GSK-3活性的异常增高,达到治疗的目的.GSK-3的抑制剂将作为一种潜在的药物对治疗糖尿病、阿尔海默茨症、肿瘤等疾病发挥效用. 相似文献
11.
Tomoyuki Furuya Ryuichi Nishihama Kimitsune Ishizaki Takayuki Kohchi Hiroo Fukuda Yuki Kondo 《Plant Biotechnology》2022,39(1):65
Plants precisely coordinate the balance between cell proliferation and differentiation to ensure the continuous development. In Arabidopsis thaliana, members of glycogen synthase kinase 3 (GSK3) family, which are highly conserved serine/threonine protein kinases among eukaryotes, play important roles in regulating cell proliferation and differentiation during various developmental processes. However, functional roles of GSK3s in the plant lineages except angiosperms remain to be elucidated. Here, we utilized a model liverwort, Marchantia polymorpha, for studies of GSK3, because it has a single GSK3-like kinase, MpGSK. When M. polymorpha was treated with a chemical compound, bikinin, which is known as a specific inhibitor for GSK3-like kinases, growth and morphologies were altered with an expansion of the meristematic region. Similarly, Mpgsk loss-of-function mutants accumulated undifferentiated cell mass with no differentiated tissues. By contrast, overexpression of MpGSK reduced the size of the meristem region. These results suggest that MpGSK plays important roles as a regulator for the balance between cell differentiation and proliferation in M. polymorpha. 相似文献
12.
Glycogen synthase kinase 3 (GSK3) is one of the few master switch kinases that regulate many aspects of cell functions. Recent studies on cell polarization and migration have shown that GSK3 is also essential for proper regulation of these processes. GSK3 influences cell migration as one of the regulators of the spatiotemporally controlled dynamics of the actin cytoskeleton, microtubules, and cell‐to‐matrix adhesions. In this mini‐review, the effects of GSK3 on these three aspects of cell migration will be discussed. 相似文献
13.
Differential expression of a WD protein during squamous differentiation of tracheal epithelial cells
The lining of the trachea consists of a pseudostratified, mucociliary epithelium that under a variety of conditions, such as vitamin A deficiency, toxic and mechanical injury, becomes a stratified squamous epithelium. Several in vitro cell culture models have been established to study the process of differentiation of airway epithelium. Such studies have indicated that mucosecretory differentiation of tracheal epithelial cells can be modulated by substratum. This study was undertaken to understand molecular mechanisms of squamous differentiation in tracheal epithelia. Primary cultured tracheal cells grown on uncoated filters were differentiated to single layer of squamous cells, whereas cells were grown as stratified columnar cells on collagen-I coated filters. The responses to secretagogues were altered according to culture conditions. DD-PCR revealed that FAK and a WD protein expression was increased in squamous tracheal epithelia. Expression of a WD protein was changed by the treatment of retinoic acid in various epithelial cells. These results indicated that squamous differentiation of tracheal cells changes the expression of a variety of genes, and that the experimental model for this study can be employed to study molecular mechanisms of squamous differentiation in airway epithelial cells. 相似文献
14.
15.
We have previously reported an aberrant accumulation of activated protein kinase B (PKB), glycogen synthase kinase (GSK)-3beta, extracellular signal-regulated kinase (ERK1/2), c-Jun N-terminal kinase (JNK), p38 and p70 S6 kinase (p70S6K) in neurons bearing neurofibrillary tangles (NFTs) in Alzheimer's disease (AD). However, the mechanism by which these tau candidate kinases are involved in the regulation of p70S6K and GSK-3beta phosphorylation is unknown. In the current study, 100 microM zinc sulfate was used, and influences of various components of phosphatidylinositol 3-kinase (PI3K) and mitogen-activated protein kinase (MAPK) pathways on p70S6K and GSK-3beta phosphorylation have been investigated in serum-deprived SH-SY5Y neuroblastoma cells. We found that zinc could induce an increase of phosphorylated (p) p70S6K, p-PKB, p-GSK-3beta, p-ERK1/2, p-JNK and p-p38, especially in long-term treatment (4-8 h). Treatment with different inhibitors including rapamycin, wortmannin, LY294002, and U0126, and their combinations, indicated that phosphorylation of p70S6K and GSK-3beta is regulated by rapamycin-dependent, PI3K and MAPK pathways. Furthermore, phosphorylation of p70S6K and GSK-3beta affected levels of tau unphosphorylated at the Tau-1 site and phosphorylated at the PHF-1 site, and p70S6K phosphorylation affected the total tau level. Thus, 100 microM zinc might activate PKB, GSK-3beta, ERK1/2, JNK, p38 and p70S6K, that are consequently involved in tau changes in SH-SY5Y cells. 相似文献
16.
Selective small-molecule inhibitors of glycogen synthase kinase-3 activity protect primary neurones from death 总被引:16,自引:0,他引:16
Cross DA Culbert AA Chalmers KA Facci L Skaper SD Reith AD 《Journal of neurochemistry》2001,77(1):94-102
The phosphatidylinositol 3-kinase (PI 3-kinase)/protein kinase B (PKB; also known as Akt) signalling pathway is recognized as playing a central role in the survival of diverse cell types. Glycogen synthase kinase-3 (GSK-3) is a ubiquitously expressed serine/threonine protein kinase that is one of several known substrates of PKB. PKB phosphorylates GSK-3 in response to insulin and growth factors, which inhibits GSK-3 activity and leads to the modulation of multiple GSK-3 regulated cellular processes. We show that the novel potent and selective small-molecule inhibitors of GSK-3; SB-415286 and SB-216763, protect both central and peripheral nervous system neurones in culture from death induced by reduced PI 3-kinase pathway activity. The inhibition of neuronal death mediated by these compounds correlated with inhibition of GSK-3 activity and modulation of GSK-3 substrates tau and beta-catenin. Thus, in addition to the previously assigned roles of GSK-3, our data provide clear pharmacological and biochemical evidence that selective inhibition of the endogenous pool of GSK-3 activity in primary neurones is sufficient to prevent death, implicating GSK-3 as a physiologically relevant principal regulatory target of the PI 3-kinase/PKB neuronal survival pathway. 相似文献
17.
Protein kinase B (also known as Akt) signaling regulates dopamine-mediated locomotor behaviors. Here the ability of cocaine to regulate Akt and glycogen synthase kinase 3 (GSK3) was studied. Rats were injected with cocaine or saline in a binge-pattern, which consisted of three daily injections of 15 mg/kg cocaine or 1 mL/kg saline spaced 1 h apart for 1, 3, or 14 days. Amygdala, nucleus accumbens, caudate putamen, and hippocampus tissues were dissected 30 min following the last injection and analyzed for phosphorylated and total Akt and GSK3(alpha and beta) protein levels using western blot analysis. Phosphorylation of Akt on the threonine-308 (Thr308) residue was significantly reduced in the nucleus accumbens and increased in the amygdala after 1 day of cocaine treatment; however, these effects were not accompanied by a significant decrease in GSK3 phosphorylation. Phosphorylation of Akt and GSK3 was significantly reduced after 14 days of cocaine administration, an effect that was only observed in the amygdala. Cocaine did not alter Akt or GSK3 phosphorylation in the caudate putamen or hippocampus. The findings in nucleus accumbens may reflect dopaminergic motor-stimulant activity caused by acute cocaine, whereas the effects in amygdala may be associated with changes in emotional state that occur after acute and chronic cocaine exposure. 相似文献
18.
Adrian J. Harwood Josephine E. Forde-Thomas Hazel Williams Matthias Samereier Annette Müller-Taubenberger 《European journal of cell biology》2013,92(6-7):222-228
Eukaryotic cell division requires the co-ordinated assembly and disassembly of the mitotic spindle, accurate chromosome segregation and temporal control of cytokinesis to generate two daughter cells. While the absolute details of these processes differ between organisms, there are evolutionarily conserved core components common to all eukaryotic cells, whose identification will reveal the key processes that control cell division. Glycogen synthase kinase 3 (GSK-3) is a major protein kinase found throughout the eukaryotes and regulates many processes, including cell differentiation, growth, motility and apoptosis. In animals, GSK-3 associates with mitotic spindles and its inhibition causes mis-regulation of chromosome segregation. Two suppressor screens in yeast point to a more general effect of GSK-3 on cell division, however the direct role of GSK-3 in control of mitosis has not been explored outside the animal kingdom. Here we report that the Dictyostelium discoideum GSK-3 orthologue, GskA, associates with the mitotic spindle during cell division, as seen for its mammalian counterparts. Dictyostelium possesses only a single GSK-3 gene that can be deleted to eliminate all GSK-3 activity. We found that gskA-null mutants failed to elongate their mitotic spindle and were unable to divide in shaking culture, but have no chromosome segregation defect. These results suggest further conservation for the role of GSK-3 in the regulation of spindle dynamics during mitosis, but also reveal differences in the mechanisms ensuring accurate chromosome segregation. 相似文献
19.
The effect of insulin on glycogen synthesis and key enzymes of glycogen metabolism, glycogen phosphorylase and glycogen synthase, was studied in HepG2 cells. Insulin stimulated glycogen synthesis 1.83-3.30 fold depending on insulin concentration in the medium. Insulin caused a maximum of 65% decrease in glycogen phosphorylase 'a' and 110% increase in glycogen synthase activities in 5 min. Although significant changes in enzyme activities were observed with as low as 0.5 nM insulin level, the maximum effects were observed with 100 nM insulin. There was a significant inverse correlation between activities of glycogen phosphorylase 'a' and glycogen synthase 'a' (R2 = 0.66, p < 0.001). Addition of 30 mM glucose caused a decrease in phosphorylase 'a' activity in the absence of insulin and this effect was additive with insulin up to 10 nM concentration. The inactivation of phosphorylase 'a' by insulin was prevented by wortmannin and rapamycin but not by PD98059. The activation of glycogen synthase by insulin was prevented by wortmannin but not by PD98059 or rapamycin. In fact, PD98059 slightly stimulated glycogen synthase activation by insulin. Under these experimental conditions, insulin decreased glycogen synthase kinase-3 activity by 30-50% and activated more than 4-fold particulate protein phosphatase-1 activity and 1.9-fold protein kinase B activity; changes in all of these enzyme activities were abolished by wortmannin. The inactivation of GSK-3 and activation of PKB by insulin were associated with their phosphorylation and this was also reversed by wortmannin. The addition of protein phosphatase-1 inhibitors, okadaic acid and calyculin A, completely abolished the effects of insulin on both enzymes. These data suggest that stimulation of glycogen synthase by insulin in HepG2 cells is mediated through the PI-3 kinase pathway by activating PKB and PP-1G and inactivating GSK-3. On the other hand, inactivation of phosphorylase by insulin is mediated through the PI-3 kinase pathway involving a rapamycin-sensitive p70s6k and PP-1G. These experiments demonstrate that insulin regulates glycogen phosphorylase and glycogen synthase through (i) a common signaling pathway at least up to PI-3 kinase and bifurcates downstream and (ii) that PP-1 activity is essential for the effect of insulin. 相似文献
20.
气道高反应的发病机制目前仍然不清楚,但人多数人认同是气道的一种慢性炎症。近十年来,上皮缺陷学说逐渐成为解释气道高反应机制的主流观点。气道上皮不再被仅仅看作为单纯的机械屏障,而是机体内环境与外部环境相互作用的界面。气道上皮具有广泛的生理作用,包括抗氧化、内分泌和外分泌、黏液运输、生物代谢、结构性黏附、损伤修复、应激或炎症信号传递、抗原递呈作用等。借助这些生理作用,支气管上皮细胞在气道局部微环境稳态维持中发挥重要作用。有理由相信,气道上皮的结构完整性缺陷或功能紊乱是哮喘和慢性阻塞性肺疾病等气道高反应性疾病的启动环节。 相似文献