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1.
活性氧对植物自噬调控的研究进展   总被引:1,自引:0,他引:1  
自噬是一种在真核生物中高度保守的降解细胞组分的生物过程, 在饥饿、衰老和病菌感染等过程中起关键作用。而活性氧是有氧生物在正常或胁迫条件下产生的一种代谢副产物, 在植物的生长发育、胁迫适应和程序性细胞死亡过程中起重要作用。最新研究结果表明, 当植物受到病菌感染产生超敏反应时活性氧和自噬在程序性细胞死亡、生长发育和胁迫适应过程中起重要调控作用。因此, 该文结合最新的研究进展, 从活性氧的种类及特点、自噬的分子基础以及活性氧在植物自噬中的作用等方面, 探讨了活性氧与植物自噬之间的信号转导关系。  相似文献   

2.
编者按     
<正>细胞死亡是生物体调节正常发育与抵抗疾病过程中不可缺少的一种生命活动,对维持组织稳态及功能有着重要作用。在19世纪初,就有科学家观察到了细胞死亡的形态学。1964年Lockshin提出"程序性细胞死亡"的概念, 1972年Kerr发现了严格受细胞内信号分子调控的细胞死亡方式并将其命名为"细胞凋亡"。1988年科学家发现了非典型凋亡特征的细胞死亡方式。目前,程序性细胞死亡这一领域飞速发展,多种细胞死亡信号  相似文献   

3.
卵泡颗粒细胞凋亡和自噬在动物卵巢卵泡闭锁过程中发挥重要的调控作用。新近研究表明,铁死亡和焦亡也参与卵巢卵泡闭锁过程。铁死亡是一种铁依赖性脂质过氧化和活性氧(reactive oxygen species, ROS)积累引起的细胞死亡形式。研究证实,自噬和凋亡介导的卵泡闭锁过程中也有典型的铁死亡特征。细胞焦亡是依赖于Gasdermin蛋白的促炎性细胞死亡,可通过调节卵泡颗粒细胞调控卵巢繁殖性能。本文综述了几种细胞程序性死亡独立或相互作用参与调控卵泡闭锁的作用及机制,以期扩展卵泡闭锁机制的理论研究,为细胞程序性细胞死亡诱导卵泡闭锁的作用机制提供理论参考。  相似文献   

4.
程序性细胞死亡是由基因调控的贯穿于真核细胞生理和发育过程的细胞自杀行为。动物细胞的程序性死亡分成3类凋亡、自噬和坏死;线粒体和溶酶体分别在前两个过程中起关键作用。关于植物细胞程序性死亡的分类还存在很多争议,焦点是植物是否有细胞凋亡这种形式,核心问题是植物细胞的线粒体外膜上没有Bcl-2家族的膜通透性调控蛋白。近年,程序性细胞死亡也在细菌中发现,LrgAB家族的膜通透性调控蛋白起着重要作用。最近的研究表明,植物叶绿体外被膜上也有LrgAB家族的同源蛋白,它们在控制叶绿体发育和程序性细胞死亡方面起重要作用。因此,叶绿体在植物细胞死亡调控中的作用应该更加受到关注。  相似文献   

5.
细胞凋亡曾被认为是唯一的程序性细胞死亡方式,而坏死是不受信号调控的。但越来越多的证据表明,某些类型的细胞坏死也可受到信号分子的调控,称为程序性细胞坏死,并发现其在免疫功能调控、炎症、感染性疾病中发挥重要作用。本文对程序性细胞坏死的形态特征和信号转导通路及其与免疫系统功能、炎症反应的关系等方面的研究进展作一综述。  相似文献   

6.
果蝇蜕皮激素诱导程序性细胞死亡的遗传调控因子   总被引:4,自引:2,他引:4  
近年来关于果蝇程序性细胞死亡(programmed cell death, PCD)的研究结果表明,在果蝇的变态发育过程中,蜕皮激素与受体结合后诱导转录因子的表达。这些转录因子作为程序性细胞死亡调控网络中的初、次级应答信号,激活凋亡诱导因子Reaper、Hid和Grim的表达。Reaper、Hid和Grim进而阻止凋亡蛋白抑制因子的活性,从而启动半胱氨酸蛋白酶caspase途径,引起细胞凋亡(apoptosis)。该文综述了蜕皮激素诱导的果蝇程序性细胞死亡中各遗传调控因子之间的关系。  相似文献   

7.
Mitotic Catastrophe的研究进展   总被引:1,自引:0,他引:1  
细胞死亡是多细胞生物生命过程中重要的生理或病理现象,可分为坏死和程序性细胞死亡,而后者根据死亡细胞的形态学和发生机制的不同又可分为凋亡、自吞噬和mitotic catastrophe,其中mitotic catastrophe是近年来才被揭示报道,是指细胞在有丝分裂过程中死亡的现象,是一种发生在细胞有丝分裂期由于异常的细胞分裂而导致的细胞死亡,它常常伴随着细胞有丝分裂检查点的异常和基因或纺锤体结构的损伤而发生。现对mitotic catastrophe及相关的调控机制进行综述。  相似文献   

8.
细胞是生物体最基本的结构单位和功能单位,细胞死亡对于多细胞生物的发育和稳态极为重要,也是生命的基本过程之一。目前认为细胞死亡形式主要分为两大类:非程序性细胞死亡(non-programmed cell death,NPCD)即坏死(necrosis);程序性细胞死亡(programmed cell death,PCD)。PCD与坏死不同,组织内无可见的炎症反应,无死亡细胞的溶解。程序性细胞死亡按其发生机制的不同可以分为凋亡(apoptosis)、自吞噬性程序性细胞死亡(autophagic cell death)、类凋亡/副凋亡(paraptosis)、细胞有丝分裂灾难(mitotic catastrophe)、胀亡(oncosis)、焦亡(pyroptosis)、胞质自切(autoschizis)、细胞程序性坏死(necroptosis)、细胞侵入性死亡(entosis)、铁死亡(ferroptosis)等。近年来,程序性细胞死亡在肿瘤发生发展中的作为成为研究热点,所以对程序性细胞死亡机制的研究至关重要,本文将对各类型程序性细胞死亡的机制做简要综述。  相似文献   

9.
程序性坏死(necroptosis)是一种新型的细胞程序性死亡类型,受细胞内信号因子的调控,但同细胞凋亡有着显著区别。程序性坏死的发生需要一系列分子传递和执行死亡信号,受体相互作用蛋白激酶RIP1和RIP3是关键的调控因子。这种细胞死亡模式在心脑血管疾病的病理过程中起着非常重要的作用。  相似文献   

10.
程序性细胞死亡分子5(programmed cell death 5,PDCD5)是PDCD家族的重要成员之一,具有多种生物学活性,如程序性细胞死亡、细胞周期、胚胎发育以及免疫调节等.PDCD5的表达受多种因素调控,能够通过PDCD5-TIP60-FOXP3途径促进调节性T细胞功能.临床研究证实PDCD5在多种自身免疫...  相似文献   

11.
In addition to adenosine triphosphate (ATP) production, mitochondria have been implicated in the regulation of several physiological responses in plants, such as programmed cell death (PCD) activation. Salicylic acid (SA) and reactive oxygen species (ROS) are essential signaling molecules involved in such physiological responses; however, the mechanisms by which they act remain unknown. In non-photosynthesizing tissues, mitochondria appear to serve as the main source of ROS generation. Evidence suggests that SA and ROS could regulate plant PCD through a synergistic mechanism that involves mitochondria. Herein, we isolate and characterize the mitochondria from non-photosynthesizing cell suspension cultures of Rubus fruticosus. Furthermore, we assess the primary site of ROS generation and the effects of SA on isolated organelles. Mitochondrial Complex III was found to be the major source of ROS generation in this model. In addition, we discovered that SA inhibits the electron transport chain by inactivating the semiquinone radical during the Q cycle. Computational analyses confirmed the experimental data, and a mechanism for this action is proposed.  相似文献   

12.
Luo  Lilan  He  Yajun  Zhao  Yannan  Xu  Qian  Wu  Jian  Ma  Haiyan  Guo  Hongyan  Bai  Lin  Zuo  Jianru  Zhou  Jian-Min  Yu  Hong  Li  Jiayang 《中国科学:生命科学英文版》2019,62(8):991-1002
Reactive oxygen species(ROS) play a crucial role in numerous biological processes in plants, including development, responses to environmental stimuli, and programmed cell death(PCD). Deficiency in MOSAIC DEATH 1(MOD1), a plastid-localized enoyl-ACP reductase essential for de novo fatty acid biosynthesis in Arabidopsis thaliana, leads to the increased malate export from chloroplasts to mitochondria, and the subsequent accumulation of mitochondria-generated ROS and PCD. In this study, we report the identification and characterization of a mod1 suppressor, som592. SOM592 encodes mitochondrion-localized NAD~+ transporter 2(NDT2). We show that the mitochondrial NAD pool is elevated in the mod1 mutant. The som592 mutation fully suppressed mitochondrial NADH hyper-accumulation, ROS production, and PCD in the mod1 mutant, indicating a causal relationship between mitochondrial NAD accumulation and ROS/PCD phenotypes. We also show that in wild-type plants, the mitochondrial NAD+uptake is involved in the regulation of ROS production in response to continuous photoperiod. Elevation of the alternative respiration pathway can suppress ROS accumulation and PCD in mod1, but leads to growth restriction. These findings uncover a regulatory mechanism for mitochondrial ROS production via NADH homeostasis in Arabidopsis thaliana that is likely important for growth regulation in response to altered photoperiod.  相似文献   

13.
Alternaria alternata has received considerable attention in current literature and most of the studies are focused on its pathogenic effects on plant chloroplasts, but little is known about the characteristics of programmed cell death (PCD) induced by metabolic products (MP) of A. alternata, the effects of the MP on mitochondrial respiration and its relation to PCD. The purpose of this study was to explore the mechanism of MP-induced PCD in non-green tobacco BY-2 cells and to explore the role of mitochondrial inhibitory processes in the PCD of tobacco BY-2 cells. MP treatment led to significant cell death that was proven to be PCD by the concurrent cytoplasm shrinkage, chromatin condensation and DNA laddering observed in the cells. Moreover, MP treatment resulted in the overproduction of reactive oxygen species (ROS), rapid ATP depletion and a respiratory decline in the tobacco BY-2 cells. It was concluded that the direct inhibition of the mitochondrial electron transport chain (ETC), alternative pathway (AOX) capacity and catalase (CAT) activity by the MP might be the main contributors to the MP-induced ROS burst observed in tobacco BY-2 cells. The addition of adenosine together with the MP significantly inhibited ATP depletion without preventing PCD; however, when the cells were treated with the MP plus CAT, ROS overproduction was blocked and PCD did not occur. The data presented here demonstrate that the ROS burst played an important role in MP-induced PCD in the tobacco BY-2 cells.  相似文献   

14.
Seed deterioration is poorly understood and remains an active area for research. Seeds of elm (Ulmus pumila L.) were aged at 37 °C above water [controlled deterioration treatment (CDT)] for various lengths of time to assess programmed cell death (PCD) and reactive oxygen species (ROS) product in embryonic tissues during a 5 d period. The hallmarks of PCD were identified in the elm seeds during CDT including TUNEL experiments, DNA laddering, cytochrome c (cyt c) leakage and enzymatic activities. These analyses indicated that PCD occurred systematically and progressively in deteriorated elm seeds. Cyt c release and increase in caspase‐3‐like/DEVDase activity occurred during CDT, which could be suppressed by ascorbic acid (AsA) and caspase‐3 inhibitor Ac‐DEVD‐CHO, respectively. In situ localization of ROS production indicated that the distinct spatial‐temporal signature of ROS during CDT coincided with the changes in PCD hallmark features. Multiple antioxidant elements were activated during the first few days of CDT, but were subsequently depleted as PCD progressed. Taken together, our findings identify PCD as a key mechanism that occurs asymmetrically during elm seeds CDT and suggest an important role for PCD in seeds deterioration.  相似文献   

15.
Programmed cell death (PCD) is of fundamental importance to development and defense in animals and plants. In plants, a well-recognized form of PCD is hypersensitive response (HR) triggered by pathogens, which involves the generation of reactive oxygen species (ROS) and other signaling molecules. While the mitochondrion is a master regulator of PCD in animals, the chloroplast is known to regulate PCD in plants. Arabidopsis Mosaic Death 1 (MOD1), an enoyl-acyl carrier protein (ACP) reductase essential for fatty acid biosynthesis in chloroplasts, negatively regulates PCD in Arabidopsis. Here we report that PCD in mod1 results from accumulated ROS and can be suppressed by mutations in mitochondrial complex I components, and that the suppression is confirmed by pharmaceutical inhibition of the complex I-generated ROS. We further show that intact mitochondria are required for full HR and optimum disease resistance to the Pseudomonas syringae bacteria. These findings strongly indicate that the ROS generated in the electron transport chain in mitochondria plays a key role in triggering plant PCD and highlight an important role of the communication between chloroplast and mitochondrion in the control of PCD in plants.  相似文献   

16.
Recently, we reported the induction of a programmed cell death (PCD) in bloodstream forms of Trypanosoma brucei by prostaglandin D(2) (PGD(2)). As this prostanoid is readily metabolized in the presence of albumin, we were prompted to investigate if PGD(2) metabolites rather than PGD(2) itself are responsible for the observed PCD. In fact, J series metabolites, especially PGJ(2) and Delta(12)PGJ(2), were able to induce PCD more efficiently than PGD(2). However, the stable PGD(2) analog 17phenyl-trinor-PGD(2) led to the same phenotype as the natural PGD(2), indicating that the latter induces PCD as well. Interestingly, the intracellular reactive oxygen species (ROS) level increased significantly under J series metabolites treatment and, incubation with N-acetyl-L-cysteine or glutathione reduced ROS production and cell death significantly. We conclude that PGJ(2) and Delta(12)PGJ(2) formation within the serum represents a mechanism to amplify PGD(2)-induced PCD in trypanosomes via ROS production.  相似文献   

17.
The status of mitochondrial permeability transition pore (PTP) and levels of reactive oxygen species (ROS) play key roles in regulating apoptosis in animal cells. To investigate if the PTP and cellular oxidation-reduction state are also involved in salt stress-induced programmed cell death (PCD) in tobacco (Nicotiana tabacum, cultivar BY-2) protoplasts, flow cytometry was used to simultaneously monitor ROS levels, PTP status and PCD. Increased ROS and decreased mitochondrial membrane potential (delta psi(m)) were observed before the appearance of PCD. Pre-treatment with an inhibitor of the PTP opening, cyclosporin A (CsA), effectively retarded the onset of PCD, the delta psi(m) decrease and the ROS content increase. Addition of ascorbic acid (AsA) during the salt stress significantly decreased the percentage of protoplasts undergoing PCD and ROS levels but increased delta psi(m). Hydrogen peroxide effectively induced the appearance of PCD and caused an increase in ROS and a decrease in delta psi(m). Pre-treatment of protoplasts with CsA weakened the effects of H2O2. All these results suggest that the open state of PTP and ROS are necessary elements for salt stress-induced PCD in tobacco protoplasts. The open states of PTP and ROS could promote each other suggesting that ROS could lead to a self-amplifying process. This positive feedback loop may act as an all-or-nothing switch, which is in good accordance with the hypothesis that PTP is an important coordinator and executioner of PCD in both animals and plants.  相似文献   

18.
何光明  邓兴旺 《植物学报》2018,53(4):441-444
程序性细胞死亡(PCD)是生物体受遗传调控的自主细胞死亡现象, 在植物生长发育和抵抗环境胁迫中起重要作用。PCD的发生可受线粒体中活性氧(ROS)诱导。中国科学院遗传与发育生物学研究所李家洋研究组早期的研究发现了1个拟南芥(Arabidopsis thaliana)细胞死亡突变体mod1, 并暗示植物细胞中存在叶绿体与线粒体之间的信号交流调控PCD, 但其中的具体作用机制尚不清楚。最近, 他们通过大规模筛选mod1突变体的抑制突变体, 克隆了3个新的抑制基因plNAD- MDHDiT1mMDH1。此3个基因分别编码质体定位的NAD依赖的苹果酸脱氢酶、叶绿体被膜定位的二羧酸转运蛋白1和线粒体定位的苹果酸脱氢酶1, 突变后都可抑制mod1中ROS的积累及PCD的发生。通过对这些基因进行深入的功能分析, 他们论证了苹果酸从叶绿体到线粒体的转运对线粒体中ROS的产生及随后PCD的诱导起重要作用。该研究拓展了我们对植物细胞中细胞器间交流的认识, 为我们深入理解植物PCD发生机制提供了新线索, 是该领域的一项突破性进展。  相似文献   

19.
Accumulating evidence supports the idea that necrotrophic plant pathogens interact with their hosts by controlling cell death. Sclerotinia sclerotiorum is a necrotrophic ascomycete fungus with a broad host range (>400 species). Previously, we established that oxalic acid (OA) is an important pathogenicity determinant of this fungus. In this report, we describe a mechanism by which oxalate contributes to the pathogenic success of this fungus; namely, that OA induces a programmed cell death (PCD) response in plant tissue that is required for disease development. This response exhibits features associated with mammalian apoptosis, including DNA laddering and TUNEL reactive cells. Fungal mutants deficient in OA production are nonpathogenic, and apoptotic-like characteristics are not observed following plant inoculation. The induction of PCD by OA is independent of the pH-reducing abilities of this organic acid, which is required for sclerotial development. Moreover, oxalate also induces increased reactive oxygen species (ROS) levels in the plant, which correlate to PCD. When ROS induction is inhibited, apoptotic-like cell death induced by OA does not occur. Taken together, we show that Sclerotinia spp.-secreted OA is an elicitor of PCD in plants and is responsible for induction of apoptotic-like features in the plant during disease development. This PCD is essential for fungal pathogenicity and involves ROS. Thus, OA appears to function by triggering in the plant pathways responsible for PCD. Further, OA secretion by Sclerotinia spp. is not directly toxic but, more subtly, may function as a signaling molecule.  相似文献   

20.
Microalgae are rich resources for high-value nutrients and biodiesel production. However, extraction of these valuable compounds from them requires costly energy-consuming procedures due to their rigid cell walls. Application of cell-disruptive agents, the AES-Bt agents, extracted from an algicidal bacterium, Bacillus thuringiensis ITRI-G1, are a promising way to reduce the cost of cell disruption. Treatment with AES-Bt agents resulted in a rapid decline of photosynthesis ability and caused cell death in Chlorella vulgaris. Hallmarks of programmed cell death (PCD), including chromatin condensation, DNA fragmentation, and phosphatidylserine externalization, were detected in C. vulgaris cells treated with the AES-Bt agents. Therefore, the cell disruption effect caused by application of the AES-Bt agents can be due to the occurrence of PCD. Similar to other PCDs, the PCD caused by AES-Bt agents was also associated with increased reactive oxygen species (ROS). However, co-treatments with diphenyleneiodonium chloride (DPI), an NAD(P)H oxidase inhibitor, or N,N′-dimethylthiourea (DMTU), a hydrogen peroxide (H2O2) trap, with the AES-Bt agents successfully reduced ROS production, and more cells displayed a feature of PCD detected after the co-treatments. In conclusion, the AES-Bt agents can promote PCD of microalgae; however, the mechanism may not be through induction of ROS.  相似文献   

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