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1.
简述调控线粒体形态变化的分子机制   总被引:2,自引:0,他引:2  
线粒体是细胞内高度动态变化的细胞器,其在细胞内不断运动、融合、分裂并形成动态平衡的网状结构。线粒体的融合和分裂是由多种蛋白精确调控完成。Mfns/Fz01P控制线粒体外膜的融合,而Mgmlp/OPA1则参与线粒体内膜的融合;Dnm1p/Drp1、Fis1p/Fis1和Mdv1p介导线粒体分裂的调控。线粒体形态对于细胞维持正常生理代谢和机体发育起着重要的作用,一旦调控出现障碍会导致严重的疾病。  相似文献   

2.
线粒体形态学改变与细胞凋亡   总被引:4,自引:0,他引:4  
近年来,对于线粒体形态学以及其在凋亡过程中的改变和作用的研究打破了传统的观点。正常情况下,线粒体在细胞内相互连接成管网状结构,并发生着频繁的融合与分裂。融合和分裂由一系列蛋白质介导,二者之间的动态平衡维持着线粒体的形态和功能。在细胞凋亡的早期,线粒体融合和分裂失平衡,导致线粒体管网状结构碎裂和嵴的重构,这些改变对线粒体随后的变化以及凋亡的发生具有重要的意义。融合和分裂的蛋白质不仅调控线粒体形态和细胞凋亡过程,也和某些凋亡相关疾病有关。此外,促凋亡的Bcl-2蛋白可能通过改变线粒体的构形来调控凋亡过程。  相似文献   

3.
线粒体是一种高度动态的细胞器,通过不断的融合和分裂维持其动态平衡,参与生理病理功能调节。线粒体融合与分裂主要由融合分裂相关蛋白调控,如Drp1、Fis1、Mfn1、Mfn2、OPA1等,多种诱导因子通过调节线粒体融合分裂相关蛋白表达及活化进而调节线粒体形态和生理功能。现有研究表明线粒体融合分裂的异常可能是许多中枢神经系统疾病的发病机制之一。本文从线粒体融合分裂的分子调控机制及其在缺血性脑中风、帕金森综合征和阿尔兹海默症等中枢神经系统疾病中的研究进展方面进行综述,为相关疾病的防治提供一定参考和线索。  相似文献   

4.
线粒体动力相关蛋白(dynamin-related protein 1,Drp1)是介导线粒体分裂的主要蛋白,Drp1表达增加,线粒体分裂增加,网状结构破坏,反之则有助线粒体融合,促进损伤线粒体修复。心肌缺血再灌注损伤与活性氧(ROS)的大量产生,线粒体通透性转换孔(MPTP)的开放及细胞凋亡等密切相关。近年来大量研究发现Drp1介导的线粒体分裂参与心肌缺血再灌注损伤,本文就Drp1参与心肌缺血再灌注损伤的相关机制作一简要综述。  相似文献   

5.
线粒体动力学与细胞凋亡   总被引:1,自引:0,他引:1  
线粒体是普遍存在于真核细胞中的双层膜细胞器,通过氧化磷酸化为细胞提供能量。线粒体是高度动态的细胞器,通过持续的融合和分裂改变自身形态来适应各种应激条件以满足细胞的能量代谢及其他生物学需求,这种生物学过程被称为线粒体动力学。细胞凋亡是细胞程序性的死亡方式,而线粒体在内源性细胞凋亡途径中扮演着重要的角色。在受到细胞内部(DNA突变)或者外部刺激时,线粒体外膜通透性改变并释放凋亡因子,如细胞色素C、Smac、AIF等,进而激活细胞凋亡信号通路,促进细胞凋亡。细胞凋亡过程中线粒体形态发生改变,可从管状向颗粒状转变,并伴随着线粒体嵴重构。线粒体形态是由Mfn1、Mfn2、OPA1、Drp1等多种GTP蛋白调控,这些蛋白同时也参与细胞凋亡调控。此外,细胞凋亡调控蛋白如Bax、Bak、Bcl-2等蛋白也可调控线粒体形态。该文主要回顾和阐述细胞凋亡与线粒体动力学的发展历程、基本知识以及它们之间的内在联系。  相似文献   

6.
哺乳动物细胞线粒体融合-分裂与钙离子信号的关系   总被引:2,自引:0,他引:2  
Zhao GJ  Lu ZQ  Yao YM 《生理科学进展》2010,41(3):171-176
线粒体是一种高度动态的细胞器,通过融合和分裂两个相反的过程来维持正常的形态结构。在哺乳动物中,多种因素影响线粒体的融合-分裂的平衡,但现已明确,线粒体融合的主要调节因子为Mfn1/2、OPA1,介导线粒体分裂的主要调节因子为Drp1、Fis1。新近研究发现,线粒体融合-分裂平衡的紊乱将导致线粒体结构和在细胞内分布的异常,进而影响细胞和线粒体对钙离子信号的反应;同时,钙离子也可通过多种机制影响线粒体的形态结构与分布。  相似文献   

7.
线粒体融合蛋白Mfn1/2的结构和功能   总被引:1,自引:0,他引:1  
线粒体融合素基因(mitofusin gene,Mfn)在哺乳动物中编码两种蛋白质分子,Mfn1和Mfn2,它们在线粒体融合、分裂与细胞凋亡中起重要作用,调控着线粒体形态的动态变化。另外,Mfn1/2还参与线粒体的能量代谢并与相关疾病的发生有着密切关系。  相似文献   

8.
心力衰竭中心肌细胞线粒体融合与分裂   总被引:1,自引:0,他引:1  
心力衰竭是各种心血管疾病的终末阶段,具有高患病率、高死亡率及高再住院率的特征,对人类健康造成巨大威胁。线粒体作为细胞内提供能量的最主要细胞器,还参与ROS生成、细胞信号转导、细胞凋亡调控等过程。近年研究表明,线粒体通过不断地融合与分裂进行迁移、相互连接和自我更新以维持自身稳态。当心肌细胞线粒体融合与分裂过程失衡时则会引起自身形态和功能紊乱,进而损害心脏结构和功能,参与心力衰竭的发生与进展。本文对心肌细胞线粒体融合与分裂的生物学效应及调节机制在心力衰竭过程中的研究进展作一综述。  相似文献   

9.
焦阳  郑月  宋成洁 《生理学报》2020,72(2):249-254
本文旨在探讨依达拉奉(edaravone, Eda)对帕金森病细胞模型线粒体融合、分裂动态平衡的作用及机制。用500μmol/L1-甲基-4-苯基吡啶离子(1-methyl-4-phenylpyridinium, MPP^+)处理PC12细胞建立帕金森病细胞模型,采用噻唑蓝(MTT)比色法检测不同浓度Eda对MPP^+处理的PC12细胞存活率的影响,用激光共聚焦显微镜检测线粒体形态,用Western blot检测线粒体融合与分裂相关蛋白OPA1、MFN2、DRP1和Fis1的表达变化。结果显示,预先加入不同浓度的Eda能减轻MPP^+处理的PC12细胞损伤,作用呈一定的量效关系;经MPP^+处理48 h,PC12细胞线粒体出现碎片化,OPA1和MFN2蛋白表达下调,DRP1和Fis1蛋白表达上调,而Eda预处理能逆转PC12细胞的上述变化,但对Fis1的蛋白表达没有影响。以上结果提示,Eda可上调OPA1和MFN2的蛋白表达,下调DRP1的表达,从而抑制线粒体碎片化,发挥神经细胞线粒体保护作用。  相似文献   

10.
哺乳动物细胞对于遗传毒性的刺激会产生一系列应答,如细胞周期阻滞,DNA修复和细胞凋亡等。Gadd45a在DNA损伤诱导的细胞应答中发挥重要作用。细胞内外环境的多种因素在转录水平、转录后水平、翻译后水平等多个层次对Gadd45a进行精确调节。Gadd45a通过与Cdc2相互作用调控细胞周期G1-M检测点,直接抑制Aurora—A激酶参与中心体稳定性的调节,通过G1-S期调控参与维持基因组的稳定性。Gadd45a参与p38/JNK、MAPK、线粒体介导的凋亡途径和NF—κB介导的生存通路调控。  相似文献   

11.
Li WW  Zhu M  Lv CZ 《生理科学进展》2011,42(5):347-352
线粒体是一种处于高度运动状态的细胞器,频繁地出现分裂和融合,线粒体分裂和融合的动态过程被称为线粒体动力学。对于神经元来说,线粒体的动力学过程具有十分重要的生物学意义。已知线粒体融合介导蛋白的功能缺失性突变可以导致常染色体显性遗传性视神经萎缩和Charcot-Marie-Tooth病等神经变性疾病。近来发现,在迟发性神经变性疾病中,线粒体动力学的改变也具有重要地位。本文将在线粒体动力学的分子调控以及与细胞死亡的关系、在神经变性疾病中的地位等方面综述这一领域的最新进展。  相似文献   

12.
Huang P  Galloway CA  Yoon Y 《PloS one》2011,6(5):e20655
Mitochondria in mammals are organized into tubular networks that undergo frequent shape change. Mitochondrial fission and fusion are the main components mediating the mitochondrial shape change. Perturbation of the fission/fusion balance is associated with many disease conditions. However, underlying mechanisms of the fission/fusion balance are not well understood. Mitochondrial fission in mammals requires the dynamin-like protein DLP1/Drp1 that is recruited to the mitochondrial surface, possibly through the membrane-anchored protein Fis1 or Mff. Additional dynamin-related GTPases, mitofusin (Mfn) and OPA1, are associated with the outer and inner mitochondrial membranes, respectively, and mediate fusion of the respective membranes. In this study, we found that two heptad-repeat regions (HR1 and HR2) of Mfn2 interact with each other, and that Mfn2 also interacts with the fission protein DLP1. The association of the two heptad-repeats of Mfn2 is fusion inhibitory whereas a positive role of the Mfn2/DLP1 interaction in mitochondrial fusion is suggested. Our results imply that the differential binding of Mfn2-HR1 to HR2 and DLP1 regulates mitochondrial fusion and that DLP1 may act as a regulatory factor for efficient execution of both fusion and fission of mitochondria.  相似文献   

13.
Fzo1, a protein involved in mitochondrial fusion, inhibits apoptosis   总被引:1,自引:0,他引:1  
Mitochondrial morphology and physiology are regulated by the processes of fusion and fission. Some forms of apoptosis are reported to be associated with mitochondrial fragmentation. We showed that overexpression of Fzo1A/B (rat) proteins involved in mitochondrial fusion, or silencing of Dnm1 (rat)/Drp1 (human) (a mitochondrial fission protein), increased elongated mitochondria in healthy cells. After apoptotic stimulation, these interventions inhibited mitochondrial fragmentation and cell death, suggesting that a process involved in mitochondrial fusion/fission might play a role in the regulation of apoptosis. Consistently, silencing of Fzo1A/B or Mfn1/2 (a human homolog of Fzo1A/B) led to an increase of shorter mitochondria and enhanced apoptotic death. Overexpression of Fzo1 inhibited cytochrome c release and activation of Bax/Bak, as assessed from conformational changes and oligomerization. Silencing of Mfn or Drp1 caused an increase or decrease of mitochondrial sensitivity to apoptotic stimulation, respectively. These results indicate that some of the proteins involved in mitochondrial fusion/fission modulate apoptotic cell death at the mitochondrial level.  相似文献   

14.
Mitochondrial dynamics with constant fusion and fission plays vital roles in regulating cellular biological processes. Mitofusin 2 (Mfn2) is dynamin-related protein whose activity promotes mitochondrial fusion and maintains the homeostasis of mitochondrial dynamics. Advanced studies have demonstrated that Mfn2 is a multifunctional protein with signaling roles beyond fusion. Mfn2 is actively involved in various biological processes under both physical and pathological conditions, including mitochondrial transport and the interaction between endoplasmic reticulum/sarcoplasmic reticulum and mitochondria, as well as cell metabolism, apoptosis and autophagy. This review summarises the structural and functional properties of Mfn2, with focus on recent advances in its regulatory role in cardiovascular system.  相似文献   

15.
The mitochondrial division machinery regulates mitochondrial dynamics and consists of Fis1p, Mdv1p, and Dnm1p. Mitochondrial division relies on the recruitment of the dynamin-related protein Dnm1p to mitochondria. Dnm1p recruitment depends on the mitochondrial outer membrane protein Fis1p. Mdv1p interacts with Fis1p and Dnm1p, but is thought to act at a late step during fission because Mdv1p is dispensable for Dnm1p localization. We identify the WD40 repeat protein Caf4p as a Fis1p-associated protein that localizes to mitochondria in a Fis1p-dependent manner. Caf4p interacts with each component of the fission apparatus: with Fis1p and Mdv1p through its NH2-terminal half and with Dnm1p through its COOH-terminal WD40 domain. We demonstrate that mdv1delta yeast contain residual mitochondrial fission due to the redundant activity of Caf4p. Moreover, recruitment of Dnm1p to mitochondria is disrupted in mdv1delta caf4delta yeast, demonstrating that Mdv1p and Caf4p are molecular adaptors that recruit Dnm1p to mitochondrial fission sites. Our studies support a revised model for assembly of the mitochondrial fission apparatus.  相似文献   

16.
Mitochondria are dynamic organelles that undergo frequent fission and fusion or branching. Although these morphologic changes are considered crucial for cellular functions, the underlying mechanisms remain elusive, especially in mammalian cells. We characterized two rat mitochondrial outer membrane proteins, Mfn1 and Mfn2, with distinct tissue expressions, that are homologous to Drosophila Fzo, a GTPase involved in mitochondrial fusion. Expression of the GTPase-domain mutant of Mfn2 (Mfn2(K109T)) in HeLa cells induced mitochondrial fragmentation in which Mfn2(K109T) localized at the restricted domains. Immuno-electronmicroscopy revealed that Mfn2(K109T) was concentrated at the contact domains between adjacent mitochondria, suggesting that fusion of the outer membrane was arrested at some intermediate step. Mfn1 expression induced highly connected tubular network structures depending on the functional GTPase domain. The Mfn1-induced tubular networks were suppressed by co-expression with Mfn2. In vivo depletion of either isoform by RNA interference revealed that both are required to maintain normal mitochondrial morphology. The fusion of differentially-labeled mitochondria in HeLa cells subjected to depletion of either Mfn isoform and subsequent cell fusion by hemagglutinating virus of Japan revealed that both proteins have distinct functions in mitochondrial fusion. We conclude that the two Mfn isoforms cooperate in mitochondrial fusion in mammalian cells.  相似文献   

17.
Mitochondria are present as tubular organelles in neuronal projections. Here, we report that mitochondria undergo profound fission in response to nitric oxide (NO) in cortical neurons of primary cultures. Mitochondrial fission by NO occurs long before neurite injury and neuronal cell death. Furthermore, fission is accompanied by ultrastructural damage of mitochondria, autophagy, ATP decline and generation of free radicals. Fission is occasionally asymmetric and can be reversible. Strikingly, mitochondrial fission is also an early event in ischemic stroke in vivo. Mitofusin 1 (Mfn1) or dominant-negative Dynamin related protein 1 (Drp1(K38A)) inhibits mitochondrial fission induced by NO, rotenone and Amyloid-beta peptide. Conversely, overexpression of Drp1 or Fis1 elicits fission and increases neuronal loss. Importantly, NO-induced neuronal cell death was mitigated by Mfn1 and Drp1(K38A). Thus, persistent mitochondrial fission may play a causal role in NO-mediated neurotoxicity.  相似文献   

18.
Mitochondrial fission is mediated by the dynamin-related protein Drp1 in metazoans. Drp1 is recruited from the cytosol to mitochondria by the mitochondrial outer membrane protein Mff. A second mitochondrial outer membrane protein, named Fis1, was previously proposed as recruitment factor, but Fis1/ cells have mild or no mitochondrial fission defects. Here we show that Fis1 is nevertheless part of the mitochondrial fission complex in metazoan cells. During the fission cycle, Drp1 first binds to Mff on the surface of mitochondria, followed by entry into a complex that includes Fis1 and endoplasmic reticulum (ER) proteins at the ER–mitochondrial interface. Mutations in Fis1 do not normally affect fission, but they can disrupt downstream degradation events when specific mitochondrial toxins are used to induce fission. The disruptions caused by mutations in Fis1 lead to an accumulation of large LC3 aggregates. We conclude that Fis1 can act in sequence with Mff at the ER–mitochondrial interface to couple stress-induced mitochondrial fission with downstream degradation processes.  相似文献   

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