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1.
质膜上的活性氧制造者--NOX家族   总被引:7,自引:0,他引:7  
李玲娜  周崧  易静 《生命科学》2005,17(5):414-418
NADPH氧化酶特异存在于吞噬细胞质膜,能生成用于清除病原微生物的活性氧(reactive oxygen species,ROS)。NOX是NADPH氧化酶催化亚基gp91^phox的同源物,存在于多种非吞噬细胞。目前发现的NOX有NOX1、NOX3、NOX4及NOX5,虽然它们有一定的组织特异性,但与NADPH氧化酶一样均有催化生成ROS的能力。与吞噬细胞中NADPH氧化酶所制造的ROS不同,NOX所产生的ROS并不主要起细胞防御功能,而是作为第二信使,参与细胞增殖、分化、凋亡的调节。此外,NOX对血管生成及骨吸收也有一定的影响,同时还可作为氧感受器调节促红细胞生成素(EPO)的产生。  相似文献   

2.
Nox(phagocyte-like NADPH oxidase)是吞噬细胞NADPH氧化酶催化亚基 gp91phox的一系列同源物,广泛分布于体内多种非吞噬细胞.与NADPH氧化酶类似, Nox激活后可产生ROS,Nox产生的ROS是线粒体外ROS的主要来源.Nox产生的ROS,在控制新陈代谢,调节葡萄糖刺激的胰岛素分泌(glucose-stimulated insulin secretion,GSIS),促使胰岛β细胞凋亡、胰岛功能障碍和糖尿病及其并发症的发 生、发展中,发挥着重要作用.调节Nox的活性,改善机体内氧化应激水平,有望成为治疗糖尿病及其并发症的有效新途径.  相似文献   

3.
目的:探讨砷暴露诱导细胞氧化应激的分子机制。方法:采用人正常肝细胞进行亚砷酸钠和砷酸钠的暴露处理,并设相应对照组,采用SOD模拟物MnTMPyP和还原型谷胱甘肽(reducedglutathione,GSH)预处理,检测细胞超氧阴离子(02。)和细胞整体ROS的水平。WestemBlot方法检测细胞氧化/抗氧化重要酶微粒体谷胱甘肽硫转移酶(microsomalglutathioneS-transferase-l,Mgst.1)、半胱氨酸双加氧酶l(cysteinedioxygenasel,Cd01)和NADPH氧化酶的催化亚基NOX4的表达。针对NADPH氧化酶,采用特异性抑制剂(diphenyleneiodoniumchloride,DPI)进行预处理,观察对砷暴露引起的细胞ROS水平及细胞凋亡的影响。结果:砷暴露能够显著诱导细胞超氧阴离子的产生,提高细胞整体ROS水平,其中三价砷(亚砷酸钠,A矿)诱导氧化应激作用显著强于五价砷(砷酸钠,As5+)。亚砷酸钠能够显著提高NOX4的表达。针对NADPH氧化酶的抑制剂DPI能够显著抑制砷暴露引起的细胞ROS水平升高以及细胞凋亡的增加。结论:NADPH氧化酶是砷暴露诱导人肝细胞的作用靶点,砷能够通过NADPH氧化酶产生大量超氧阴离子,提高ROS水平,造成氧化应激,诱导人正常肝细胞凋亡。  相似文献   

4.
以前认为,NAD(P)H氧化酶仅存在于吞噬细胞,负责吞噬细胞呼吸爆发时产生活性氧(ROS)以杀灭微生物。现在发现正常非吞噬细胞也有NAD(P)H氧化酶,称之为类NAD(P)H氧化酶。该酶在生长因子和细胞因子的刺激下,介导非吞噬细胞产生胞内或胞外的ROS,通过此途径产生的ROS对细胞增殖、分化和血管形成和缺氧反应等生理过程至关重要。这些新的发现。有力地证明了ROS作为细胞“信号分子”和“基因表达开关”的积极作用,改变了过去只把ROS看作有害物的误解。  相似文献   

5.
慢性肉芽肿病(CGD)是一种罕见的遗传免疫缺陷综合症.CGD病人最常见为NADPH氧化酶2(NADPH oxidase 2,NOX2)功能缺失造成吞噬细胞内活性氧生成障碍,不能清除外源的细菌与真菌的感染.凝胶多糖curdlan属于1,3-β-葡聚糖,是白色念珠菌细胞壁的主要成分.目前,作为吞噬细胞中主要的模式识别受体,凝集素dectin-1是否参与curdlan诱导巨噬细胞参与免疫炎症反应以及其分子机制不十分清楚.为了研究这一机制,我们采用luminol和Amplex Red法检测活性氧生成水平,ELISA检测炎症因子IL-1β水平以及免疫荧光法检测NF-κB信号通路的激活情况.结果表明,curdlan浓度依赖性上调巨噬细胞活性氧生成,NOX2缺失显著降低活性氧产生,dectin-1缺失部分降低活性氧的生成和部分阻断NF-κB信号通路的激活.NOX2 KO小鼠炎症因子IL-1β水平显著升高,Dectin-1缺失后NOX2 KO小鼠IL-1β水平降低;Dectin-1 KO小鼠的IL-1β水平与WT小鼠比无显著差异,与Dectin-1/NOX2 KO小鼠比差异显著.上述结果提示,curdlan刺激下机体通过巨噬细胞内的dectin-1受体诱导免疫应答,激活NF-KB信号通路释放炎症因子IL-1β,同时通过dectin-1受体激活NOX2释放活性氧清除病原,促进机体修复.在这一过程中dectin-1不是唯一参与的受体.  相似文献   

6.
ROS与造血干细胞损伤研究进展   总被引:1,自引:0,他引:1  
辐射可以通过引起造血干细胞(hematopoietic stem cell,HSC)内活性氧(reactive oxygen species,ROS)系统水平升高导致HSC损伤。HSC损伤患者出现难治性血液系统疾病,严重影响患者生存质量,甚至威胁患者生命。ROS可以通过多种机制引起组织、器官和细胞损伤。ROS的来源包括:线粒体、NOX(NADPH oxidases)、细胞色素P450酶、黄嘌呤氧化酶、非偶联NO合酶。已证实HSC内ROS来源于NOX。ROS升高后影响HSC在成骨细胞微环境定位,导致HSC与微环境相互作用减弱,从而影响HSC功能。此外,ROS升高后通过激活P38MAPK-P16Ink4途径,损伤HSC自我更新能力,并且使HSC定向分化产生更多的髓系克隆而不是红细胞系克隆;P13K—Akt-mTOR途径可能也是ROS诱导HSC损伤途径。ROS对细胞周期影响为:促使HSC离开G0期进入细胞周期,导致干细胞池的耗尽。基于NOX在氧化还原信号传递过程中的重要作用,证实辐射通过NOX产生的ROS以及鉴定产生ROS的NOX亚型,这一工作会为临床靶向治疗辐射诱发的血液系统疾病提供重要的价值。  相似文献   

7.
NADPH氧化酶参与细胞活性氧族(ROS)的生成过程,而ROS与肿瘤细胞增殖密切相关. 为了阐明NADPH氧化酶影响黑色素瘤A375细胞增殖的分子机制,本文首先应用荧光定量PCR和Western 印迹证实NOX4为人黑色素瘤A375细胞的NADPH氧化酶功能核心亚基;随后根据NOX4基因设计3条干扰序列和对照序列并连接到pSuper-retro-puro载体,经鉴定后转化E.coli DH5α感受态细胞、筛选有效干扰序列并用于逆转录病毒包装,病毒液感染A375细胞并经嘌呤霉素筛选10 d,构建了NOX4缺陷的A375稳转细胞珠(A375 NOX4Δ),其NOX4的mRNA和蛋白表达分别下降了66.02%和77.35%,伴随NADPH氧化酶活性和ROS水平分别下降了79.17%和64.16%;MTT、EdU法检测显示,A375-NOX4Δ细胞的增殖能力比A375-WT细胞明显降低、倍增时间延长,增殖细胞数量下降了68.27%(P<0.01),呈现G1→S期阻滞;Western blot检测表明A375 NOX4Δ细胞的 cyclin D1、CDK4分别下降了55.7%(P<0.01)和64.8%(P<0.01),而P53、P21分别增加了6.89 倍(P<0.01)和3.27 倍(P<0.01),STAT3、P-STAT3分别下降了51.80%(P<0.05)和82.58%(P<0.01);电泳迁移率变动分析(EMSA)表明,A375 NOX4Δ细胞的STAT3-DNA结合活性明显降低. 上述结果提示,敲减A375细胞的NOX4表达可能通过减少ROS生成使得STAT3磷酸化水平及其结合DNA的活性下降,最终导致A375-NOX4Δ细胞增殖减少、呈现G1→S期阻滞,这为黑色素瘤发病机制研究提供了新思路及可能的药物作用靶点.  相似文献   

8.
ROS 的信息分子功能   总被引:2,自引:0,他引:2  
杨琳  法祥光 《生命的化学》2002,22(6):522-524
ROS在机体内主要由NADPH氧化酶系统产生,ROS作为信息分子对细胞功能如细胞生长,转化,凋亡,转录和衰老的调节及相关信息传递等方面的研究,在90年代后期有了明显的进展。并从细胞内环境的氧化还原状态变化和蛋白质的氧化修饰角度初步探讨了ROS参与信息传递的机理。  相似文献   

9.
最近有关活性氧物质 (ROS)的研究取得了突飞猛进的进展,尤其是其作为第二信使介导了许多生理性与病理性细胞事件,包括细胞分化、过度生长、增殖及凋亡.为了避免ROS的毒性产生特异性的信号转导,ROS的产生与代谢必须被严格调控;其具体的调控机制一直是人们关注的焦点. 最近有关ROS区域化观点的提出解决了这一问题. NADPH是生成ROS的主要来源. 研究发现,NADPH氧化酶及其衍生的ROS存在于机体的多种组织内,且在细胞中呈区域化分布,对细胞内信号的精确调控具有至关重要的作用. NADPH一方面通过小窝/脂筏组装成功能型复合物,从而产生ROS区域化;另一方面,NADPH通过其不同亚细胞定位亚基与各种靶蛋白之间的相互作用,产生ROS特异性. 本文系统综述了NADPH衍生的ROS信号区域化,为进一步理解ROS信号在各种生理或病理过程的分子调控机制提供理论依据.  相似文献   

10.
本文旨在明确白藜芦醇对低氧诱导的肺动脉平滑肌细胞(pulmonary artery smooth muscle cells, PASMCs)氧化应激与增殖的作用及分子机制。体外分离培养原代大鼠PASMCs,采用不同浓度的白藜芦醇(10、20和40μmol/L)或NADPH氧化酶(NADPH oxidases, NOXs)抑制剂VAS2870 (10μmol/L)预处理0.5 h,然后将细胞置于常氧(21%O_2, 5%CO_2)或低氧(2%O_2, 5%CO_2)中培养24h。采用CCK-8法和增殖细胞核抗原(proliferatingcellnuclearantigen,PCNA)的表达水平检测细胞增殖,用DCFH-DA测定细胞内活性氧(reactive oxygen species, ROS)的生成,用real-time RT-PCR和Western blot检测NOX1、NOX4和低氧诱导因子-1α(hypoxia inducible factor 1α, HIF-1α)的表达水平,通过小干扰RNAs (small interference RNAs, siRNAs)特异性沉默Hif-1α和Nox4后确定相关信号通路。结果显示,白藜芦醇和VAS2870均能显著抑制低氧诱导的大鼠PASMCs细胞增殖和ROS生成,同时白藜芦醇还能有效阻止低氧诱导的HIF-1α蛋白的聚集和NOX4的表达上调,而对NOX1没有明显的影响。沉默Hif-1α或Nox4后,低氧诱导的大鼠PASMCs细胞增殖和ROS累积均显著降低,且能被白藜芦醇进一步抑制。上述结果提示,白藜芦醇可能通过阻断HIF-1α/NOX4/ROS信号通路抑制低氧诱导的大鼠PASMCs氧化应激和增殖。  相似文献   

11.
Dual Oxidases (DUOX) 1 and 2 are efficiently expressed in thyroid, gut, lung and immune system. The function and the regulation of these enzymes in mammals are still largely unknown. We report here that DUOX 1 and 2 are expressed in human neuroblastoma SK-N-BE cells as well as in a human oligodendrocyte cell line (MO3-13) and in rat brain and they are induced by platelet derived growth factor (PDGF). The levels of DUOX 1 and 2 proteins and mRNAs are induced by reactive oxygen species (ROS) produced by the membrane NADPH oxidase. As to the mechanism, we find that PDGF stimulates membrane NADPH oxidase to produce ROS, which stabilize DUOX1 and 2 mRNAs and increases the levels of the proteins. Silencing of gp91(phox) (NOX2), or of the other membrane subunit of NADPH oxidase, p22(phox), blocks PDGF induction of DUOX1 and 2. These data unravel a novel mechanism of regulation of DUOX enzymes by ROS and identify a circuitry linking NADPH oxidase activity to DUOX1 and 2 levels in neuroblastoma cells.  相似文献   

12.
Dual oxidases     
Reactive oxygen species (ROS) have an important role in various physiological processes including host defence, mitogenesis, hormone biosynthesis, apoptosis and fertilization. Currently, the most characterized ROS-producing system operates in phagocytic cells, where ROS generated during phagocytosis act in host defence. Recently, several novel homologues of the phagocytic oxidase have been discovered and this protein family is now designated as the NOX/DUOX family of NADPH oxidases. NOX/DUOX enzymes function in a variety of tissues, including colon, kidney, thyroid gland, testis, salivary glands, airways and lymphoid organs. Importantly, members of the enzyme family are also found in non-mammalian species, including Caenorhabditis elegans and sea urchin. The physiological functions of novel NADPH oxidase enzymes are currently largely unknown. This review focuses on our current knowledge about dual oxidases.  相似文献   

13.
The NOX/DUOX family of NADPH oxidases are transmembrane proteins generating reactive oxygen species as their primary enzymatic products. NADPH oxidase (NOX) 1–5 and Dual oxidase (DUOX) 1 and 2 are members of this family. These enzymes have several biological functions including immune defense, hormone biosynthesis, fertilization, cell proliferation and differentiation, extracellular matrix formation and vascular regulation. They are found in a variety of tissues such as the airways, salivary glands, colon, thyroid gland and lymphoid organs. The discovery of NADPH oxidases has drastically transformed our view of the biology of reactive oxygen species and oxidative stress. Roles of several isoforms including DUOX1 and DUOX2 in host innate immune defense have been implicated and are still being uncovered. DUOX enzymes highly expressed in the respiratory and salivary gland epithelium have been proposed as the major sources of hydrogen peroxide supporting mucosal oxidative antimicrobial defenses. In this review, we shortly present data on DUOX discovery, structure and function, and provide a detailed, up-to-date summary of discoveries regarding antibacterial, antiviral, antifungal, and antiparasitic functions of DUOX enzymes. We also present all the literature describing the immune functions of lactoperoxidase, an enzyme working in partnership with DUOX to produce antimicrobial substances.  相似文献   

14.
Excessive DNA damage induced by ionising radiation (IR) to normal tissue cells is known to trigger cellular senescence, a process termed stress-induced premature senescence (SIPS). SIPS is often accompanied by the production of reactive oxygen species (ROS), and this is reported to be important for the initiation and maintenance of SIPS. However, the source of ROS during SIPS after IR and their significance in radiation-induced normal tissue damage remain elusive. In the present study, we tested the hypothesis that the NADPH oxidase (NOX) family of proteins mediates ROS production in SIPS-induced cells after IR and plays a role in SIPS-associated biological events. X-irradiation of primary mouse embryonic fibroblasts (MEFs) resulted in cellular senescence and the concomitant increase of intracellular ROS. Among all six murine NOX isoforms (NOX1–4 and DUOX1/2), only NOX4 was detectable under basal conditions and was upregulated following IR. In addition, radiation-induced ROS production was diminished by genetic or pharmacological inhibition of NOX4. Meanwhile, NOX4 deficiency did not affect the induction of cellular senescence after IR. Furthermore, the migration of human monocytic U937 cells to the culture medium collected from irradiated MEFs was significantly reduced by NOX4 inhibition, suggesting that NOX4 promotes the recruitment of inflammatory cells. Collectively, our findings imply that NOX4 mediates ROS production in radiation-induced senescent cells and contributes to normal tissue damage after IR via the recruitment of inflammatory cells and the exacerbation of tissue inflammation.  相似文献   

15.
A deliberate generation of ROS is now recognized to be achieved by specific NADPH oxidases (NOX). Dual oxidases (DUOXs) are Ca(2+)-activated NOXs and operate as H(2)O(2)-generators in various tissues. A tight regulation is however required to avoid ROS overproduction that can rapidly be harmful to biological systems. DUOX activator (DUOXA) proteins act as organizing elements for surface expression and activity of the DUOX enzymes. To study DUOX activation by the maturation factors, chimeric DUOXA proteins were generated by replacing particular domains between DUOXA1 and DUOXA2. Their impact on DUOX function and membrane expression were explored in a reconstituted heterologous cell system composed of COS-7 cells. We have shown that the COOH-terminal end of DUOXA1 is responsible for DUOX1-dependent H(2)O(2) generation. The NH(2)-terminal tail of DUOXA2 is critical to specify the type of ROS released by DUOX2, hydrogen peroxide or superoxide. Native DUOXA2 would constrain DUOX2 to produce H(2)O(2). However, alterations of the DUOXA2 NH(2)-terminal domain modify DUOX2 activity triggering superoxide leaking. Our results demonstrate that specific domains of the DUOX maturation factors promote the activation of DUOXs as well as the type of ROS generated by the oxidases.  相似文献   

16.
Although hydrogen peroxide (H(2)O(2)) is better known for its cytotoxic effects, in recent years it has been shown to play a crucial role in eukaryotic signal transduction. In respiratory tract epithelial cells, the dual oxidase (DUOX) proteins 1 and 2 has been identified as the cellular source of H(2)O(2). However, the expression of DUOX1 or DUOX2 has not yet been examined in keratinocytes. In this study, using a DNA microarray, we demonstrated that, of the seven NOX/DUOX family members in normal human epidermal keratinocytes (NHEK), IL-4/IL-13 treatment augments the expression of only DUOX1 mRNA. We next confirmed the IL-4/IL-13 induction of DUOX1 in NHEK at the mRNA and protein level using quantitative real-time PCR and Western blotting, respectively. In addition, we demonstrated that this augmented DUOX1 expression was accompanied by increased H(2)O(2) production, which was significantly suppressed both by diphenyleneiodonium, an inhibitor of NADPH oxidase, and by small interfering RNA against DUOX1. Finally, we demonstrated that the increased expression of DUOX1 in IL-4/IL-13-treated NHEK augments STAT6 phosphorylation via oxidative inactivation of protein tyrosine phosphatase 1B. These results revealed a novel role of IL-4/IL-13-induced DUOX1 expression in making a positive feedback loop for IL-4/IL-13 signaling in keratinocytes.  相似文献   

17.
In mammals, the NADPH oxidase family of enzymes comprises seven members: NOXs 1-5, DUOX1, and DUOX2. All of these enzymes function to move an electron across cellular membranes, transferring it to oxygen to generate the superoxide anion. This generation of reactive oxygen species has important physiological and pathophysiological roles. NOX5 is perhaps the least well understood of these NOX isoforms, in part because the gene is not present in mice or rats. In recent years, however, there has been a rapid increase in our understanding of the NOX5 gene, the structural and biochemical aspects of the NOX5 enzyme, the role NOX5 plays in health and disease, and the development of novel NOX inhibitors. This review takes a look back at some historical aspects of the discovery of NOX5 and summarizes our current understanding of the enzyme.  相似文献   

18.
Small ubiquitin-like modifier 1 (SUMO1) is a member of the superfamily of ubiquitin-like proteins. Despite its structural similarity with ubiquitin, SUMO1 does not seem to play any role in protein degradation and its precise biological function is poorly understood. During our studies on heat-shock responses, we found that heat-shock stress increased SUMO1 conjugation in a dose-dependent manner. Intriguingly, SUMO1 conjugation resulted in decrease of intracellular ROS generation and protection cells from death under heat-shock stress. We showed that NADPH oxidase 2 (NOX2) is a target protein of sumoylation by SUMO1 using immunoprecipitation and is colocalized with SUMO1 at plasma membrane. Additionally, we demonstrated that the attenuation in intracellular ROS generation resulted from inhibition of NADPH oxidase complex (NOX) activity. These results suggested that SUMO1 plays an important role in modulation of NOX activity required for ROS generation.  相似文献   

19.
Hairy cells (HCs) are mature malignant B cells that contain a number of constitutively active signaling molecules including GTP-bound Rac1, protein kinase C, and Src family kinases. Because Rac1 is a component of the reactive oxidant species (ROS)-generating NADPH oxidase system, we investigated the role of this GTPase in ROS production in HCs. In this study, we show that ROS production in HCs involves a flavin-containing oxidase dependent on Ca2+, but not on GTP-Rac1 or protein kinase C. This suggests the involvement of the nonphagocytic NADPH oxidase NOX5, an enzyme found in lymphoid tissues, but not in circulating lymphocytes. By using RT-PCR and Southern and Western blotting and by measuring superoxide anion production in membrane fractions in the absence of cytosolic components, we demonstrate for the first time that HCs (but not circulating normal B cells or some other lymphoid cell types) express NOX5. We also demonstrate that inhibition of NADPH oxidase in HCs results in a selective increase in the activity of Src homology region 2 domain-containing phosphatase 1 (SHP-1). Furthermore, SHP-1 in HCs coimmunoprecipitates with tyrosine phosphorylated CD22 and localizes in the same cellular compartment as NOX5. This allows the inactivation of SHP-1 by NOX5-generated ROS and contributes to the maintenance of the constitutive activation of HCs.  相似文献   

20.
NOX3, a superoxide-generating NADPH oxidase of the inner ear   总被引:12,自引:0,他引:12  
Reactive oxygen species (ROS) play a major role in drug-, noise-, and age-dependent hearing loss, but the source of ROS in the inner ear remains largely unknown. Herein, we demonstrate that NADPH oxidase (NOX) 3, a member of the NOX/dual domain oxidase family of NADPH oxidases, is highly expressed in specific portions of the inner ear. As assessed by real-time PCR, NOX3 mRNA expression in the inner ear is at least 50-fold higher than in any other tissues where its expression has been observed (e.g. fetal kidney, brain, skull). Microdissection and in situ hybridization studies demonstrated that NOX3 is localized to the vestibular and cochlear sensory epithelia and to the spiral ganglions. Transfection of human embryonic kidney 293 cells with NOX3 revealed that it generates low levels of ROS on its own but produces high levels of ROS upon co-expression with cytoplasmic NOX subunits. NOX3-dependent superoxide production required a stimulus in the absence of subunits and upon co-expression with phagocyte NADPH oxidase subunits p47(phox) and p67(phox), but it was stimulus-independent upon co-expression with colon NADPH oxidase subunits NOX organizer 1 and NOX activator 1. Pre-incubation of NOX3-transfected human embryonic kidney 293 cells with the ototoxic drug cisplatin markedly enhanced superoxide production, in both the presence and the absence of subunits. Our data suggest that NOX3 is a relevant source of ROS generation in the cochlear and vestibular systems and that NOX3-dependent ROS generation might contribute to hearing loss and balance problems in response to ototoxic drugs.  相似文献   

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