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1.
解偶联蛋白2(uncoupling protein 2,UCP2)是线粒体内膜质子载体蛋白,广泛存在多种组织和器官中。其通过降低线粒体内膜质子梯度,使呼吸作用中氧化磷酸化过程解偶联,从而发挥调控能量代谢、糖脂代谢和氧化应激等作用。近年来的研究发现,UCP2在心力衰竭、冠心病、高血压、肺动脉高压等疾病中也发挥重要作用。本文将对UCP2在心血管系统疾病发病中可能作用的研究现状作一综述。  相似文献   

2.
解偶联蛋白2(UCP2)是核DNA编码的线粒体内膜阴离子转运体,广泛存在多种组织和器官中。其通过耗散线粒体内膜质子梯度发挥可诱导的解偶联作用。内皮细胞损伤是多种血管疾病的始动环节,近年来的研究发现,UCP2在动脉粥样硬化、高血压、糖尿病等中发挥血管内皮保护作用。本文对UCP2内皮保护作用的相关机制作一综述。  相似文献   

3.
解偶联蛋白(uncoupling protein,UCP)是线粒体内膜上的质子转运蛋白,被激活时能引发质子漏,质子经UCP渗漏回基质,使氧化磷酸化部分解耦联,降低线粒体膜电位,减少过量活性氧的产生。另外,UCP对ATP合成、钙离子稳态、能量代谢等也有调节作用。阿尔茨海默病是一种中枢神经系统退行性疾病,由多种因素共同作用引起,其中活性氧的作用越来越引起重视。UCP,特别是UCP2在中枢神经系统疾病方面的保护作用日益引起关注,有望成为阿尔茨海默病治疗的靶向目标。  相似文献   

4.
解偶联蛋白(uncoupling protein,UCP)属于线粒体内膜上的一类载体蛋白,其生理作用是消除线粒体膜电位,使氧化磷酸化解偶联,从而抑制酸腺苷(adenosine triphosphate,ATP)合成,能量以热能形式散发.研究发现UCP2具有一种质子漏功能,表现对线粒体活性氧(reactive oxygen species,ROS)产生的调控和降低ROS的功能.在不同组织器官,不同代谢状态下UCP2的生理功能对细胞的影响不完全相同.特别是近年来的研究发现,UCP2参与了能量代谢、ROS的产生、子宫内膜退化、衰老等过程,并且与非酒精性脂肪肝、抗肥胖、动脉粥样硬化、局部缺血以及缺血再灌注损伤和2型糖尿病等有一定的相关性,倍受人们的关注.  相似文献   

5.
胡祥上  邹原 《生物磁学》2009,(2):388-390
解偶联蛋白(uncoupling protein,UCP)属于内膜上的一类载体蛋白,其生理作用是消除线粒体膜电位,使氧化磷酸化解偶联,从而抑制酸腺苷(adenosine triphosphate,ATP)合成,能量以热能形式散发。研究发现UCP2具有一种质子漏功能,表现对线粒体活性氧(reactive oxygen species,ROS)产生的调控和降低ROS的功能:在不同组织器官,不同代谢状态下UCP2的生理功能对细胞的影响不完全相同。特别是近年来的研究发现,UCP2参与了能量代谢、ROS的产生、子宫内膜退化、衰老等过程,并且与非酒精性脂肪肝、抗肥胖、动脉粥样硬化、局部缺血以及缺血再灌注损伤和2型糖尿病等有一定的相关性,倍受人们的关注。  相似文献   

6.
解偶联蛋白2对活性氧的抑制作用   总被引:1,自引:0,他引:1  
线粒体在能量代谢和自由基代谢中占据十分重要的地位。电子传递过程中形成的活性氧(reactive oxygen species,ROS)履行着众多生理功能,但过多或持续存在的ROS可能与癌症、衰老、糖尿病、动脉硬化、局部缺血或再灌注损伤等的发生有关。解偶联蛋白2(uncoupling protein 2,UCP2)作为线粒体内膜质子转运家族中的一个新成员,通过解偶联作用能降低线粒体内膜电势,使活性氢产生减少。UCP2抑制ROS产生的作用日益受到关注。  相似文献   

7.
解偶联蛋白与肥胖及2型糖尿病发病的关系   总被引:1,自引:1,他引:0  
万春玲  张铁梅  王沥  杨泽  金锋 《遗传》2003,25(2):211-220
解偶联蛋白(UCPs)是线粒体内膜上的一种转运蛋白,它能够降低线粒体内膜上的质子梯度,使底物氧化和ADP磷酸化解偶联,减少ATP的产生。基于其功能,解偶联蛋白基因被视为肥胖病及2型糖尿病的重要候选基因。UCP同系物过表达的遗传工程小鼠表现出对饮食导致的肥胖具有耐受性,同时UCP2基因3'非翻译区的45bp插入/缺失以及UCP3基因C-55T多态与肥胖表型的相关性等研究结论支持这一假说。本文对UCP基因与多基因控制的肥胖病及2型糖尿病发病的相关研究进行综述和讨论。 Abstract:Uncoupling proteins (UCPs) are mitochondria carrier proteins,which are able to dissipate the proton gradient of the inner mitochondria membrane.The uncoupling procedure reduces the amount of ATP generated through an oxidation of fuels.Therefore,UCPs are suggested as candidate genes for human obesity or type II diabetes mellitus.Experimental evidences,that genetically engineered mice over expressing different UCP homologues were resistant to diet-induced obesity and 45bp insertion polymorphism in the UCP2 3'untranslated region and C-55T in UCP3 promoter region were associated with obesity related phenotype,supported the hypothesis.The roles of UCP genes in polygenic obesity and type II diabetes are evaluated and discussed in this paper.  相似文献   

8.
解偶联蛋白及功能研究进展   总被引:5,自引:0,他引:5  
解偶联蛋白(ucP,uncoupling protein)是一类线粒体内膜上的载体,属于线粒体载体超家族,可以将H^ 从线粒体内膜渗漏到线粒体基质中,减少ATP的合成并产生热能。已知UCPl在小鼠中有维持体温和能量稳态的重要作用。而UCP2和UCP3可控制活性氧(reactive oxygen species,ROS)产生、调节脂肪酸氧化,并且在肥胖和糖尿病发生中有重要作用。  相似文献   

9.
线粒体的呼吸耗氧偶联着ATP的合成,而位于线粒体内膜上的跨膜蛋白解偶联蛋白(uncoupling protein,UCP)能够破坏这种偶联关系.在大肠杆菌中表达了有生物活性的鼠源解偶联蛋白1(rUCP1).重组rUCP1的表达导致大肠杆菌宿主细胞生长变慢;在电子显微镜下观察免疫标记的结果显示,重组rUCP1主要表达在细菌膜上;同时将rUCP1重构到脂质体中也能够测到质子转运活性.这些结果说明,真核生物UCP1能够在原核生物中表达出有生物活性的形式,且能纯化得到足量的rUCP1蛋白用于进一步的结构生物学研究.  相似文献   

10.
解偶联蛋白1(Uncoupling protein 1,UCP1)是位于褐色脂肪组织线粒体内膜上的一种解偶联蛋白,该蛋白可以诱导质子漏从而产热。通过设计简并引物进行RT-PCR从大绒鼠BAT中获得UCP1基因cDNA核心序列,RTPCR所得产物长约458 bp,包含的开放阅读框(open reading frame,ORF)为456 bp,编码151个氨基酸。通过BLAST搜索,所得大绒鼠UCP1基因cDNA氨基酸序列与黑线仓鼠、橙腹草原田鼠、金黄仓鼠、小家鼠和褐家鼠等哺乳动物的UCP1氨基酸序列同源性均在80%以上,而与鱼类和两栖类的氨基酸序列同源性在61%以下。研究结果表明UCP1在哺乳类中高度保守。同时,通过NJ方法以UCP1序列构建系统进化树表明大绒鼠与橙腹草原田鼠聚成一支,构成田鼠类分支。  相似文献   

11.
Uncoupling proteins (UCPs) are specialized members of the mitochondrial transporter family. They allow passive proton transport through the mitochondrial inner membrane. This activity leads to uncoupling of mitochondrial respiration and to energy waste, which is well documented with UCP1 in brown adipose tissue. The uncoupling activity of the new UCPs (discovered after 1997), such as UCP2 and UCP3 in mammals or avUCP in birds, is more difficult to characterize. However, extensive data support the idea that the new UCPs are involved in the control of reactive oxygen species (ROS) generation. This fits with the hypothesis that mild uncoupling caused by the UCPs prevents ROS production. Activators and inhibitors regulate the proton transport activity of the UCPs. In the absence of activators of proton transport, the UCP allows the permeation of other ions. We suggest that this activity has physiological significance and, for example, UCP3 expressed in glycolytic muscle fibres may be a passive pyruvate transporter ensuring equilibrium between glycolysis and oxidative phosphorylation. Induction of UCP2 expression by glutamine strengthens the proposal that new UCPs could act to determine the choice of mitochondrial substrate. This would obviously have an impact on mitochondrial bioenergetics and ROS production.  相似文献   

12.
Uncoupling proteins (UCPs), members of mitochondrial carrier family, are present in mitochondrial inner membrane and mediate free fatty acid-activated, purine-nucleotide-inhibited H+ re-uptake. UCPs can modulate the tightness of coupling between mitochondrial respiration and ATP synthesis. A physiological function of the first described UCP, UCP1 or termogenin, present in mitochondria of mammalian brown adipose tissues is well established. UCP1 plays a role in nonshivering thermogenesis in mammals. The widespread presence of UCPs in eukaryotes, in non-thermogenic tissues of animals, plants and in unicellular organisms implies that these proteins may elicit other functions than thermogenesis. However, the physiological functions of UCP1 homologues are still under debate. They can regulate energy metabolism through modulation of the electrochemical proton gradient and production of ROS. Functional activation of UCPs is proposed to decrease ROS production. Moreover, products of lipid peroxidation can activate UCPs and promote feedback down-regulation of mitochondrial ROS production.  相似文献   

13.
Mitochondrial uncoupling,ROS generation and cardioprotection   总被引:1,自引:0,他引:1  
Susana Cadenas 《BBA》2018,1859(9):940-950
Mitochondrial oxidative phosphorylation is incompletely coupled, since protons translocated to the intermembrane space by specific respiratory complexes of the electron transport chain can return to the mitochondrial matrix independently of the ATP synthase —a process known as proton leak— generating heat instead of ATP. Proton leak across the inner mitochondrial membrane increases the respiration rate and decreases the electrochemical proton gradient (Δp), and is an important mechanism for energy dissipation that accounts for up to 25% of the basal metabolic rate. It is well established that mitochondrial superoxide production is steeply dependent on Δp in isolated mitochondria and, correspondingly, mitochondrial uncoupling has been identified as a cytoprotective strategy under conditions of oxidative stress, including diabetes, drug-resistance in tumor cells, ischemia-reperfusion (IR) injury or aging. Mitochondrial uncoupling proteins (UCPs) are able to lower the efficiency of oxidative phosphorylation and are involved in the control of mitochondrial reactive oxygen species (ROS) production. There is strong evidence that UCP2 and UCP3, the UCP1 homologues expressed in the heart, protect against mitochondrial oxidative damage by reducing the production of ROS. This review first analyzes the relationship between mitochondrial proton leak and ROS generation, and then focuses on the cardioprotective role of chemical uncoupling and uncoupling mediated by UCPs. This includes their protective effects against cardiac IR, a condition known to increase ROS production, and their roles in modulating cardiovascular risk factors such as obesity, diabetes and atherosclerosis.  相似文献   

14.
Proton leak pathways uncouple substrate oxidation from ATP synthesis in mitochondria. These pathways are classified as basal (not regulated) or inducible (activated and inhibited). Previously it was found that over half of the basal proton conductance of muscle mitochondria was catalyzed by the adenine nucleotide translocase (ANT), an abundant mitochondrial anion carrier protein. To determine whether ANT is the unique protein catalyst, or one of many proteins that catalyze basal proton conductance, we measured proton leak kinetics in mitochondria isolated from brown adipose tissue (BAT). BAT can express another mitochondrial anion carrier, UCP1, at concentrations similar to ANT. Basal proton conductance was measured under conditions where UCP1 and ANT were catalytically inactive and was found to be lower in mitochondria from UCP1 knockout mice compared to wild-type. Ablation of another abundant inner membrane protein, nicotinamide nucleotide transhydrogenase, had no effect on proton leak kinetics in mitochondria from liver, kidney or muscle, showing that basal proton conductance is not catalyzed by all membrane proteins. We identify UCP1 as a second protein propagating basal proton leak, lending support to the hypothesis that basal leak pathways are perpetrated by members of the mitochondrial anion carrier family but not by other mitochondrial inner membrane proteins.  相似文献   

15.
Talbot DA  Lambert AJ  Brand MD 《FEBS letters》2004,556(1-3):111-115
Superoxide generated using exogenous xanthine oxidase indirectly activates an uncoupling protein (UCP)-mediated proton conductance of the mitochondrial inner membrane. We investigated whether endogenous mitochondrial superoxide production could also activate proton conductance. When respiring on succinate, rat skeletal muscle mitochondria produced large amounts of matrix superoxide. Addition of GDP to inhibit UCP3 markedly inhibited proton conductance and increased superoxide production. Both superoxide production and the GDP-sensitive proton conductance were suppressed by rotenone plus an antioxidant. Thus, endogenous superoxide can activate the proton conductance of UCP3, which in turn limits mitochondrial superoxide production. These observations provide a departure point for studies under more physiological conditions.  相似文献   

16.
Uncoupling protein-3 (UCP3) expression has been shown to increase dramatically in response to muscular contraction, but the physiological significance of UCP3 upregulation is still elusive. In this study, UCP3 mRNA and protein expression were investigated along with mitochondrial respiratory function, reactive oxygen species (ROS) generation, and antioxidant defense in rat skeletal muscle during and after an acute bout of prolonged exercise. UCP3 mRNA expression was elevated sharply at 45 min of exercise, reaching 7- to 8-fold above resting level at 150 min. The increase in UCP3 protein content showed a latent response but was elevated approximately 1.9-fold at 120 min of exercise. Both UCP3 mRNA and UCP3 protein gradually returned to resting levels 24 h postexercise. Mitochondrial ROS production was progressively increased during exercise. However, ROS showed a dramatic drop at 150 min although their levels remained severalfold higher during the recovery. Mitochondrial State 4 respiration rate was increased by 46 and 58% (p < 0.05) at 90 and 120 min, respectively, but returned to resting rate at 150 min, when State 3 respiration and respiratory control index (RCI) were suppressed. ADP-to-oxygen consumption (P/O) ratio and ATP synthase activity were lowered at 3 h postexercise, whereas proton motive force and mitochondrial malondialdehyde content were unchanged. Manganese superoxide dismutase gene expression was not affected by exercise except for an increase in mRNA abundance at 3 h postexercise. These data demonstrate that UCP3 expression in rat skeletal muscle can be rapidly upregulated during prolonged exercise, possibly owing to increased ROS generation. Increased UCP3 may partially alleviate the proton gradient across the inner membrane, thereby reducing further ROS production by the electron transport chain. However, prolonged exercise caused a decrease in energy coupling efficiency in muscle mitochondria revealed by an increased respiration rate due to proton leak (State 4/State 3 ratio) and decreased RCI. We thus propose that the compromise of the oxidative phosphorylation efficiency due to UCP3 upregulation may serve an antioxidant function to protect the muscle mitochondria from exercise-induced oxidative stress  相似文献   

17.
Mitochondria represent a major source of reactive oxygen species (ROS), particularly during resting or state 4 respiration wherein ATP is not generated. One proposed role for respiratory mitochondrial uncoupling proteins (UCPs) is to decrease mitochondrial membrane potential and thereby protect cells from damage due to ROS. This work was designed to examine superoxide production during state 4 (no ATP production) and state 3 (active ATP synthesis) respiration and to determine whether uncoupling reduced the specific production of this radical species, whether this occurred in endothelial mitochondria per se, and whether this could be modulated by UCPs. Superoxide formation by isolated bovine aortic endothelial cell (BAE) mitochondria, determined using electron paramagnetic resonance spectroscopy, was approximately fourfold greater during state 4 compared with state 3 respiration. UCP1 and UCP2 overexpression both increased the proton conductance of endothelial cell mitochondria, as rigorously determined by the kinetic relationship of respiration to inner membrane potential. However, despite uncoupling, neither UCP1 nor UCP2 altered superoxide formation. Antimycin, known to increase mitochondrial superoxide, was studied as a positive control and markedly enhanced the superoxide spin adduct in our mitochondrial preparations, whereas the signal was markedly impaired by the powerful chemical uncoupler p-(trifluoromethoxyl)-phenyl-hydrazone. In summary, we show that UCPs do have uncoupling properties when expressed in BAE mitochondria but that uncoupling by UCP1 or UCP2 does not prevent acute substrate-driven endothelial cell superoxide as effluxed from mitochondria respiring in vitro.  相似文献   

18.
One factor that has the potential to regulate reactive oxygen species (ROS) generation is the mild uncoupling of oxidative phosphorylation, i.e. proton (H(+)) leak across the mitochondrial inner membrane. Proton leak has been shown to attenuate ROS generation, whereas ROS and their derivatives (such as superoxide and hydroxynonenal) have been shown to induce H(+) leak through uncoupling proteins (UCPs). This suggests the existence of a feedback loop between ROS and H(+) leak mediated through UCPs. Although the physiological functions of the new UCPs, such as UCP2 and UCP3, are still not established, extensive data support the idea that these mitochondrial carrier proteins are involved in the control of ROS generation. The molecular basis of both ROS generation and hydroxynonenal-induced uncoupling through UCPs is reviewed and the consequences of their interaction for protection against excessive ROS production at the expense of energy production is discussed.  相似文献   

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