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1.
Nrf2可调节多种抗氧化酶的表达,Nrf2的缺失可能影响机体的运动能力,而低氧可提高机体的抗氧化能力并改善运动能力。为了考察低氧运动对Nrf2基因敲除大鼠运动能力和氧化应激的影响,本研究分别在常氧和低氧环境(12%氧浓度)中对野生型大鼠和Nrf2敲除大鼠进行4周的跑台运动。研究显示,低氧运动可提高野生型大鼠的跑台运动力竭时间,Nrf2敲除可缩短大鼠的力竭时间;低氧运动可上调大鼠的Nrf2 m RNA表达量;Nrf2敲除明显抑制HIF-1α蛋白表达,而低氧运动可上调野生型和Nrf2敲除大鼠的HIF-1α蛋白表达;Nrf2敲除大鼠的骨骼肌ROS水平明显升高,并且低氧均可降低野生型和Nrf2敲除大鼠骨骼肌ROS水平。低氧运动可上调Nrf2敲除大鼠的CAT和GSH-PX蛋白表达。苏木精和伊红(HE)染色显示,Nrf2敲除大鼠在力竭跑台运动完成后出现更严重的骨骼肌病理改变,而低氧运动可减轻骨骼肌损伤。本研究认为,Nrf2敲除导致了大鼠骨骼肌中抗氧化酶的抑制及ROS的过量累积,从而造成了骨骼肌损伤并降低了运动能力。此外,低氧可通过上调Nrf2的表达,进而激活HIF-1α及抗氧化酶活性,从而提高运动能力,并防止骨骼肌损伤。  相似文献   

2.
萝卜硫素(sulforaphane,SFN)是一种在十字花科植物中含量丰富,且具有抗氧化效应的天然物质。本文基于核因子E2相关因子2(nuclear factor E2-related factor 2,Nrf2)介导的抗氧化系统,探究不同时长低温暴露对骨骼肌抗氧化酶的影响及SFN对低温暴露骨骼肌抗氧化能力的作用。首先,30只雄性C57BL/6N小鼠随机分为常温对照组(0 h组)、低温暴露1 h组(1 h组)和低温暴露3 h组(3 h组)。其次,40只雄性C57BL/6N小鼠随机分为PBS常温对照组(PBS+Con),PBS低温暴露3 h组(PBS+Cold),SFN常温对照组(SFN+Con)和SFN低温暴露3 h组(SFN+Cold)。小鼠在急性温度干预前腹腔注射4次SFN或等体积PBS。急性低温暴露后,取小鼠骨骼肌,试剂盒检测活性氧(ROS)水平、总抗氧化能力(T-AOC)、还原型谷胱甘肽(GSH)和氧化型谷胱甘肽(GSSG)含量;荧光实时定量PCR检测Nrf2介导的抗氧化酶和参与生成谷胱甘肽相关酶的mRNA转录水平;Western blot检测Nrf2介导的抗氧化酶蛋白表达。结果显示,与0和1 h组相比,3 h组小鼠骨骼肌Nrf 2和抗氧化酶基因(Gpx 1、Hmox1、Cat、Sod 1和Nqo 1)的mRNA转录水平显著降低,ROS水平显著增加。与PBS+Con组相比,PBS+Cold组小鼠骨骼肌Nrf2和抗氧化酶(HMOX1和CAT)蛋白表达、GSH/GSSG比值及T-AOC水平显著降低,而GSSG含量和ROS水平增加。与PBS+Cold组相比,SFN+Cold组小鼠骨骼肌Nrf 2 mRNA及其蛋白表达、抗氧化酶(HMOX1和SOD1)蛋白表达、抗氧化酶基因(Gpx 1、Hmox 1、Cat、Sod 1和Nqo 1)mRNA转录水平、参与GSH生成的酶基因(Gclm和Gss)mRNA转录水平、GSH/GSSG比值以及T-AOC水平显著提高,而GSSG含量和ROS水平显著降低。综上,3 h急性低温暴露降低了Nrf2介导的抗氧化作用。而低温暴露前给予SFN补充,则激活了Nrf2介导的抗氧化酶和谷胱甘肽抗氧化系统,增强了骨骼肌抗氧化能力。  相似文献   

3.
竹节人参皂苷对小鼠低氧/复氧损伤后抗氧化功能的影响   总被引:3,自引:0,他引:3  
目的:观察竹节人参主要成分竹节人参皂苷对小鼠低氧/复氧损伤后抗氧化功能的影响.方法:将小鼠用药物处理后,建立小鼠低氧/复氧损伤模型,观察小鼠血液中ROS、SOD、MDA、CAT的变化.结果:竹节人参、竹节人参总皂苷均能降低小鼠ROS和MDA值,增强SOD和CAT活性,二者作用强度相似.结论:竹节人参和竹节人参皂苷对小鼠低氧/复氧脂质过氧化损伤均有一定的抗氧化作用.  相似文献   

4.
5.
Zhao JP  Zhou ZG  Hu HL  Guo Z  Wang T  Zhen GH  Zhang ZX 《生理学报》2007,59(3):319-324
在低氧条件下,观察大鼠肺动脉平滑肌细胞(pulmonary arterial smooth muscle cells,PASMCs)中活性氧(reactive oxygen species,ROS)的变化,探讨ROS的变化是否通过调控低氧诱导因子-4α(hypoxia-inducible factor 1α, HIF-1α)的表达影响PASMCs的增殖。采用组织块法原代培养大鼠PASMCs,分成3组:常氧组(21%O2,24h),低氧组(5%O2,24h),低氧+Mn-TBAP组(5%O2,24h,Mn-TBAP是一种ROS清除剂)。用激光共聚焦显微镜荧光染色法检测细胞内ROS的变化;用RT-PCR和免疫组织化学方法分别测定HIF-1α mRNA和蛋白的表达;用MTT法检测细胞增殖程度。结果显示:(1)低氧组PASMCs内ROS水平明显高于常氧组(P〈0.05),低氧+Mn-TBAP组ROS水平明显低于低氧组(P〈0.05),但仍高于常氧组(P〈0.05);(2)低氧组及低氧+Mn-TBAP组的HIF-1α mRNA和蛋白表达均高于常氧组(P〈0.05),且低氧组表达高于低氧+Mn-TBAP组(P〈0.05);(3)低氧组细胞增殖明显高于常氧组和低氧+Mn-TBAP组(P〈0.05),低氧+Mn-TBAP组细胞增殖高于常氧组(P〈0.05)。结果表明:在低氧条件下大鼠PASMCs中ROS水平明显升高,RROS的变化能够调节HIF-1α的表达,进而影响平滑肌细胞的增殖,提示ROS可能在肺动脉高压的发病机制和低氧信号转导中具有重要作用。  相似文献   

6.
在营养液低氧胁迫处理下,研究了γ-氨基丁酸(GABA)处理对低氧敏感性不同的网纹甜瓜品种植株根和叶抗氧化酶活性和活性氧(ROS)含量的影响.结果表明:在低氧胁迫下,GABA处理提高了网纹甜瓜植株根和叶抗氧化酶SOD、POD、CAT活性,降低了H2O2、O2-·、MDA等ROS含量,其中GABA 50mmol/L处理效果显著高于GABA 25和100 mmol/L的处理;与耐低氧性弱的"西域一号"品种相比,GABA处理对耐低氧性强的"东方星光"品种效果更明显,表明外源GABA处理通过促进抗氧化酶活性的提高,降低了低氧胁迫下植株体内ROS含量,增强植株的耐低氧的能力.  相似文献   

7.
组蛋白赖氨酸甲基转移酶2D (histone-lysine N-methyltransferase 2D, KMT2D) 作为主要的组蛋白3第4位赖氨酸 (H3K4) 甲基转移酶,在调控胚胎发育、组织分化、代谢和肿瘤抑制方面发挥重要作用。在小鼠体内,敲除Kmt2d会导致严重的心脏发育缺陷最终造成胚胎期死亡。低氧诱导因子-1α (hypoxia-inducible factor 1α, HIF-1α) 作为调节细胞应对低氧的关键转录因子,能够调控多种下游基因转录。有相关研究揭示,表观遗传调控者能够调节HIF-1α的稳定性和活性。同样,作为表观遗传调控者的组蛋白甲基转移酶KMT2D是否参与低氧条件下HIF-1α对下游基因的调控,目前仍未知。在本研究中,观察在Kmt2d正常或缺乏的情况下,心肌细胞H9c2对低氧环境的应答反应。结果显示,与常氧条件相比,低氧状态下HIF-1α、组蛋白乙酰化酶P300、KMT2D及其介导的H3K4一甲基化 (H3K4 mono-methylation, H3K4me1)的蛋白质水平增加 (P<0.05);HIF-1α下游基因血管内皮生长因子 (vascular endothelial growth factor, Vegf) 的mRNA表达水平明显上调 (P<0.01)。染色质免疫共沉淀实验 (chromatin immunoprecipitation assay, ChIP-qPCR) 检测结果显示,H3K4me1和组蛋白3第27位赖氨酸乙酰化 (histone 3 lysine 27 acetylation, H3K27ac) 在Vegf基因启动子区域的结合丰度明显增加 (P<0.05)。低氧条件下沉默Kmt2d之后,H3K4me1蛋白水平和Vegf的mRNA表达下降 (P<0.05)。本研究表明,低氧条件下KMT2D参与调控HIF-1α和下游基因Vegf的表达。  相似文献   

8.
组蛋白赖氨酸甲基转移酶2D (histone-lysine N-methyltransferase 2D, KMT2D) 作为主要的组蛋白3第4位赖氨酸 (H3K4) 甲基转移酶,在调控胚胎发育、组织分化、代谢和肿瘤抑制方面发挥重要作用。在小鼠体内,敲除Kmt2d会导致严重的心脏发育缺陷最终造成胚胎期死亡。低氧诱导因子-1α (hypoxia-inducible factor 1α, HIF-1α) 作为调节细胞应对低氧的关键转录因子,能够调控多种下游基因转录。有相关研究揭示,表观遗传调控者能够调节HIF-1α的稳定性和活性。同样,作为表观遗传调控者的组蛋白甲基转移酶KMT2D是否参与低氧条件下HIF-1α对下游基因的调控,目前仍未知。在本研究中,观察在Kmt2d正常或缺乏的情况下,心肌细胞H9c2对低氧环境的应答反应。结果显示,与常氧条件相比,低氧状态下HIF-1α、组蛋白乙酰化酶P300、KMT2D及其介导的H3K4一甲基化 (H3K4 mono-methylation, H3K4me1)的蛋白质水平增加 (P<0.05);HIF-1α下游基因血管内皮生长因子 (vascular endothelial growth factor, Vegf) 的mRNA表达水平明显上调 (P<0.01)。染色质免疫共沉淀实验 (chromatin immunoprecipitation assay, ChIP-qPCR) 检测结果显示,H3K4me1和组蛋白3第27位赖氨酸乙酰化 (histone 3 lysine 27 acetylation, H3K27ac) 在Vegf基因启动子区域的结合丰度明显增加 (P<0.05)。低氧条件下沉默Kmt2d之后,H3K4me1蛋白水平和Vegf的mRNA表达下降 (P<0.05)。本研究表明,低氧条件下KMT2D参与调控HIF-1α和下游基因Vegf的表达。  相似文献   

9.
低氧诱导因子1α(Hypoxia-inducible factor 1α,HIF-1α)和2α(Hypoxia-inducible factor 2α,HIF-2α)是诱导低氧基因和修复细胞氧内环境的核心调节因子,为了研究生活在青藏高原牦牛的繁殖机能对低氧环境的适应机制,采集卵泡期的5头成年母牦牛和母黄牛的下丘脑、脑垂体、卵巢、输卵管和子宫组织,利用RT-qPCR技术检测HIF-1α和HIF-2αm RNA的表达量。结果表明:HIF-1αmRNA在牦牛输卵管中表达量最高,牦牛脑垂体和输卵管表达量极显著高于黄牛(P0.01)。HIF-2αmRNA在牦牛脑垂体表达量极显著高于黄牛(P0.01),在输卵管表达量显著高于黄牛(P0.05)。说明在低氧环境条件下,母牦牛可能通过调节生殖生殖系统中HIF-1α和HIF-2α基因的表达维持其繁殖机能。  相似文献   

10.
高原鼠兔生活在青藏高原海拔3 000~5 000 m的区域,具有极强的低温、低氧耐受能力.低氧诱导因子-1(HIF-1)是一种由HIF-1α和HIF-1β组成的异源二聚体转录因子,在生物体的低氧适应性调节中起着关键作用.低氧主要通过调节HIF-1α蛋白水平来影响HIF-1α的转录活性.本研究用DNA重组技术将高原鼠兔HIF-1α(pHIF-1α)(538/822)编码基因序列亚克隆至原核表达载体PGEX- 4T-1中,并在大肠杆菌BL21菌株中进行高效诱导表达,获得可溶性表达产物.将纯化后的GST-pHIF-1α(538/822)融合蛋白作为免疫原免疫家兔制备多克隆抗体.免疫印迹结果表明,制备的抗体能够识别高原鼠兔HIF-1α蛋白.进一步利用亲和纯化的方法对此多克隆抗体进行了纯化.免疫印迹和免疫染色的结果表明,纯化的抗体可以用于检测外源以及内源的高原鼠兔HIF-1α蛋白的表达和定位,为后续的研究提供了重要的实验材料.  相似文献   

11.
低氧环境和运动训练均可导致人体体重降低,然而,低氧结合中强度训练对肥胖人群能量代谢及氧化应激的影响尚不清楚。本研究招募了60名无系统运动训练史的健康男性大学生,将受试者分为低氧组和常氧组,每组30名。在一个110 m^2的训练室内通过低氧训练系统模拟人工低氧环境(海拔高度:2 500 m,氧浓度:15%)。两组受试者进行1个月的低氧/常氧中强度骑行训练。此外,对低氧和常氧中强度训练的大鼠进行力竭跑台运动测试,苏木精和伊红(HE)染色评价大鼠骨骼肌形态学变化,RT-PCR检测低氧诱导因子1α(HIF-1α) mRNA的表达。研究显示,运动后低氧组的体重、脂肪重量和BMI均显著低于常氧组(p<0.05)。运动后低氧组的血清TC、HDL-C和LDL-C含量均显著低于常氧组(p<0.05),而总TG含量与常氧组无显著差异(p>0.05)。运动后,低氧组的游离脂肪酸含量显著高于常氧组(p<0.05),两组血糖无显著差异(p>0.05)。运动后,低氧组的SOD和GSH-PX水平显著高于常氧组(p<0.05),而MDA水平显著低于常氧组(p<0.05)。运动后,低氧组的IL-1β、IL-6和TNF-α水平显著低于常氧组(p<0.05)。力竭运动后,低氧组大鼠的骨骼肌形态学改变异常情况明显低于常氧组。低氧组的HIF-1αm RNA水平显著高于常氧组。本研究表明,与常氧相比,低氧中强度训练可有效降低肥胖人群的血脂水平,促进脂肪动员,减弱氧化应激损伤,抑制促炎细胞因子表达,从而促进体重减轻,并防止糖尿病、高血脂等肥胖相关疾病的发生。此外,低氧中强度可通过上调HIF-1α来提高机体抗氧化能力并减弱运动损伤。  相似文献   

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13.
Under pathological conditions such as ischemia-reperfusion, Nrf2 acts as a key regulator of cellular oxidative response. Provided that Nrf2 is sensitive to hypoxia during ischemia, Nrf2 may affect reactive oxygen species metabolism during reoxygenation. In this study, hypoxia suppressed Nrf2 protein, and its hypoxic suppression was not recovered with knockdown of the Nrf2 repressor Keap1. Moreover, an Nrf2 mutant lacking the Keap1 binding domain was suppressed under hypoxia, suggesting that Keap1 does not contribute to hypoxic Nrf2 suppression. HIF-1α and Siah2 are both key regulators of hypoxic responses. Hypoxia induced the Siah2 protein. Although inhibition or knockdown of Siah2 prevented the suppression of Nrf2, knockdown of HIF-1α did not. Moreover, Siah2 interacted with Nrf2 through a binding motif, suggesting that Siah2 contributes to the suppression of Nrf2. Some cytosolic kinases also play important roles in Nrf2 regulation. In this study, PKC phosphorylates serine residues of Nrf2 during hypoxia. Knockdown of Siah2 rescued hypoxic decreases in an Nrf2 mutant that mimicked phosphorylation at serine 40 or lacked this phosphorylation site, suggesting that Siah2 contributes to the degradation of Nrf2 irrespective of its phosphorylation status. Moreover, knockdown of Siah2 attenuated ubiquitination of the Nrf2 mutant, suggesting that association of Siah2 with Nrf2 causes proteasome-mediated degradation of Nrf2.  相似文献   

14.
B cells that interact with T cells play a role in regulating the defense function by producing antibodies and inflammatory cytokines. C-X-C chemokine receptor type 4 (CXCR4) is a specific receptor for stromal cell-derived factor 1 (SDF-1) that controls various B cell functions. Here, we investigated whether CXCR4 regulates B cell viability by inducing hypoxia-inducible factor (HIF)-1α and nuclear factor (erythroid-derived 2)-like 2 (Nrf2) under a hypoxic condition in WiL2-NS human B cells. Nrf2 and CXCR4 expressions increased significantly when WiL2-NS cells were incubated under a hypoxic condition. Interfering with CXCR4 expression using CXCR4-siRNA inhibited cell viability. CXCR4 expression also decreased after treatment with a HIF inhibitor under the hypoxic condition, leading to inhibited cell viability. Increased reactive oxygen species (ROS) levels and the expression of HIF-1α and Nrf2 decreased under the hypoxic condition following incubation with N-acetylcysteine, a ROS scavenger, which was associated with a decrease in CXCR4 expression. CXCR4 expression was augmented by overexpressing Nrf2 after transfecting the pcDNA3.1-Nrf2 plasmid. CXCR4 expression decreased and HIF-1α accumulation decreased when Nrf2 was inhibited by doxycycline in tet-shNrf2-expressed stable cells. Nrf2 or HIF-1α bound from −718 to −561 of the CXCR4 gene promoter as judged by a chromatin immunoprecipitation assay. Taken together, these data show that B cell viability under a hypoxic condition could be regulated by CXCR4 expression through binding of HIF-1α and Nrf2 to the CXCR4 gene promoter cooperatively. These results suggest that CXCR4 could be an additional therapeutic target to control B cells with roles at disease sites under hypoxic conditions.Subject terms: Stress signalling, Immune cell death  相似文献   

15.
During hypoxia, hypoxia-inducible factor-1alpha (HIF-1alpha) is required for induction of a variety of genes including erythropoietin and vascular endothelial growth factor. Hypoxia increases mitochondrial reactive oxygen species (ROS) generation at Complex III, which causes accumulation of HIF-1alpha protein responsible for initiating expression of a luciferase reporter construct under the control of a hypoxic response element. This response is lost in cells depleted of mitochondrial DNA (rho(0) cells). Overexpression of catalase abolishes hypoxic response element-luciferase expression during hypoxia. Exogenous H(2)O(2) stabilizes HIF-1alpha protein during normoxia and activates luciferase expression in wild-type and rho(0) cells. Isolated mitochondria increase ROS generation during hypoxia, as does the bacterium Paracoccus denitrificans. These findings reveal that mitochondria-derived ROS are both required and sufficient to initiate HIF-1alpha stabilization during hypoxia.  相似文献   

16.
Exercise endurance is closely related to the production and elimination of lactate in skeletal muscles. It has been confirmed in literature that nuclear factor erythroid-2-related factor 2 (Nrf2) plays an important role in exercise-induced skeletal muscle antioxidant, mitochondrial biosynthesis and energy metabolism. However, it is still unclear whether Nrf2 activation has any effect on lactate metabolism and exercise endurance under hypoxic environment. In this study, sulforaphane (SFN), the Nrf2 activator, was pretreated to mice and then the mice were subjected to an exhaustive exercise under hypoxia (11.2% O2). The results showed that the exhaustive exercise significantly increased the blood lactate level in PBS-exercise group (P<0.05). However, this indicator in the SFN-exercise group was only 76% of that in the PBS-exercise group (P<0.05). Also, the running distance increased from 577.0 ± 52.9 m to 636.3 ± 101.4 m and the duration increased by 1.1 times as well (P<0.05). Western blotting was used to determine the relative expression of proteins in skeletal muscles. Protein expression levels of Nrf2 and p-Nrf2 in the SFN-control and SFN-exercise group were significantly increased in soleus (P<0.05). In extensor digitorum longus, SFN pretreatment induced the expression of p-Nrf2 increased by 38% and 52%, respectively (P<0.05). In addition, SFN pretreatment promoted MCT1 protein expression in SFN-Control/ SFN-Exercise group and decreased MCT4 protein expression level in SFN-Exercise group (P<0.05). Meanwhile, the expression of LDH-B proteins in soleus was increased by 62% (P<0.05). In extensor digitorum longus, expression of LDH-B in the SFN-control and SFN-exercise group was increased by 1.35 times and 1.31 times, respectively (P<0.05). These results suggested that activation of Nrf2 by SFN could improve the lactate transport and metabolism capacity of skeletal muscle, which probably was one of the potential reasons for the increased exercise endurance of mice in the hypoxic environment. This study provided some theoretical reference for the practical application of SFN in athletes, mountaineers and highland workers.  相似文献   

17.
Hypoxia-inducible factor 1α (HIF-1α) plays a crucial role in facilitating tumor progression and metastasis. Reducing the levels of HIF-1α might therefore be an important anticancer strategy. This could be achieved by understanding the key cellular events involved in HIF-1α activation. Present study explored the effect of phenethyl isothiocyanate (PEITC), a natural isothiocyanate, found in cruciferous vegetables on the expression of HIF-1α and HSP90 in breast adenocarcinoma cell lines (MCF-7 and MDA-MB-231) under both normoxia and hypoxia. This study established the possible role of ROS in the up-regulation of these markers in breast cancer cells. PEITC-induced nuclear accumulation of Nrf2, increased the activities of several antioxidant enzymes, and thus reduced the ROS burden of the tumor cells by acting as an indirect antioxidant. This resulted in the down-regulation of HSP90 and thereby HIF-1α expression. HSP90 was also found to be involved in the regulation of HIF-1α. A probable link between down-regulation of HIF-1α with reduction of ROS by PEITC through induction of Nrf2 was determined. Finally, our study demonstrated that modulation of HIF-1α by PEITC retarded adhesion, aggregation, migration and invasion of the breast cancer cells, thereby showing anti-metastatic effect. Activities of MMPs (2 & 9) and expression of VEGF were also altered by PEITC.  相似文献   

18.
目的:探讨不同氧浓度下小鼠骨骼肌卫星细胞系(C2C12细胞)对H2O2刺激反应的变化及其机制。方法:小鼠骨骼肌卫星细胞系(C2C12细胞),经培养复苏后,将细胞分为7组,每组设8个复孔,各组分别加入浓度为0.1 mmol/L、0.25 mmol/L、0.5 mmol/L、0.75 mmol/L、1 mmol/L、2 mmol/L的H2O2,分别作用1 h、2 h后测细胞活力,选择细胞H2O2刺激的最佳作用时间和浓度;C2C12细胞分为不同氧浓度组:21% O2、12% O2、8% O2、5% O2每组设8个复孔,12 h后,H2O2作用1 h,收集细胞;检测细胞Nrf2蛋白荧光和蛋白表达量,测定Nrf2和抗氧化酶SOD1、SOD2、CAT、NQO-1、HO-1、GPX-1 的mRNA表达量及细胞ROS水平。结果:选择H2O2作用时间相对较短的1 h和浓度0.5 mmol/L作为本实验的H2O2刺激条件。与21%O2组相比,12%O2组细胞Nrf2蛋白荧光增强,Nrf2 的mRNA和蛋白表达以及抗氧化酶SOD1、SOD2、CAT、NQO-1、HO-1、GPX-1的 mRNA表达均显著增加(P<0.05或P<0.01),细胞 ROS水平明显降低(P<0.01);8%O2组仅GPX-1 mRNA显著增加(P<0.05),其他指标变化不大;5%O2组细胞 Nrf2 mRNA和蛋白表达以及抗氧化酶SOD1、SOD2、NQO-1、GPX-1的 mRNA表达均明显降低(P<0.05或P<0.01),细胞 ROS水平则明显升高(P<0.01)。结论:不同氧浓度下C2C12细胞中Nrf2介导的抗氧化系统对H2O2刺激反应不同,12 h的12% O2浓度可促进C2C12细胞Nrf2的抗氧化作用,而5% O2浓度的严重低氧则作用相反。  相似文献   

19.
Fluctuations in cellular oxygenation causing intermittent hypoxia and oxidative stress affect the regulation of hypoxia-inducible factor (HIF-1) and the nuclear factor erythroid 2-related factor 2 (Nrf2). HIF-1 is primarily induced in hypoxia, whereas Nrf2 is induced in response to oxidative stress. Whereas HIF-1 regulates the expression of genes important for the adaptation of cells to hypoxia, Nrf2 induces antioxidative enzymes such as thioredoxin 1 (Trx1), exerting a cytoprotective role. Here, we investigated the regulation and cross talk of HIF-1α and Nrf2 in intermittent hypoxia in lung adenocarcinoma A549 cells expressing high levels of the NADPH oxidase subunit NOX1. Whereas continuous hypoxia induced only HIF-1α, intermittent hypoxia induced both HIF-1α and Nrf2, including its target Trx1. NOX1 was determined to be crucial for enhanced ROS production in intermittent hypoxia that in turn mediated induction of Nrf2 and Trx1. The regulation of Nrf2 and Trx1 by NOX1 was confirmed by both inhibition of endogenous NOX1 and overexpression of recombinant NOX1 protein. By using a proteasomal inhibitor, NOX1 was demonstrated to activate Nrf2 by protein stabilization. Subsequently, Nrf2-dependent Trx1 induction turned out to enhance HIF-1α signaling in intermittent hypoxia.  相似文献   

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