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1.
DNA的损伤修复是一个多因子参与的、多环节的复杂修复系统。p53基因以多条信号通路,多种调控方式参与DNA修复。它可以通过其下游一系列靶基因p21、gadd45等调控细胞周期,使细胞停滞于G1期、G2期等检测点,从而使受损DNA有足够的时间进行多因子参与的修复过程;也可以与DNA修复因子PRSA、PCNA、XPp48基因等相互作用,直接参与DNA修复;还可以蛋白-蛋白相互作用参与DNA修复。  相似文献   

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有时被称为“基因组守护神”的肿瘤抑制蛋白p53,针对DNA损伤发生反应,要么停止细胞分裂,要么促使细胞凋亡。p53的反应通过阻止已发生恶性突变的细胞不停的生长,从而阻断肿瘤的结构形成。但是p53自身也对损伤敏感,这一点被认为利于半数癌症的生长,包括常见的一些癌症,如皮肤癌、乳腺癌和结肠癌。现在,研究人员已鉴定了一种药物,能够保留一些变异的P53蛋白的正常功能,因此可能开辟出一条新的治疗癌症的方法。  相似文献   

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Zebrafish △113p53, an N-terminal truncated p53 isoform, is a p53-target gene that antagonises p53-mediated apoptotic activity. Interestingly, △113p53 does not act on p53 in a dominant-negative manner, but rather interferes with the p53 function by differentially modulating p53-target gene expression to protect cells from apoptosis. Previous studies showed that over-expressed △113p53 and p53 proteins formed a complex. However, it is not known whether endogenous p53 and △113p53 proteins also interact with each other, and if this interaction is required for △113p53 to inhibit the apoptotic activity of full-length p53. In this study, we used two available zebrafish p53 antibodies to address these questions. One, Zfp53-N, only recognises full-length p53, whereas the other, Zfp53-A7C10, detects both full-length p53 and △113p53. Using Zfp53-N for immunoprecipitation and Zfp53-A7C 10 for detection, we demonstrated that endogenous △113p53 and full-length p53 induced by a DNA-damaging drug formed a complex in vivo. Furthermore, of the six △113p53 mutants we generated with different point mutations in the oligomerisation domain, two failed to interact with p53 and lost the ability to modulate p53-target gene expression and inhibit p53-induced cell apoptosis. However, those △113p53 mutants that could interact with p53 retained the ability to antagonise the apoptotic activity of p53. Therefore, our data demonstrated that protein--protein interaction between △113p53 and p53 is essential for the anti-apoptotic function of △113p53. In addition, the two △113p53 mutants that failed to interact with p53 are also useful for the study of the mechanisms of other functions of △113p53.  相似文献   

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DNA损伤与细胞周期调控   总被引:8,自引:0,他引:8  
DNA损伤和损伤后修复可引起细胞周期阻滞,这一事件由三个阶段组成:损伤的识别,损伤信号的传递以及细胞周期阻滞.在某些情况,这种细胞周期阻滞会失效.  相似文献   

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肿瘤细胞中存活蛋白与p53的相互作用   总被引:1,自引:0,他引:1  
存活蛋白(survivin)作为凋亡抑制蛋白(IAP)家族的最小成员,在肿瘤组织中高表达,且具有严格的细胞周期依赖性,而p53作为细胞周期中的负调节因子,参与了细胞周期调控和细胞凋亡等重要的生物学功能。最近研究表明,存活蛋白与p53的相互作用在肿瘤的发生发展中具有重要作用。该文将从细胞周期与细胞凋亡的角度对存活蛋白/p53通路在肿瘤中的研究进展进行阐明。  相似文献   

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培养B95-8细胞,分离EB病毒,转染外周血和扁桃体淋巴细胞,建立永生化的LCLs和TLCL细胞株; 带有wt P53基因的LCLs在DNA损伤剂——顺铂处理前未检出p53蛋白,经顺铂处理后,LCLs随作用时间延长细胞存活率明显下降、p53蛋白水平升高、DNA电泳显出梯状带;含mt P53基因的淋巴瘤细胞在顺铂处理前可检出高浓度的p53蛋白,经顺铂处理后,细胞存活率与p53蛋白并无明显改变.这些结果表明:顺铂引起细胞DNA损伤、激活wt p53蛋白的表达、继而wt p53蛋白又促进了DNA损伤细胞凋亡.  相似文献   

7.
DNA的精确复制和遗传对维持基因组稳定性有重要作用。DNA双链断裂损伤可能诱导细胞凋亡和染色质重排,在肿瘤的发生发展过程中发挥作用。53BP1是DNA双链断裂修复中的重要调节蛋白质之一,对调控损伤修复平衡和维持基因组稳定性起着重要作用。本文主要对53BP1的结构、生物学功能、信号通路、分子机制和翻译后修饰做一浅显的总结和展望,希望能为53BP1的深入研究提供一些理论基础。  相似文献   

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微RNA(microRNA,miRNA)是一种内源性非编码小RNA,在转录后水平调控基因表达,在肿瘤的发生发展过程中起重要作用。p53是重要的抑癌基因,在DNA损伤和癌基因等刺激下活化,诱导下游基因表达,使细胞周期阻滞、DNA修复并促进细胞衰老或凋亡。本文主要介绍近期发现的直接受p53调控的miR-34基因家族,及其在生长阻滞和细胞凋亡方面的研究进展,揭示了蛋白质与非编码RNA在重要的p53抑癌网络中的相互关系,为肿瘤的研究提供了新的思路。  相似文献   

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人们通常用经典的操作式学习方法来训练动物的行为 ,使动物学会根据外部信号 (如声音 )产生特定的行为反应 ,以获取奖赏 (如食物 )。而本文的作者用脑内植入微电极进行脑区刺激的方法教会动物如何学习 ,可以去除用来产生信号和奖赏的外部环境对实验的限制。这一动物模型使操作者能远距离地指挥动物的行为 ,很像控制智能机器人的方法。电刺激能否产生等同于信号或奖赏的效应 ,取决于它所刺激的脑区。作者在自由活动大鼠的躯体感觉皮层 (SI)左右两侧胡须代表区和内侧前脑束 (MFB)内植入电极加以刺激 ,以产生信号和奖赏效应 ,据此准确地指…  相似文献   

10.
依赖P53的P53R2基因在细胞周期检验点对损伤DNA的修复作用   总被引:2,自引:0,他引:2  
1 .p5 3基因及P5 3蛋白p5 3基因最初被认为是一个普通的癌基因 ,其产物的作用是刺激肿瘤细胞的生长。但后来发现原先研究的p5 3基因只是野生型p5 3基因的突变体 ,只有突变型p5 3基因的产物才能刺激不正常细胞 (如癌细胞 )的生长 ,而野生型p5 3基因的产物对肿瘤则有抑制作用 ,正常的p5 3基因原来是一个抑癌基因。经长期研究发现 ,突变型p5 3基因在人类多种肿瘤细胞中广泛存在。P5 3蛋白是p5 3基因编码的蛋白转录因子 ,其相对分子质量为 5 .3× 1 0 3,是由 393个氨基酸残基组成的[1] 。P5 3蛋白是一种重要的抗肿瘤因子 ,它能以序…  相似文献   

11.
The p53 response to DNA damage   总被引:12,自引:0,他引:12  
Meek DW 《DNA Repair》2004,3(8-9):1049-1056
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Boisvert FM  Lamond AI 《Proteomics》2010,10(22):4087-4097
The nucleolus is involved in regulating several aspects of stress responses and cell cycle arrest through the tumor suppressor p53. Under normal conditions, p53 is a short-lived protein that is present in cells at a barely detectable level. Upon exposure of cells to various forms of exogenous stress, such as DNA damage, there is a stabilization of p53 which is then responsible for an ensuing cascade of events. To further investigate the effect of p53 activation, we used a MS-based proteomics method to provide an unbiased, quantitative and high-throughput approach for measuring the subcellular distribution of the proteome that is dependent on p53. The spatial proteomics method analyses a whole cell extract created by recombining differentially labeled subcellular fractions derived from cells in which proteins have been mass labeled with heavy isotopes [Boisvert, F.-M., Lam, Y. W., Lamont, D., Lamond, A. I., Mol. Cell. Proteomics 2010, 9, 457-470]. This was used here to measure the relative distribution between cytoplasm, nucleus and nucleolus of around 2000 proteins in HCT116 cells that are either expressing wild-type p53 or null for p53. Spatial proteomics also facilitates a proteome-wide comparison of changes in protein localization in response to a wide range of physiological and experimental perturbations. We used this method to study differences in protein localization in HCT116 cells either with or without p53, and studied the differences in cellular response to DNA damage following treatment of HCT116 cells with etoposide in both p53 wild-type and null genetic backgrounds.  相似文献   

16.
The aging induces free radicals leading to DNA damage (8‐oxo‐2′‐deoxyguanosine, 8‐oxo2dG). DNA injury causes increased expression of p53 gene and p53 protein. Levels of 8‐oxo2dG (HPLC), p53 mRNA (PCR) and p53 protein (Western blot) were estimated in gray matter (GM), white matter (WM), cerebellum (C) and medulla oblongata (MO) of control, 12‐ and 24‐month‐old rats. The level of 8‐oxo2dG increased with age in C (P < 0.05 in 12‐month‐old and P < 0.01 in 24‐month‐old rats) and MO. In 12‐month‐old animals the level of 8‐oxo2dG in GM and WM was higher than in controls. In 12‐month‐old animals p53 gene expression decreased while amounts of p53 protein increased, depending on the oxidative DNA damage. In 24‐month‐old rats, expression of p53 increased in all structures (P ≤ 0.05) while p53 protein showed decreased levels in most of structures of central nervous system (WM, C, MO). Aging leads to increased 8‐oxo2dG and augmented p53 gene expression, accompanied by a lowered expression of p53 protein.  相似文献   

17.
Zhang XP  Liu F  Wang W 《Biophysical journal》2012,102(10):2251-2260
The selective expression of p53-targeted genes is central to the p53-mediated DNA damage response. It is affected by multiple factors including posttranslational modifications and cofactors of p53. Here, we proposed an integrated model of the p53 network to characterize how the cellular response is regulated by key cofactors of p53, Hzf and ASPP. We found that the sequential induction of Hzf and ASPP is crucial to a reliable cell-fate decision between survival and death. After DNA damage, activated p53 first induces Hzf, which promotes the expression of p21 to arrest the cell cycle and facilitate DNA repair. The cell recovers to normal proliferation after the damage is repaired. If the damage is beyond repair, Hzf is effectively degraded, and activated E2F1 induces ASPP, which promotes the expression of Bax to trigger apoptosis. Furthermore, interrupting the induction of Hzf or ASPP remarkably impairs the cellular function. We also proposed two schemes for the production of the unknown E3 ubiquitin ligase for Hzf degradation: it is induced by either E2F1 or p53. In both schemes, the sufficient degradation of Hzf is required for apoptosis induction. These results are in good agreement with experimental observations or are experimentally testable.  相似文献   

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p53 suppresses tumor development by responding to unauthorized cell proliferation, growth factor or nutrient deprivation, and DNA damage. Distinct pathways have been identified that cause p53 activation, including ARF-dependent response to oncogene activation, ribosomal protein-mediated response to abnormal rRNA synthesis, and ATM-dependent response to DNA damage. Elucidating the mechanisms of these signaling events are critical for understanding tumor suppression by p53 and development of novel cancer therapeutics. More than a decade of research has established the ATM kinase as a key molecule that activates p53 after DNA damage. Our recent study revealed that ATM phosphorylation of MDM2 is likely to be the key step in causing p53 stabilization. Upon activation by ionizing irradiation, ATM phosphorylates MDM2 on multiple sites near its RING domain. These modifications inhibit the ability of MDM2 to poly-ubiquitinate p53, thus leading to its stabilization. MDM2 phosphorylation does not inactivate its E3 ligase activity per se, since MDM2 self-ubiquitination and MDMX ubiquitination functions are retained. The selective inhibition of p53 poly-ubiquitination is accomplished through disrupting MDM2 oligomerization that may provide a scaffold for processive elongation of poly ubiquitin chains. These findings suggest a novel model of p53 activation and a general mechanism of E3 ligase regulation by phosphorylation.  相似文献   

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