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1.
郭敏霞  傅永福 《遗传》2013,35(6):727-734
SUMO(Small ubiquitin-related modifier)化修饰是普遍存在于真核生物中的一种翻译后修饰, 在很多细胞过程中发挥重要作用。文章阐述了拟南芥中SUMO底物的最新研究进展。首先介绍SUMO化修饰过程, SUMO底物的鉴定, 包括鉴定方法的进展和鉴定成果。然后依据底物的亚细胞定位、生理功能和参与的生理生化过程对其进行分类和分析, 以期更好地理解蛋白质SUMO化修饰方式在植物生长发育中的功能。  相似文献   

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翻译后修饰如磷酸化、乙酰化、甲基化、泛素化和SUMO化调节不同蛋白质的不同功能。磷酸化可能是最常见的修饰之一,蛋白质磷酸化通过一系列的激酶和磷酸酶催化,从而改变蛋白质功能。SUMO修饰是一种类泛素化修饰。SUMO修饰包括活化、结合、连接和解离,涉及多个酶多个步骤的催化过程。SUMO化可调节蛋白质相互作用、亚细胞定位、蛋白质稳定性和转录活性。关于磷酸化和SUMO化的蛋白质翻译后修饰,已有广泛研究报道。但很少关注于磷酸化和SUMO化之间的相互作用,以及它们对蛋白质的共同修饰。本文综述了蛋白质磷酸化和SUMO化之间的相互作用,以及共同修饰对细胞生理和肿瘤的影响。  相似文献   

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HIF-1α的可逆性SUMO化修饰   总被引:3,自引:0,他引:3  
低氧诱导因子1(hypoxia inducible factor-1, HIF-1)是参与调节机体氧平衡的重要转录因子,在细胞低氧应答反应中起核心作用,能调节100多种涉及低氧应激下细胞适应和存活的靶基因.HIF-1由氧敏感的α亚基和在细胞内稳定表达的β亚基组成.其中α亚基可受到多种翻译后化学修饰作用,如在常氧下,HIF-1α通过泛素化蛋白酶修饰并导致其快速降解.最近几年发现的泛素样蛋白家族成员小泛素蛋白样修饰蛋白(SUMO)也能与HIF-1α共价结合.SUMO是一种分子量约为12 kD的小蛋白,从拟南芥到人类普遍存在.SUMO可共价结合许多靶底物蛋白,并对其进行翻译后修饰,该过程称为SUMO化.与泛素化蛋白酶体途径不同的是,SUMO化修饰能在常氧和相对低氧的条件下调节HIF-1α蛋白的稳定性,从而改变其转录活性.SUMO化是一个可逆的动态过程,可被特异性蛋白酶ULP/SENP将其从底物上去除.本文主要就HIF-1α的可逆性SUMO化修饰作一综述.  相似文献   

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翻译后修饰如磷酸化、乙酰化、甲基化、泛素化和SUMO化调节不同蛋白质的不同功能。磷酸化可能是最常见的修饰之一,蛋白质磷酸化通过一系列的激酶和磷酸酶催化,从而改变蛋白质功能。SUMO修饰是一种类泛素化修饰。SUMO修饰包括活化、结合、连接和解离,涉及多个酶多个步骤的催化过程。SUMO化可调节蛋白质相互作用、亚细胞定位、蛋白质稳定性和转录活性。关于磷酸化和SUMO化的蛋白质翻译后修饰,已有广泛研究报道。但很少关注于磷酸化和SUMO化之间的相互作用,以及它们对蛋白质的共同修饰。本文综述了蛋白质磷酸化和SUMO化之间的相互作用,以及共同修饰对细胞生理和肿瘤的影响。  相似文献   

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SUMO化(Sumoylation)作为一种广泛存在于真核生物的重要翻译后修饰,在调控植物生长、发育和逆境应答等方面发挥着重要作用。SUMO E3连接酶具有底物识别和选择的作用,直接促进SUMO蛋白与靶蛋白的结合。目前,在植物中已经鉴定出多种SUMO E3连接酶。综述了SUMO E3连接酶在植物适应干旱、盐害、高/低温、营养元素匮缺和重金属毒害等非生物胁迫过程中的作用,并展望了未来植物SUMO化研究的方向,以期为今后植物SUMO化方面的研究提供参考。  相似文献   

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低氧诱导因子-1(hypoxia-inducible factor-1,HIF-1)是异二聚体的转录因子,由氧敏感的α亚基和在细胞内稳定表达的β亚基组成,在细胞低氧应答反应中起核心作用,能调节100多种涉及低氧应激下细胞适应和存活的靶基因.泛素是一种由76个氨基酸残基组成的保守性多肽,广泛存在真核生物中.SUMO是泛素样蛋白家族成员,分子量约为12 kD的小蛋白,从拟南芥到人类普遍存在.泛素和SUMO可共价结合许多靶底物蛋白,对其进行翻译后修饰,该过程分别称为泛素化与SUMO化.近来研究显示,HIF-1α的翻译后修饰如泛素化、SUMO化可调节其的稳定性,从而改变HIF 1α的转录激活活性.本文主要就HIF-1α泛素化及SUMO化修饰等问题作一综述.  相似文献   

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Metabolic reprogramming is one of the critical features in cancer. Tumor cells preferentially utilize glycolysis instead of oxidative phosphorylation in the presence of oxygen, namely 'Warburg Effect'. Recent studies have provided new insights into the Warburg effect, elucidating metabol- ic-dependent and independent mechanisms of metabolic enzymes regulated by post-translational modifications and providing further evidence for the critical role of these tricks in cancer metabolism and tumorigenesis. Of particu- lar interest, we summarized the latest advances in both the metabolic and the non-metabolic functions of metabolic enzymes via the acetylation regulation in the Warburg effect. In addition, their potential roles in cancer metabol- ism therapy will also be briefly discussed.  相似文献   

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SUMO化: 一种重要的体内翻译后蛋白质修饰系统   总被引:2,自引:0,他引:2  
靶蛋白被小泛素相关修饰物(small ubiquitin-related modifier,SUMO)修饰已经成为真核细胞特有的翻译后蛋白质修饰标志之一.SUMO与靶蛋白之间这种可逆的共价连接,在核质运输、DNA与蛋白质结合活性、蛋白质之间相互作用、转录调控、DNA修复以及维持基因组稳定等方面均发挥着重要的调节作用.在许多人类疾病如癌症和神经退化性疾病中,SUMO化修饰作用对疾病的发生与发展起着极为重要的作用.阐明SUMO化修饰在这些疾病中的功能,将为疾病的治疗开辟一条崭新的思路.  相似文献   

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Histones package DNA in all eukaryotes and play key roles in regulating gene expression. Approximately 150 base pairs of DNA wraps around an octamer of core histones to form the nucleosome, the basic unit of chromatin. Linker histones compact chromatin further by binding to and neutralizing the charge of the DNA between nucleosomes. It is well established that chromatin packing is regulated by a complex pattern of posttranslational modifications (PTMs) to core histones, but linker histone function is less well understood. In this review, we describe the current understand- ing of the many roles that linker histones play in cellular processes, including gene regulation, cell division, and devel- opment, while putting the linker histone in the context of other nuclear proteins. Although intriguing roles for plant linker histones are beginning to emerge, much of our current understanding comes from work in animal systems. Many unanswered questions remain and additional work is required to fully elucidate the complex processes mediated by linker histones in plants.  相似文献   

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A plant's capability to cope with environmental challenges largely relies on signal transmission through mitogen-activated protein kinase (MAPK) cascades. In Arabidopsis thaliana, MPK3 is particularly strongly associated with numerous abiotic and biotic stress responses. Identification of MPK3 substrates is a milestone towards improving stress resistance in plants. Here, we characterize AZI1, a lipid transfer protein (LTP)-related hybrid proline-rich protein (HyPRP), as a novel target of MPK3. AZI1 is phosphorylated by MPK3 in vitro. As documented by co-immunoprecipitation and bimolecular fluorescence complementation experiments, AZI1 interacts with MPK3 to form protein complexes in planta. Furthermore, null mutants of azil are hypersensitive to salt stress, while AZIl-overexpressing lines are markedly more tolerant. AZI1 overexpression in the mpk3 genetic background partially alleviates the salt-hypersensitive phenotype of this mutant, but functional MPK3 appears to be required for the full extent of AZIl-conferred robustness. Notably, this robustness does not come at the expense of normal development. Immunoblot and RT-PCR data point to a role of MPK3 as positive regulator of AZI1 abundance.  相似文献   

14.
过氧化物酶体增殖物激活受体γ(peroxisome proliferator-activated receptor gamma,PPARγ)是一种配体依赖性核转录因子,它具有调控细胞分化、脂肪代谢、糖代谢及炎症等多种生物学功能.机体对PPARγ转录活性的调控方式是多种多样的,包括蛋白表达水平、配体以及转录辅助因子等不同层次上的调控.近年来众多证据揭示,蛋白翻译后修饰(posttranslational modifications,PTMs)是机体调节PPARγ转录活性的另一重要方式.目前,已报道的PPARγ翻译后修饰包括磷酸化、泛素化、SUMO化和亚硝基化等,它们能够改变蛋白构象、调控蛋白相互作用、改变受体与配体间的亲和力,从而调控PPARγ下游基因的转录.重要的是,PPARγ的翻译后修饰与一些疾病如糖尿病、动脉粥样硬化、肿瘤等密切相关.本文将主要围绕PPARγ的各种翻译后修饰及其在疾病的发生、发展和治疗中的意义作一综述.  相似文献   

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The oxidative pentose-phosphate pathway (OPPP) represents a central branch of cellular metabolism emanating from glucose-6-phosphate (G6P) to provide reductive power (NADPH) and sugar phosphates for anabolic biosyntheses. In plant cells, the oxidative OPPP branch is found in the cytosol and in plastids, consisting of glucose-6-phosphate dehydrogenase (G6PD), 6-phosphogluconolactonase (PGL), and 6-phosphogluconate dehydrogenase (6PGD). These enzymes are encoded by small gene families in the nuclear genome, which, in Arabidopsis, comprise six G6PD, five 6-PGL, and three 6-PGD isoforms (Kruger and von Schaewen, 2003). Specific targeting motifs at the C-terminus of 6-PGL and 6-PGD isoforms suggested that the OPPP may also occur in peroxisomes (Reumann et al., 2004).  相似文献   

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