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1.
缺血性心脏病(ischemic heart disease,IHD)是危害人类健康的首要疾病。线粒体是细胞内能量供应和信息整合的中心,决定细胞的生存和/或死亡。线粒体质量控制是指线粒体分裂与融合、线粒体自噬等动态调节过程。新近研究显示,增强线粒体质量控制对维持线粒体健康以及心肌功能至关重要,而线粒体质量控制任何一个环节的紊乱都将导致心肌缺血损伤的发生和发展。本文就线粒体质量控制及其在IHD中的研究进展作一综述,并结合本实验室研究成果,阐述迷走神经干预改善IHD的线粒体质量控制相关机制。  相似文献   

2.
线粒体在细胞能量代谢和细胞凋亡中起着至关重要的作用.质量控制是线粒体在细胞中维持正常状态的关键机制.2011年Miyamoto等发现Mieap参与线粒体质量控制的两个新机制.Mieap诱导的溶酶体样细胞器,进入线粒体内,并在线粒体积累,能通过特异性的清除氧化的线粒体蛋白来修复异常线粒体,使得线粒体维持在正常状态.Mieap诱导的通过细胞膜内吞机制形成的囊泡,识别异常线粒体,并对其特异性的清除.Mieap诱导的这两个过程参与了线粒体质量控制,并决定线粒体的命运.  相似文献   

3.
衰老性肌萎缩中的线粒体功能障碍与线粒体未折叠蛋白反应(mitochondrial unfolded protein response,UPRmt)和线粒体自噬构成的线粒体质量控制(mitochondrial quality control, MQC)的损伤密切相关。线粒体质量控制是线粒体维持内环境稳态的保护机制,其中UPRmt和线粒体自噬分别负责受损线粒体的修复和清除。UPRmt应对未折叠蛋白应激,维持线粒体和细胞蛋白质稳态,延长寿命并调节代谢重构,而线粒体自噬选择性地去除受损严重的线粒体,两者共同维护线粒体稳态。本文总结UPRmt与线粒体自噬的互作、衰老骨骼肌UPRmt与线粒体自噬的变化和运动逆转衰老骨骼肌UPRmt和线粒体自噬的机制,重点总结运动源的活性氧(reactive oxygen species, ROS)调控UPRmt与线粒体自噬互作的信号通路研究进展,并为衰老性肌萎缩进程中线粒体质量控制的维持提供参考。  相似文献   

4.
线粒体在细胞的生命活动过程中承担重要作用,线粒体通过自身质量控制维持线粒体健康.线粒体囊泡作为一种新型的线粒体质量控制机制,通过靶向到不同的细胞器,调控线粒体内氧化/受损蛋白的降解;激活免疫系统,发挥抗原呈递和杀灭细菌的功能,从而维持线粒体以及细胞的稳态平衡.本文就线粒体囊泡的调控机制以及生物学功能的研究进展进行综述.  相似文献   

5.
线粒体是一种结构和功能复杂而敏感的细胞器,拥有独立于细胞核的基因组,在细胞的不同时相,生理过程和环境条件下,线粒体的形态,数量和质量,具有高度的可塑性。线粒体是细胞和生物体内最主要的能量供应场所,几乎存在于所有种类的细胞中,是一种动态变化的细胞器。正常情况下,线粒体的数量、形态以及功能维持相对稳定的状态,称之为线粒体稳态。当上述状态发生紊乱时,细胞乃至生物体形态、功能也将受到影响甚至死亡。线粒体质量控制是在细胞中维持正常状态的关键机制,决定着线粒体的命运。近年,随着线粒体研究的深入和具体,逐渐发现融合/分裂在其形态、数量、遗传物质等质量控制相关的方面挥了重要作用。本文通过探讨融合/分裂对线粒体质量控制的作用机制,总结和讨论相关前沿研究,为后期研究提供一定的理论依据。  相似文献   

6.
近年来发现人类多种神经肌肉疾病存在线粒体电子传递链(electron transport chain,ETC)缺陷。由于线粒体在遗传上受核基因和线粒体基因双重控制,给确定ETC缺陷的来源造成困难。转线粒体DNA技术是线粒体同无线粒体DNA的细胞(ρ°cells)融合,形成转线粒体DNA细胞系(mtDNA-transferred cell line,也称cytoplasmic hybrids,简称cybrids),使病人的线粒体DNA(mito-  相似文献   

7.
线粒体是需氧生物中的一种半自主性细胞器.在能量代谢中,它起了一个关键的作用,柠檬酸循环、电子传递和氧化磷酸化过程均在线粒体内完成.线粒体具有高度的生物化学和遗传上的独立性.含有DNA和核糖核蛋白体.负责合成生物体内2%-5%的蛋白质[1].线粒体DNA具有自身复制能力,控制着众多的遗传性状.在植物中广泛存在的细胞质雄性不育则被认为是由线粒体基因组控制的性状[2].  相似文献   

8.
谢友菊 《遗传》1986,8(1):14-17
线粒体除了受核基因控制外,还具有其自 身的遗传系统。研究表明,线粒体蛋白质中由 线粒体本身的DNA 编码的不到20多,它们在 线粒体的核糖休上翻译而成;大部分的线粒体 蛋白质都是由核DNA 编码,在细胞质中的核 糖体上合成曰。  相似文献   

9.
线粒体质量控制对于线粒体网络的稳态和线粒体功能的正常发挥具有重要意义。三磷酸腺苷酶家族蛋白3A(ATAD3A)是同时参与调节线粒体结构功能、线粒体动力学和线粒体自噬等重要生物学过程的线粒体膜蛋白之一。近期研究表明,ATAD3A既可与Mic60/Mitofilin和线粒体转录因子A (TFAM)等因子相互作用以维持线粒体嵴的形态和氧化磷酸化功能,又能与发动蛋白相关蛋白1 (Drp1)结合而正性/负性调节线粒体分裂,还可作为线粒体外膜转位酶(TOM)复合物和线粒体内膜转位酶(TIM)复合物之间的桥接因子而介导PTEN诱导激酶(PINK1)输入线粒体进行加工,显示出促自噬或抗自噬活性。本文对ATAD3A在调控线粒体质量控制中的作用及其机制进行了综述。  相似文献   

10.
线粒体自噬(mitophagy)是指细胞通过自噬机制选择性清除多余或损伤线粒体的过程,对于线粒体质量控制以及细胞生存具有重要作用。在线粒体自噬的过程中,线粒体自噬受体FUNDCl、Nix、BNIP3,接头蛋白OPTN、NDP52以及去泛素化酶UPS30、UPS8等发挥了重要的调控作用。近年来,研究发现线粒体自噬与神经退行性疾病、脑损伤以及胶质瘤相关。因此,研究线粒体自噬的分子机制具有重要意义。本文就与哺乳动物相关的线粒体自噬分子机制及最新研究进展做一综述。  相似文献   

11.
Studies of electron transport in dry and imbibed peanut embryos   总被引:11,自引:11,他引:0       下载免费PDF全文
The respiration of isolated peanut (Arachis hypogea) embryos has been studied with dry and wet embryos and mitochondria prepared after various times of imbibition. Dry seeds respire slowly, apparently via a respiratory chain which is deficient in cytochrome c. Cytochrome c-deficient mitochondria have been prepared from the embryos up to 16 hours following imbibition. These mitochondria can metabolize reduced nicotinamide adenine dinucleotide and succinate, without respiratory control by ADP, but they do phosphorylate. Added cytochrome c increases both respiration and phosphorylation of these embryonic mitochondria. When growth starts, mitochondria appear which are similar to those isolated from other mature plant tissues; they have respiratory control and can actively metabolize succinate, malate, and reduced nicotinamide adenine dinucleotide. These latter mitochondria contain a concentration of cytochrome c comparable to that found in mitochondria isolated from other mature plant tissues. It is suggested that the earliest type of mitochondria may be required to control respiration in the dry and the recently wetted embryo.  相似文献   

12.
Preparation of leaf mitochondria from Arabidopsis thaliana   总被引:3,自引:0,他引:3  
Arabidopsis thaliana is, perhaps, the most important model species in modern plant biology. However, the isolation of organelles from leaves of this plant has been difficult. Here, we present two different protocols for the isolation of mitochondria, yielding either highly functional crude mitochondria or highly purified mitochondria. The crude mitochondria were well coupled with the substrates tested (malate + glutamate, glycine and NADH), exhibiting respiratory control ratios of 2.1–3.9. Purified mitochondria with very low levels of chlorophyll contamination were obtained by Percoll gradient centrifugation, yielding 1.2 mg of mitochondrial protein from 50 g of leaves.  相似文献   

13.
14.
1. Mitochondria from four different animal and five different plant sources exhibit a wide variation in their capacity to maintain respiratory control at 25 degrees C. 2. Beef heart mitochondria, and pear and avocado fruit mitochondria exhibit the longest retention of respiratory control extending to periods of approximately 80 and 40 hr, respectively.  相似文献   

15.
Mitochondria play a central role in primary metabolism in plants as well as in heterotrophic eukaryotes. Plants must control the quality and number of mitochondria in response to a changing environment, across cell types and developmental stages. Mitophagy is defined as the degradation of mitochondria by autophagy, an evolutionarily conserved system for the removal and recycling of intracellular components. Recent studies have highlighted the importance of mitophagy in plant stress responses. This review article summarizes our current knowledge of plant mitophagy and discusses the underlying mechanisms. In plants, chloroplasts cooperate with mitochondria for energy production, and autophagy also targets chloroplasts through a process known as chlorophagy. Advances in plant autophagy studies now allow a comparative analysis of the autophagic turnover of mitochondria and chloroplasts, via the selective degradation of their soluble proteins, fragments, or entire organelles.  相似文献   

16.
17.
The mechanism of Cr(VI)-induced toxicity in plants and animals has been assessed for mitochondrial bioenergetics and membrane damage in turnip root and rat liver mitochondria. By using succinate as the respiratory substrate, ADP/O and respiratory control ratio (RCR) were depressed as a function of Cr(VI) concentration. State 3 and uncoupled respiration were also depressed by Cr(VI). Rat mitochondria revealed a higher sensitivity to Cr(VI), as compared to turnip mitochondria. Rat mitochondrial state 4 respiration rate triplicated in contrast to negligible stimulation of turnip state 4 respiration. Chromium(VI) inhibited the activity of the NADH-ubiquinone oxidoreductase (complex I) from rat liver mitochondria and succinate-dehydrogenases (complex II) from plant and animal mitochondria. In rat liver mitochondria, complex I was more sensitive to Cr(VI) than complex II. The activity of cytochrome c oxidase (complex IV) was not sensitive to Cr(VI). Unique for plant mitochondria, exogenous NADH uncoupled respiration was unaffected by Cr(VI), indicating that the NADH dehydrogenase of the outer leaflet of the plant inner membrane, in addition to complexes III and IV, were insensitive to Cr(VI). The ATPase activity (complex V) was stimulated in rat liver mitochondria, but inhibited in turnip root mitochondria. In both, turnip and rat mitochondria, Cr(VI) depressed mitochondrial succinate-dependent transmembrane potential (Deltapsi) and phosphorylation efficiency, but it neither affected mitochondrial membrane permeabilization to protons (H+) nor induced membrane lipid peroxidation. However, Cr(VI) induced mitochondrial membrane permeabilization to K+, an effect that was more pronounced in turnip root than in rat liver mitochondria. In conclusion, Cr(VI)-induced perturbations of mitochondrial bioenergetics compromises energy-dependent biochemical processes and, therefore, may contribute to the basal mechanism underlying its toxic effects in plant and animal cells.  相似文献   

18.
Although plant cell bioenergetics is strongly affected by abiotic stresses, mitochondrial metabolism under stress is still largely unknown. Interestingly, plant mitochondria may control reactive oxygen species (ROS) generation by means of energy-dissipating systems. Therefore, mitochondria may play a central role in cell adaptation to abiotic stresses, which are known to induce oxidative stress at cellular level. With this in mind, in recent years, studies have been focused on mitochondria from durum wheat, a species well adapted to drought stress. Durum wheat mitochondria possess three energy-dissipating systems: the ATP-sensitive plant mitochondrial potassium channel (PmitoK(ATP)); the plant uncoupling protein (PUCP); and the alternative oxidase (AOX). It has been shown that these systems are able to dampen mitochondrial ROS production; surprisingly, PmitoK(ATP) and PUCP (but not AOX) are activated by ROS. This was found to occur in mitochondria from both control and hyperosmotic-stressed seedlings. Therefore, the hypothesis of a 'feed-back' mechanism operating under hyperosmotic/oxidative stress conditions was validated: stress conditions induce an increase in mitochondrial ROS production; ROS activate PmitoK(ATP) and PUCP that, in turn, dissipate the mitochondrial membrane potential, thus inhibiting further large-scale ROS production. Another important aspect is the chloroplast/cytosol/mitochondrion co-operation in green tissues under stress conditions aimed at modulating cell redox homeostasis. Durum wheat mitochondria may act against chloroplast/cytosol over-reduction: the malate/oxaloacetate antiporter and the rotenone-insensitive external NAD(P)H dehydrogenases allow cytosolic NAD(P)H oxidation; under stress this may occur without high ROS production due to co-operation with AOX, which is activated by intermediates of the photorespiratory cycle.  相似文献   

19.
Gaston Ducet 《Planta》1979,147(2):122-126
Pulsed acid base titrations, according to the procedure of Mitchell and Moyle, have been carried out on potato mitochondria in the presence and absence of Bovine Serum Albumine (BSA). The rate of the pH decay is slower when BSA is present. The buffering capacities of the outer and inner phases, the t1/2 of the pH decay after an acid pulse and the proton conductance of the inner membrane have been measured. The results show that plant mitochondria are relatively impermeable to H+ and OH, but leakier than animal mitochondria. This may be related to the lower respiratory control ratios generally found with plant mitochondria.Abbreviations EGTA ethylene glycol bis (aminoethyl ether) NN tetraacetic acid - MERCAP sodium mercaptobenzothiazole - TRIS tris (hydroxymethyl) aminomethane - MOPS morpholinopropane sulfonic acid - BSA bovine serum albumine - RC respiratory control ratio  相似文献   

20.
Mitochondria isolated from various plant tissues (leaves, etiolated shoots and hypocotyls, and stem tubers) oxidize exogenous NADPH with respiratory control values and ADP:O ratios similar to those obtained with exogenous NADH as substrate. In all the mitochondria investigated, the electron-transfer inhibitors rotenone and amytal each had the same effect on the oxidation of NADPH as they had on the oxidation of NADH. The oxidation of exogenous NADPH by white potato tuber mitochondria was much more sensitive to inhibition by citrate or ethylene glycol bis-(beta-aminoethyl ether)-N,N-tetraacetic acid than was the oxidation of NADH. Mitochondria isolated from aged beetroot slices showed an increased capacity for the oxidation of exogenous NADH (compared with mitochondria from fresh tissue) but no such increase in the capacity to oxidize exogenous NADPH. These results suggest that exogenous NADPH and NADH are oxidized via different flavoproteins in plant mitochondria.  相似文献   

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