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1.
Nogo-B在血管损伤、组织修复和炎症反应中发挥重要作用。然而,Nogo-B在动脉粥样硬化中的作用仍不明确。本研究拟在巨噬细胞中探讨Nogo-B对巨噬细胞泡沫化的影响。在RAW264.7细胞中沉默Nogo-B后,采用氧化低密度脂蛋白(Ox-LDL)或DiI修饰的Ox-LDL诱导巨噬细胞泡沫化;通过激光共聚焦显微镜观察巨噬细胞中荧光脂质,并在透射电镜下观察各组细胞中自噬泡;采用Western 印迹分析Plin2、p62和LC3-II的蛋白质水平;采用实时荧光定量PCR检测p62 mRNA水平;采用氯喹处理以及mRFP-GFP-LC3双荧光体系分析自噬流功能;进一步过表达Nogo-B后,比较巨噬细胞中脂质负荷程度以及Plin2、p62和LC3-II的蛋白质水平。结果显示,DiI-Ox-LDL处理后,Nogo-B沉默组细胞中脂质负荷程度高于对照组(2.34±0.67 vs. 0.69±0.14,P<0.05);Ox-LDL处理后,Nogo-B沉默组细胞中自噬泡数量(8.67±0.58 vs. 4.33±0.58,P<0.01)、Plin2(4.65±0.50 vs. 3.24±0.71,P<0.05)、p62(10.13±1.79 vs. 5.76±1.84,P<0.05)和LC3-II(4.38±0.20 vs. 2-33±1.56,P<0.01)的蛋白质水平均显著高于对照组,而p62 mRNA水平无差异(P>0.05);进一步研究发现,Nogo-B沉默组的自噬流被抑制了;过表达Nogo-B后,虽然p62蛋白质水平无明显变化,但是细胞中脂质负荷程度显著低于对照组(1.68±1.06 vs. 4.94±0.70,P<0.05),Plin2和LC3-II的蛋白质水平也明显降低。上述结果表明,Nogo-B通过促进自噬流抑制了Ox-LDL诱导的巨噬细胞泡沫化,Nogo-B可能具有抗动脉粥样硬化的作用。  相似文献   

2.
氧化低密度脂蛋白(oxygenized low density lipoprotein, ox-LDL)诱导人脐静脉内皮细胞(human umbilical vein endothelial cells, HUVECs)损伤有助于动脉粥样硬化(atherosclerosis, AS)的发展。但ox-LDL对HUVECs自噬的影响及机制尚不清楚。为探究其机制,采用体外培养HUVECs,建立ox-LDL损伤模型。透射电子显微镜观察HUVECs中自噬体的变化;Western印迹法检测p-AMPK、AMPK、p-mTOR、mTOR及Beclin1、LC3-II、P62的表达。结果显示,与对照组比较,透射电子显微镜下观察到ox-LDL组的自噬体明显增多。Western印迹结果显示,与对照组比较,ox-LDL组Beclin1(0.81±0.04 vs. 1.83±0.11,P<0.01)、LC3-II(0.80±0.06 vs. 1.61±0.06, P<0.01)和P62(0.65±0.10 vs. 1.64±0.17, P<0.01)表达显著增高。ox-LDL和BafilomycinA1共同干预组Beclin-1(3.15±0.15 vs. 3.17±0.13, P>0.05)、LC3-II(2.95±0.12 vs. 2.96±0.12, P >0.05)和P62(3.26±0.15 vs. 3.19±0.15, P>0.05)表达与BafilomycinA1组无显著差异,ox-LDL未使自噬起始增加,可能是降解受损导致自噬体的积累。与对照组比较,ox-LDL增加p-AMPK (0.47±0.03 vs. 0.96±0.03, P<0.01)表达,并降低p-mTOR(0.86±0.04 vs. 0.25±0.05, P<0.01)表达。单独阻断mTOR时, Beclin-1(0.81±0.05 vs. 2.19±0.17, P<0.01)、LC3-II(0.76±0.13 vs 2.00±0.05, P<0.01)和P62(0.74±0.12 vs. 1.94±0.11, P<0.01)表达显著增加。亮氨酸(Leucine)可增加p-mTOR(0.87±0.11 vs. 1.67±0.07, P<0.01)表达,并降低Beclin-1(0.81±0.05 vs. 0.37±0.03, P<0.01)、LC3-II(0.76±0.13 vs. 0.41±0.02, P<0.01)和P62(0.76±0.10 vs. 0.44±0.04, P<0.01)表达,但ox-LDL可使Leucine预处理后的p-mTOR(1.67±0.11 vs. 0.82±0.02, P<0.01)表达显著降低,并且Beclin-1(0.37±0.03 vs. 0.78±0.04, P<0.01)、LC3-II(0.41±0.02 vs. 0.78±0.02, P<0.01)和P62(0.44±0.04 vs. 0.74±0.04, P<0.01)表达显著增加。说明mTOR参与ox-LDL诱导的自噬。与ox-LDL组相比,ox-LDL和Si-AMPK共同处理组p-mTOR(0.25±0.05 vs. 0.46±0.03, P<0.01)表达增加以及Beclin-1(1.97±0.04 vs. 1.26±0.12, P<0.01)、LC3-II(1.42±0.10 vs. 0.95±0.05, P<0.01)和P62(1.58±0.09 vs. 0.98±0.11, P<0.01)表达降低。以上结果表明,ox-LDL通过AMPK/mTOR途径诱导HUVECs发生自噬,并且导致自噬体的积累。  相似文献   

3.
自噬和凋亡是乳腺癌细胞数量和活力减少的重要因素,低频超声对肿瘤细胞的作用引起了研究者们的广泛兴趣,但是低频超声对乳腺癌细胞自噬和凋亡的作用尚不清楚。该文采用功率0.5 W/cm2的1 MHz低频超声联合微泡造影剂,作用于人乳腺癌细胞株MDA-MB-231 60s后,吖啶橙染色,电镜观察自噬的数量,Western blot检测微管相关蛋白轻链3-II(microtubule associated protein1 light chain 3-II,LC3-II)、自噬相关基因5(autophagy related 5,ATG5)和SQSTM1(sequestosome 1)/p62蛋白质水平变化,分别分析自噬的水平。Western blot检测caspase-3,膜联蛋白V/PI染色和DAPI染色方法分析MDA-MB-231细胞凋亡水平。ATG5 si RNA转染细胞可抑制自噬,caspase抑制剂Z-VAD-FMK可抑制凋亡,使用CCK-8分析自噬和凋亡对MDA-MB-231细胞的作用。结果显示,低频超声联合微泡造影剂促使LC3-II和ATG5蛋白质表达水平显著升高,而使SQSTM1/p62蛋白质表达水平显著下降(P0.05)。透射电镜和共聚焦观察发现,MDA-MB-231细胞自噬体数量增加。低频超声联合微泡造影剂促使caspase-3蛋白质表达水平升高,凋亡率增加。抑制自噬和凋亡后均明显缓解低频超声联合微泡造影剂对细胞活力的抑制作用(P0.05)。该研究结果说明,低频超声联合微泡造影剂通过激活自噬和凋亡抑制乳腺癌细胞株MDA-MB-231的增殖活力。  相似文献   

4.
自噬在保护脊髓神经元细胞氧化应激损伤中具有重要的作用。紫檀芪(pterostilbene,PTE)是具有抗氧化作用的天然植物的提取物,但其对神经元细胞的作用及其机制尚不清楚。该文采用CCK-8分析PTE对大鼠原代脊髓神经元细胞的细胞毒性;不同浓度PTE作用神经元细胞24 h和48 h,透射电镜和Western blot检测微管相关蛋白轻链3-II(microtubule-associated protein 1 light chain3-II,MAP1LC3-II)、Beclin-1和P62蛋白质水平并分析自噬水平。PTE处理H2O2作用下的神经元细胞24 h,Western blot检测LC3-II水平,GFP-LC3转染观察自噬的数量。2′,7′-二氯二氢荧光素乙酰乙酸(2′,7′-dichloro-djhydrofl uorescein diacetate,DCFDA)和Mito SOX染色分析细胞活性氧(reactive oxygen species,ROS)水平,自噬相关基因5(autophagy related gene 5,ATG5)si RNA转染分析自噬在其中的作用。结果显示,20μmmol/L PTE对于神经元细胞无细胞毒性,PTE作用下神经元细胞中LC3-II、Beclin-1蛋白质水平呈剂量依懒性升高,而P62则呈剂量依懒性下降(P0.05)。PTE增加H2O2作用下的神经元细胞中LC3-II蛋白质水平(P0.05),自噬体数量增加,PTE可提高神经元细胞中自噬体数量。PTE明显降低神经元细胞中ROS水平,但ATG5 si RNA转染抑制自噬后显著逆转PTE的保护作用。该研究结果提示,PTE可能通过提高氧化应激状态下的脊髓神经元细胞自噬水平来抑制细胞ROS的产生。  相似文献   

5.
摘要 目的:探讨胱氨酸尿症中高胱氨酸浓度对大鼠肾脏自噬水平的影响。方法:通过液相色谱串联质谱(LC-MS/MS)测定Slc7a9基因敲除大鼠24小时尿液胱氨酸浓度确定高尿胱氨酸;通过IHC(免疫组织化学)染色筛选无结石产生的胱氨酸尿症大鼠、观察肾脏组织结构有无明显变化;通过Western blot测定肾脏组织中的LC3-I、LC3-II、p62和mTOR的蛋白相对表达量,以检测自噬水平的变化,并探索变化原因;通过组织切片Masson染色法检测肾脏髓质纤维化程度。结果:10只无结石胱氨酸尿症大鼠尿液胱氨酸显著高于对照组;未发现有胱氨酸结石的生成与肾脏结构性变化;Masson染色提示胱氨酸尿症大鼠发现轻度肾脏纤维化过程;肾脏组织自噬标记蛋白LC3-I、LC3-II蛋白相对表达量、LC3-II/LC3-I比值以及自噬当量p62相对表达较对照组均显著降低,mTOR相对表达量显著升高。以上差异均有统计学意义(P<0.05)。结论:在胱氨酸尿症大鼠模型上,发现无结石形成情况下的尿高胱氨酸水平可通过mTOR途径抑制大鼠肾脏组织的自噬水平,自我保护作用减弱,由此参与胱氨酸尿症的肾脏损伤过程。  相似文献   

6.
摘要 目的:建立三阴性乳腺癌MDA-MB-231/顺铂(DDP)耐药细胞株,探讨转化生长因子β1(TGF-β1)调控三阴性乳腺癌DDP耐药的机制。方法:采用小剂量间歇诱导法建立MDA-MB-231耐药细胞株(MDA-MB-231/DDP),在MDA-MB-231/DDP中构建TGF-β1沉默细胞并分为TGF-β1沉默组(sh-TGF-β1)、阴性对照组以及对照组,实时定量聚合酶链反应(RT-qPCR)检测TGF-β1含量。另取MDA-MB-231细胞和MDA-MB-231/DDP细胞分为MDA-MB-231组(正常培养MDA-MB-231敏感细胞)、MDA-MB-231-DDP组(正常培养MDA-MB-231 DDP耐药细胞)、TGFβ1-shRNA组(MDA-MB-231 DDP细胞转染TGFβ1-shRNA慢病毒载体)和MDA-MB-231-DDP+3-MA组(MDA-MB-231 DDP细胞给予5mM 3-MA处理2 h)。细胞计数试剂盒(CCK-8)法检测耐药株的半数抑制浓度(IC50),并计算耐药指数及逆转耐药指数,RT-qPCR检测TGF-β1含量,蛋白印迹法(Western blot)检测TGF-β1、自噬相关蛋白LC3-I、LC3-II表达量,激光共聚焦显微镜观察自噬流的变化,应用SPSS 20.0软件进行统计分析。结果:成功建立DDP耐药细胞株MDA-MB-231/DDP,耐药指数为5.231;MDA-MB-231/DDP细胞的TGF-β1 mRNA表达和蛋白表达较MDA-MB-231细胞显著上调(P<0.05)。DDP耐药细胞MDA-MB-231/DDP中自噬相关蛋白LC3-II/LC3-I表达较MDA-MB-231细胞显著升高(P<0.05);应用自噬抑制剂3-甲基腺嘌呤(3-MA)后MDA-MB-231/DDP细胞自噬相关蛋白LC3-II/LC3-I表达显著下降(P<0.05);沉默MDA-MB-231/DDP细胞的TGF-β1基因后,DDP耐药细胞株的耐药指数从5.231下降到3.404,同时自噬相关蛋白LC3-II/LC3-I表达降低(P<0.05),且激光共聚焦显微镜观察到黄色和红色斑点的显著减少,表明自噬受到抑制。结论:TGF-β1与三阴性乳腺癌DDP耐药有关,其机制可能是增加自噬引起MDA-MB-231细胞DDP耐药。通过沉默TGF-β1可降低自噬水平,恢复三阴性乳腺癌细胞对DDP的敏感性。  相似文献   

7.
为探究自噬抑制剂6-氨基-3-甲基腺嘌呤(3-methyladenine,3-MA)对损伤细胞氧化应激水平的影响,将3-MA作用于H2O2诱导的PC12细胞损伤模型,以自噬增强剂雷帕霉素(rapamycin,Rap)作为对照,探讨自噬与氧化应激的关系。测定线粒体的膜电位和细胞内的活性氧(reactive oxygen species, ROS)与丙二醛(malondialdehyde, MDA)含量,以及超氧化物歧化酶(superoxide dismutase,SOD)和过氧化氢酶(catalase,CAT)活性,评价损伤细胞的氧化应激状态。单丹(磺)酰戊二胺(monodansylcadaverine,MDC)染色,观察损伤细胞的自噬情况。蛋白质印迹分析损伤细胞中的自噬相关蛋白质LC3-II/LC3-I比值变化。实验结果显示:与正常组相比,H2O2损伤细胞的ROS水平上升到正常组的141%,MDA含量增加(P<0.001);CAT与SOD酶活力显著降低(P<0.001),差异均有统计学意义,证明损伤细胞氧化应激水平增加;MDC染色结果表明,H2O2组自噬明显增加。Western印迹结果表明,LC3-II/LC3-I值显著升高(P<0.05);与损伤组相比,3-MA组MDC染色结果表明,自噬水平降低。Western印迹结果表明,LC3-II/LC3-I值下降;细胞内ROS水平升高,增加到正常组的208%。MDA含量增加(P<0.001),CAT、SOD酶活力降低(P<0.001)。综上结果表明,自噬抑制剂可增加H2O2诱导的PC12细胞损伤模型的氧化应激水平,增加细胞凋亡。  相似文献   

8.
目的研究内质网应激分子CHOP调控细胞凋亡与自噬的作用和机制。 方法利用衣霉素诱导DU-145细胞产生内质网应激,Western Blot法检测内质网应激相关分子Grp78、Grp94、p-eIF2α和CHOP及自噬蛋白LC3Ⅱ、Atg5和Beclin1的表达;用流式细胞术检测细胞凋亡水平;沉默CHOP基因,用Western Blot法检测凋亡蛋白PARP、Caspase3的表达,流式细胞术检测细胞凋亡;并利用免疫荧光检测自噬标志性蛋白LC3B的表达。 结果衣霉素诱导DU-145细胞内质网应激能诱导一定程度的细胞凋亡,衣霉素处理8、12、24?h的细胞凋亡率分别为3.27﹪±1.02﹪,8.97﹪±0.71﹪和11.67﹪±1.41﹪,处理12?h及24?h的细胞凋亡率与对照组相比差异具有统计学意义(P < 0.01)。同时也能通过抑制PI3K/AKt/mTOR信号通路激活DU-145细胞自噬。CHOP基因沉默抑制细胞凋亡,shCtrl组细胞凋亡率为32.17﹪±3.93﹪,shCHOP-1组细胞凋亡率为23.53﹪±3.41﹪,两组相比差异具有统计学意义(P < 0.05)。且CHOP基因沉默能促进细胞自噬分子LC3B的表达。 结论衣霉素诱导DU-145细胞内质网应激状态下,CHOP在细胞凋亡与自噬之间发挥双重调控作用。  相似文献   

9.
肠道病毒A71型(Enterovirus-A71, EV-A71)能够活化宿主细胞的自噬并依赖自噬促进其复制,然而EV-A71的亚单位蛋白对自噬的活化目前仍不清楚。为探讨EV-A71亚单位蛋白对人横纹肌肉瘤(Human rhabdomyosarcoma, RD)细胞自噬活化的影响,将EV-A71的亚单位蛋白重组真核质粒转染至RD细胞,采用抑制剂MK-2206阻断PI3K/Akt途径,共聚焦显微镜和免疫印迹检测自噬活化。过表达EV-A71亚单位蛋白的RD细胞中PI3K/Akt途径、p38、JNK和ERK途径均呈现不同程度活化,同时RD细胞呈现出绿色荧光表明自噬发生活化,特别是EV-A71的VP2和2A。EV-A71亚单位蛋白使LC3-II/LC3-I的转化水平提升,EV-A71亚单位蛋白(VP2、VP3、VP4、2A、2B和2C)显著提升p62的表达水平,EV-A71 VP1显著下调p62的表达水平但显著上调LAMP-1和LAMP-2的表达水平。阻断PI3K/Akt途径后,过表达EV-A71亚单位蛋白的RD细胞绿色荧光强度显著减弱、自噬被阻断,同时LC3-II/LC3-I的转化水平显著降...  相似文献   

10.
地塞米松注射可以缓解椎间盘退变引起的腰痛症状,但是具有一定的副作用。普伐他汀(Pravastatin)被发现可以缓解骨关节炎的炎症和症状,但是其对髓核细胞及椎间盘退变的作用及其机制尚不清楚。该文培养SD大鼠原代髓核细胞,用不同浓度地塞米松(dexamethasone,DXM)作用髓核细胞48 h后, DCFH-DA和MitoSOX Red染色分析细胞总活性氧(reactive oxygen species, ROS)和线粒体ROS水平, Annexin V/PI流式和DAPI染色分析细胞凋亡水平, N-acetyl-Lcysteine(NAC)抑制ROS水平。Western blot检测LC3-II、Beclin-1和P62等自噬相关蛋白质水平,ATG5 siRNA转染抑制自噬。结果显示,随着DXM处理浓度的增加,髓核细胞内总ROS和线粒体ROS水平及凋亡率升高(P0.05)。Pravastatin增加DXM处理下髓核细胞中LC3-II和Beclin-1蛋白质水平,降低P62蛋白质水平(P0.05)。Pravastatin可以抑制DXM诱导的髓核细胞中的ROS产生和细胞凋亡,而ATG5 siRNA抑制自噬后,显著逆转Pravastatin对细胞的保护作用(P0.05)。该研究结果提示, Pravastatin可能通过激活髓核细胞自噬抑制DXM诱导的ROS产生从而减少细胞凋亡。  相似文献   

11.
Lim J  Kim HW  Youdim MB  Rhyu IJ  Choe KM  Oh YJ 《Autophagy》2011,7(1):51-60
Accumulating evidence has revealed that autophagy may be beneficial for treatment of neurodegenerative diseases through removal of abnormal protein aggregates. However, the critical autophagic events during neurodegeneration remain to be elucidated. Here, we investigated whether prototypic autophagic events occur in the MN9D dopaminergic neuronal cell line upon exposure to N-methyl-4-phenylpyridinium (MPP (+) ), a well-known dopaminergic neurotoxin. MPP (+) treatment induced both morphological and biochemical characteristics of autophagy, such as accumulation of autophagic vacuoles and LC3-II form and decreased p62 levels. Further investigation revealed that these phenomena were largely the consequences of blocked autophagic flux. Following MPP (+) treatment, levels of LC3-II formed and p62 dramatically increased in the Triton X-100-insoluble fraction. Levels of ubiquitinated proteins also increased in this fraction. Further colocalization analyses revealed that the punctated spots positive for both p62 and LC3 were more intense following MPP (+) treatment, suggesting drug-induced enrichment of these two proteins in the insoluble fraction. Intriguingly, reciprocal immunoprecipitation analysis revealed that p62 mainly precipitated with LC3-II form following MPP (+) treatment. Transient transfection of the mutant form of Atg4B, Atg4B (C74A) , which inhibits LC3 processing, dramatically decreased binding between p62 and LC3-II form. Taken together, our results indicate that p62 can be efficiently localized to autophagic compartments via preferential binding with LC3-II form. This colocalization may assist in removal of detergent-insoluble forms of damaged cellular proteins during dopaminergic neurotoxin-induced impairment of autophagic flux.  相似文献   

12.
Environmental exposure to cadmium (Cd) links to neurodegenerative disorders. Autophagy plays an important role in controlling cell survival/death. However, how autophagy contributes to Cd's neurotoxicity remains enigmatic. Here, we show that Cd induced significant increases in autophagosomes with a concomitant elevation of LC3-II and p62 in PC12 cells and primary neurons. Using autophagy inhibitor 3-MA, we demonstrated that Cd-increased autophagosomes contributed to neuronal apoptosis. Impairment of Cd on autophagic flux was evidenced by co-localization of mCherry and GFP tandem-tagged LC3 puncta in the cells. This is further supported by the findings that administration of chloroquine (CQ) potentiated the basic and Cd-elevated LC3-II and p62 levels, autophagosome accumulation and cell apoptosis, whereas rapamycin relieved the effects in the cells in response to Cd. Subsequently, we noticed that Cd evoked the phosphorylation of Akt and BECN1. Silencing BECN1 and especially expression of mutant BECN1 (Ser295A) attenuated Cd-increased autophagosomes and cell death. Of note, inhibition of Akt with Akt inhibitor X, or ectopic expression of dominant negative Akt (dn-Akt), in the presence or absence of 3-MA, significantly alleviated Cd-triggered phosphorylation of Akt and BECN1, autophagosomes, and apoptosis. Importantly, we found that Cd activation of Akt functioned in impairing autophagic flux. Collectively, these results indicate that Cd results in accumulation of autophagosomes-dependent apoptosis through activating Akt-impaired autophagic flux in neuronal cells. Our findings underscore that inhibition of Akt to improve autophagic flux is a promising strategy against Cd-induced neurotoxicity and neurodegeneration.  相似文献   

13.
《Autophagy》2013,9(11):1577-1589
Ethanol is a neuroteratogen and neurodegeneration is the most devastating consequence of developmental exposure to ethanol. The mechanisms underlying ethanol-induced neurodegeneration are complex. Ethanol exposure produces reactive oxygen species (ROS) which cause oxidative stress in the brain. We hypothesized that ethanol would activate autophagy to alleviate oxidative stress and neurotoxicity. Our results indicated that ethanol increased the level of the autophagic marker Map1lc3-II (LC3-II) and upregulated LC3 puncta in SH-SY5Y neuroblastoma cells. It also enhanced the levels of LC3-II and BECN1 in the developing brain; meanwhile, ethanol reduced SQSTM1 (p62) levels. Bafilomycin A1, an inhibitor of autophagosome and lysosome fusion, increased p62 levels in the presence of ethanol. Bafilomycin A1 and rapamycin potentiated ethanol-increased LC3 lipidation, whereas wortmannin and a BECN1-specific shRNA inhibited ethanol-promoted LC3 lipidation. Ethanol increased mitophagy, which was also modulated by BECN1 shRNA and rapamycin. The evidence suggested that ethanol promoted autophagic flux. Activation of autophagy by rapamycin reduced ethanol-induced ROS generation and ameliorated ethanol-induced neuronal death in vitro and in the developing brain, whereas inhibition of autophagy by wortmannin and BECN1-specific shRNA potentiated ethanol-induced ROS production and exacerbated ethanol neurotoxicity. Furthermore, ethanol inhibited the MTOR pathway and downregulation of MTOR offered neuroprotection. Taken together, the results suggest that autophagy activation is a neuroprotective response to alleviate ethanol toxicity. Ethanol modulation of autophagic activity may be mediated by the MTOR pathway.  相似文献   

14.
Ethanol is a neuroteratogen and neurodegeneration is the most devastating consequence of developmental exposure to ethanol. The mechanisms underlying ethanol-induced neurodegeneration are complex. Ethanol exposure produces reactive oxygen species (ROS) which cause oxidative stress in the brain. We hypothesized that ethanol would activate autophagy to alleviate oxidative stress and neurotoxicity. Our results indicated that ethanol increased the level of the autophagic marker Map1lc3-II (LC3-II) and upregulated LC3 puncta in SH-SY5Y neuroblastoma cells. It also enhanced the levels of LC3-II and BECN1 in the developing brain; meanwhile, ethanol reduced SQSTM1 (p62) levels. Bafilomycin A1, an inhibitor of autophagosome and lysosome fusion, increased p62 levels in the presence of ethanol. Bafilomycin A1 and rapamycin potentiated ethanol-increased LC3 lipidation, whereas wortmannin and a BECN1-specific shRNA inhibited ethanol-promoted LC3 lipidation. Ethanol increased mitophagy, which was also modulated by BECN1 shRNA and rapamycin. The evidence suggested that ethanol promoted autophagic flux. Activation of autophagy by rapamycin reduced ethanol-induced ROS generation and ameliorated ethanol-induced neuronal death in vitro and in the developing brain, whereas inhibition of autophagy by wortmannin and BECN1-specific shRNA potentiated ethanol-induced ROS production and exacerbated ethanol neurotoxicity. Furthermore, ethanol inhibited the MTOR pathway and downregulation of MTOR offered neuroprotection. Taken together, the results suggest that autophagy activation is a neuroprotective response to alleviate ethanol toxicity. Ethanol modulation of autophagic activity may be mediated by the MTOR pathway.  相似文献   

15.
Autophagy, a well-observed intracellular lysosomal degradation process, is particularly important to the cell viability in diabetic cardiomyopathy (DCM). Peroxidasin (PXDN) is a heme-containing peroxidase that augments oxidative stress and plays an essential role in cardiovascular diseases, while whether PXDN contributes to the pathogenesis of DCM remains unknown. Here we reported the suppression of cell viability and autophagic flux, as shown by autophagosomes accumulation and increased expression level of LC3-II and p62 in cultured H9C2 and human AC16 cells that treated with 400 μM palmitate acid (PA) for 24 h. Simultaneously, PXDN protein level increased. Moreover, cell death, autophagosomes accumulation as well as increased p62 expression were suppressed by PXDN silence. In addition, knockdown of PXDN reversed PA-induced downregulated forkhead box-1 (FoxO1) and reduced FoxO1 phosphorylation, whereas did not affect AKT phosphorylation. Not consistent with the effects of si-PXDN, double-silence of PXDN and FoxO1 significantly increased cell death, suppressed autophagic flux and declined the level of FoxO1 and PXDN, while the expression of LC3-II was unchanged under PA stimulation. Furthermore, inhibition of FoxO1 in PA-untreated cells induced cell death, inhibited autophagic flux, and inhibited FoxO1 and PXDN expression. Thus, we come to conclusion that PXDN plays a key role in PA-induced cell death by impairing autophagic flux through inhibiting FoxO1, and FoxO1 may also affect the expression of PXDN. These findings may develop better understanding of potential mechanisms regarding autophagy in insulin-resistant cardiomyocytes.Subject terms: Macroautophagy, RNAi  相似文献   

16.
Bak is a prototypic pro-apoptotic Bcl-2 family protein expressed in a wide variety of tissues and cells. Recent studies have revealed that Bcl-2 family proteins regulate apoptosis as well as autophagy. To investigate whether and how Bak exerts a regulatory role on autophagy-related events, we treated independent cell lines, including MN9D neuronal cells, with nigericin, a K(+)/H(+) ionophore. Treatment of MN9D cells with nigericin led to an increase of LC3-II and p62 levels with concomitant activation of caspase. Ultrastructural examination revealed accumulation of autophagic vacuoles and swollen vacuoles in nigericin-treated cells. We further found that the LC3-II accumulated as a consequence of impaired autophagic flux and the disrupted degradation of LC3-II in nigericin-treated cells. In this cell death paradigm, both transient and stable overexpression of various forms of Bak exerted a protective role, whereas it did not inhibit the extent of nigericin-mediated activation of caspase-3. Subsequent biochemical and electron microscopic studies revealed that overexpressed Bak maintained autophagic flux and reduced the area occupied by swollen vacuoles in nigericin-treated cells. Similar results were obtained in nigericin-treated non-neuronal cells and another proton ionophore-induced cell death paradigm. Taken together, our study indicates that a protective role for Bak during ionophore-induced cell death may be closely associated with its regulatory effect on maintenance of autophagic flux and vacuole homeostasis.  相似文献   

17.
Epigallocatechin gallate (EGCG) is a major polyphenol in green tea with beneficial effects on the impairment in learning and memory. Autophagy is a cellular process that protects neurons from stressful conditions. The present study was designed to investigate whether EGCG can rescue chronic unpredictable mild stress (CUMS)-induced cognitive impairment in rats and whether its protective effect involves improvement of autophagic flux. As expected, our results showed that CUMS significantly impaired memory performance and inhibited autophagic flux as indicated by elevated LC3-II and p62 protein levels. At the same time, we observed an increased neuronal loss and activated mammalian target of rapamycin (mTOR)/p70 ribosomal protein S6 kinase (p70S6k) signaling in the CA1 regions. Interestingly, chronic treatment with EGCG (25 mg/kg, i.p.) significantly improved those behavioral alterations, attenuated histopathological abnormalities in hippocampal CA1 regions, reduced amyloid beta1–42 (Aβ1−42) levels, and restored autophagic flux. However, blocking autophagic flux with chloroquine, an inhibitor of autophagic flux, reversed these effects of EGCG. Taken together, these findings suggest that the impaired autophagy in CA1 regions of CUMS rats may contribute to learning and memory impairment. Therefore, we conclude that EGCG attenuation of CUMS-induced learning and memory impairment may be through rescuing autophagic flux.  相似文献   

18.
Autophagy is a lysosomal degradative process that is closely related to the pathogenesis of vascular calcification. Recent evidence suggests that periostin (POSTN) is a unique extracellular matrix protein that is associated with diabetic vascular complications. The aim of current study is to investigate the role of POSTN in diabetic vascular calcification and the underlying mechanisms. Results showed that POSTN was highly upregulated in both calcified arteries of diabetic rats and AGEs-BSA mediated vascular smooth muscle cell (VSMC) calcification. POSTN blocked autophagic flux during the diabetic calcification process, as evidenced by increased protein expression of Beclin1, LC3-II, and P62, as well as the co-localization of LC3-II and LAMP1. Inhibition of POSTN alleviated AGEs-BSA-induced autophagic flux blockade, thereby attenuating AGEs-BSA-induced VSMC calcification. Mechanistically, the upregulation of POSTN impaired the fusion of autophagosomes and lysosome and resulted in the autophagic flux blockade in AGEs-BSA-treated VSMC. Furthermore, this autophagic blockade was intracellular ROS-dependent. In summary, this study uncovered a novel mechanism of POSTN in autophagy regulation of diabetic vascular calcification.  相似文献   

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