首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 703 毫秒
1.
作为一种重要的组蛋白修饰形式,H2B的单泛素化(uH2B)广泛地参与DNA复制、基因的表达与转录、DNA损伤修复及异染色质维持等生物学事件.在裂殖酵母中,H2B的单泛素化发生在其羧基端的119位赖氨酸(K119),并依赖于Rhp6/Bre1泛素连接酶复合体.研究表明,uH2B通过破坏H2A/H2B二聚体的结构促进mRNA在转录过程中的延伸,同时促进H3K4的三甲基化激活基因的表达及参与DNA损伤修复.本研究发现,Rhp6能够对核糖核苷酸还原酶抑制基因(Spd1)位点进行活跃的染色质修饰,促进H2B的单泛素化并抑制基因表达,从而促进dNTP的合成并调控DNA复制及损伤修复.重要的是,本研究发现,该过程不依赖于H3K4而决定于H3K9的三甲基化.同时uH2B直接在DNA双链断裂位点富集,通过改变染色质的结构参与DNA损伤修复,该过程中可能存在其他更为复杂的分子机制.  相似文献   

2.
p33ING1b是一个较晚发现的肿瘤抑制基因ING1的主要表达形式,自从被成功克隆以后得到了广泛的研究,已有的研究表明,p33ING1b参与了细胞的生长抑制、凋亡、染色质重塑、DNA损伤修复、肿瘤抑制和细胞衰老等。但是它在细胞衰老过程中的作用特别是对衰老细胞DNA损伤修复的影响还没有被地阐明,在本研究中,我们首先用2BS细胞构建了细胞衰老模型,通过RT-PCR和Western blot技术证实p33ING1b在衰老细胞中的表达水平是下调的,然后通过构建和包装包含p33ING1b基因的腺病毒,将p33ING1b导入年轻和衰老细胞中并使其过表达,用HCR(host cell reactivation)方法检测年轻细胞和衰老细胞DNA损伤修复能力。我们的实验首次表明,相对于年轻细胞,p33ING1b的过表达使衰老细胞的DNA的损伤修复能力显著增加,这说明p33ING1b在衰老细胞中的表达下调与衰老细胞DNA损伤修复能力的下降有关,也进一步证实了p33ING1b在细胞衰老过程中起着十分重要的作用。  相似文献   

3.
张楠  张珏  林戈 《遗传》2023,(5):379-394
DNA损伤是影响配子发生和胚胎发育的关键因素之一。卵母细胞容易被各种内外源因素(如活性氧、辐射、化疗药物等)诱发DNA损伤。目前研究发现,对于各类DNA损伤,各发育阶段的卵母细胞能够做出相应的DNA损伤反应,通过复杂的机制对DNA进行修复或者启动细胞凋亡。相比于进入生长阶段的卵母细胞,原始卵泡卵母细胞更容易被DNA损伤诱导凋亡。DNA损伤不易诱导卵母细胞减数分裂成熟进程停滞,然而携带DNA损伤的卵母细胞的发育能力明显下降。在临床上,衰老、放疗和化疗是导致女性卵母细胞DNA损伤、卵巢储备降低和不孕的常见原因。为此,人们尝试了能够减轻卵母细胞DNA损伤和增强DNA修复能力的多种方法,试图保护卵母细胞。本文对哺乳动物的各发育阶段卵母细胞的DNA损伤与修复的相关研究进行了梳理和总结,并讨论了其潜在的临床价值,以期为生育力保护提供新的策略。  相似文献   

4.
MicroRNA(miRNA)是一类包含21-25个核苷酸的单链非编码小RNA.研究表明,miR-210可直接抑制线粒体内铁硫蛋白(Fe-S)的支架蛋白ISCUl/2的表达从而抑制线粒体代谢;miR-210对DNA损伤修复基因-RAD家族有抑制作用,减弱了DNA修复能力;miR-210可以通过调节E2F3、纤维母细胞生长因子受体1(FGFRL1)、同源域基因A1(HOXA1)等阻止细胞增殖,调控细胞周期;缺氧刺激可上调miR-210表达,这对促进血管再生有重要作用.miR-210的表达受缺氧诱导,调控缺氧反应相关基因的表达,提示miR-210有可能成为诊治包括缺血性损伤、肿瘤在内等多种疾病的新靶点.  相似文献   

5.
聚腺苷二磷酸-核糖聚合酶1(poly ADP-ribose polymerase-1,PARP1)是细胞中重要的修饰酶,其最广为人知的作用是通过自身PAR修饰,募集以XRCC1为首的多种DNA损伤修复效应蛋白质,参与DNA单、双链损伤修复。PARP1还能通过促进复制叉停滞与核小体解聚,为DNA损伤修复提供有利条件,维持基因组稳定性。近年来,除DNA损伤修复方面的作用,还发现PARP1能影响细胞凋亡、自噬与炎症通路,与神经退行性疾病的发生发展密切相关。而PARP抑制剂(PARP inhibitor,PARPi)是一种靶向PARP1,与细胞同源重组(homologous recombination,HR)缺陷表型共同作用,产生合成致死效应的抗肿瘤药物。该药物可捕获PARP1并抑制其活性,一方面直接干扰PARP1参与的DNA损伤修复通路,另一方面也抑制了PARP1介导的DNA损伤修复通路选择和复制叉停滞,使细胞基因组不稳定。然而,在临床治疗中常发现肿瘤细胞对PARPi不敏感。肿瘤细胞对PARPi耐药与自身基因突变高度相关,这些基因分别作用于细胞HR修复途径、PARP1循环途径、复制叉稳定性和药物主动外排等方面,在耐药肿瘤患者中确定具体的突变位点,将为临床治疗提供帮助。本文旨在对PARP1的功能作一综述,并重点介绍PARPi的作用机制和与肿瘤耐药相关的突变基因及其耐药机制,以期加深对细胞中PARP1介导的DNA损伤修复通路的认识,并为将来的临床治疗提供新思路。  相似文献   

6.
跨损伤合成的DNA聚合酶——一类新的DNA聚合酶   总被引:1,自引:0,他引:1  
细胞虽然拥有多种修复途径,但有些DNA损伤仍不可避免地会逃避修复而在基因组上保留下来,细胞跨损伤DNA合成的分子机制一直是DNA修复中主要的未解决问题之一.最近通过对一类结构相关性UmuC/DinB蛋白质超家族成员的研究发现它们具有DNA聚合酶功能.这类新发现的DNA聚合酶不同于经典的复制性DNA聚合酶,它们能以易误/突变(error-prone/mutagenic)或无误(error-free)方式进行跨损伤(translesion)DNA合成,并且从细菌到人在进化上功能保守.  相似文献   

7.
乳腺癌易感蛋白1在DNA损伤修复中的作用   总被引:1,自引:0,他引:1  
人类乳腺癌易感基因1(breast cancer susceptibility gene 1,BRCA1)首先是在乳腺癌家族中发现的,是具有遗传倾向的乳腺癌和卵巢癌易感基因,其基因的突变与家族性乳腺癌及卵巢癌的发生有密切联系。BRCA1是一种抑癌基因,其基因产物可以参与维持基因组稳定性的多条细胞信号通路,例如DNA损伤诱导的细胞周期调控、DNA损伤修复、基因转录调节、细胞凋亡、泛素化等重要的细胞活动。本文就近几年来BRCA1在DNA损伤修复中的作用的研究进展作一综述,包括DNA损伤诱导的细胞周期检查点的激活和DNA损伤修复两方面。  相似文献   

8.
抗菌肽P7抑制大肠杆菌的非膜作用机制北大核心CSCD   总被引:1,自引:0,他引:1  
陈旋  李莉蓉 《微生物学报》2016,56(11):1737-1745
【目的】研究抗菌肽P7抑制大肠杆菌的非膜作用机制。【方法】P7与溴化乙锭竞争结合大肠杆菌基因组DNA的荧光光谱,分析P7与DNA的结合方式;流式细胞术分析P7与大肠杆菌基因组DNA结合对细菌细胞周期的影响;采用磁珠富集和PCR扩增相结合的方法分析P7特异结合的DNA序列;通过实时荧光定量PCR分析P7对大肠杆菌DNA复制和SOS损伤修复基因表达的影响;核酸染料的荧光分析研究P7对大肠杆菌DNA和RNA合成的影响。【结果】P7以嵌插的方式作用于大肠杆菌基因组DNA碱基对并形成肽-DNA复合物,使溴化乙锭-DNA复合体系的荧光强度减弱。P7可以显著增加大肠杆菌细胞周期中S期细胞数目,抑制大肠杆菌DNA复制。P7特异性结合rnh A使该基因表达水平显著下调2.24倍。同时,在肽的影响下参与大肠杆菌DNA复制相关的ssb、dna G、lig B和rnh A基因的表达水平显著下调(P<0.05),DNA损伤修复的rec A和rec N基因显著上调(P<0.05)。P7可降低大肠杆菌DNA和RNA的合成。【结论】P7特异性地结合rnh A序列引起大肠杆菌DNA的损伤并抑制大肠杆菌的DNA复制。在P7的影响下,参与大肠杆菌DNA复制相关的基因的表达水平下调,DNA损伤修复基因显著上调,同时抑制大肠杆菌DNA和RNA的合成。  相似文献   

9.
在真核生物中,基因组DNA是被高度包装成染色质的形式而存在的,这就对基因在复制、转录、修复、重组时的功能分子有效地接近DNA形成了天然屏障,执行上述生化反应需要松散染色质的结构,染色质松散是染色质动态变化即染色质重塑(chromatin remodeling)的一种形式.越来越多的证据表明,染色质重塑在DNA损伤反应中起着非常重要的作用,染色质重塑过程可以把损伤应答和修复蛋白募集到损伤位点,从而完成修复.为了进一步探讨染色质重塑和DNA损伤修复的偶联机制,采用了基于Lac抑制子和Lac操纵子的大规模染色质重塑报告系统,并借助GFP分子荧光显示方法,建立了可以直观地观察染色质松散的技术.在利用该技术证实了DNA损伤应答蛋白TIP60能够强烈诱导染色质松散的基础上,发现P53诱导基因3蛋白(PIG3)在细胞辐射DNA损伤反应中也能够一定程度地诱导染色质松弛.这些结果证明此技术是可靠的,也为阐述DNA损伤修复与染色质重塑关联机制提供了新的信息.  相似文献   

10.
毛蕊花甙快速修复dAMP羟自由基加合物   总被引:2,自引:0,他引:2  
活性氧造成的DNA损伤被认为是许多退行性疾病(包括癌症和衰老)的诱发事件.因此,探索清除活性氧和修复被活性氧损伤的DNA是非常重要的.利用脉冲辐解技术研究了从中药马先蒿中提取的毛蕊花甙对dAMP羟基加合物的修复能力与机制.脉冲辐照由氧化亚氮饱和的并含有毛蕊花甙的dAMP水溶液,发现伴随着dAMP羟基加合物瞬态吸收谱的衰减,生成了毛蕊花甙酚氧自由基瞬态吸收谱,表明毛蕊花甙可修复dAMP羟基加合物.修复反应的速率常数为5.9×108dm3·mol-1·s-1.对这一新的修复机制的深入了解有助于探讨新型防治药物.  相似文献   

11.
To ensure genome stability, cells have evolved a robust defense mechanism to detect, signal, and repair damaged DNA that is generated by exogenous stressors such as ionizing radiation, endogenous stressors such as free radicals, or normal physiological processes such as DNA replication. Homologous recombination (HR) repair is a critical pathway of repairing DNA double strand breaks, and it plays an essential role in maintaining genomic integrity. Previous studies have shown that BRIT1, also known as MCPH1, is a key regulator of HR repair. Here, we report that chromodomain helicase DNA-binding protein 4 (CHD4) is a novel BRIT1 binding partner that regulates the HR repair process. The BRCA1 C-terminal domains of BRIT1 are required for its interaction with CHD4. Depletion of CHD4 and overexpression of the ATPase-dead form of CHD4 impairs the recruitment of BRIT1 to the DNA damage lesions. As a functional consequence, CHD4 deficiency sensitizes cells to double strand break-inducing agents, reduces the recruitment of HR repair factor BRCA1, and impairs HR repair efficiency. We further demonstrate that CHD4-depleted cells are more sensitive to poly(ADP-ribose) polymerase inhibitor treatment. In response to DNA damage induced by poly(ADP-ribose) polymerase inhibitors, CHD4 deficiency impairs the recruitment of DNA repair proteins BRIT1, BRCA1, and replication protein A at early steps of HR repair. Taken together, our findings identify an important role of CHD4 in controlling HR repair to maintain genome stability and establish the potential therapeutic implications of targeting CHD4 deficiency in tumors.  相似文献   

12.
Autophagy and DNA repair are two essential biological mechanisms that maintain cellular homeostasis. Impairment of these mechanisms was associated with several pathologies such as premature aging, neurodegenerative diseases, and cancer. Intrinsic or extrinsic stress stimuli (e.g., reactive oxygen species or ionizing radiation) cause DNA damage. As a biological stress response, autophagy is activated following insults that threaten DNA integrity. Hence, in collaboration with DNA damage repair and response mechanisms, autophagy contributes to the maintenance of genomic stability and integrity. Yet, connections and interactions between these two systems are not fully understood. In this review article, current status of the associations and crosstalk between autophagy and DNA repair systems is documented and discussed.  相似文献   

13.
DNA错配修复与癌症的发生及治疗   总被引:3,自引:0,他引:3  
DNA错配修复是细胞复制后的一种修复机制,具有维持DNA复制保真度,控制基因变异的作用。DNA错配修复缺陷使整个基因组不稳定,最终会导致肿瘤和癌症的发生。DNA错配修复系统不仅通过矫正在DNA重组和复制过程中产生的碱基错配而保持基因组的稳定,而且通过诱导DNA损伤细胞的凋亡而消除由突变细胞生长形成的癌变。错配修复缺陷细胞的抗药性也引起了癌症化疗研究方面的关注。大多数情况下,错配修复健全型细胞对肿瘤化疗药物敏感,而错配修复缺陷细胞却有较高的抗性。DNA错配修复系统通过修复和诱导细胞凋亡维护基因组稳定的功能,显示了错配修复途径在癌症生物学和分子医学中的重要性。  相似文献   

14.
Genomic DNA is under constant attack from both endogenous and exogenous sources of DNA damaging agents. Without proper care, the ensuing DNA damages would lead to alteration of genomic structure thus affecting the faithful transmission of genetic information. During the process of evolution, organisms have acquired a series of mechanisms responding to and repairing DNA damage, thus assuring the maintenance of genome stability and faithful transmission of genetic information. DNA damage checkpoint is one such important mechanism by which, in the face of DNA damage, a cell can respond to amplified damage signals, either by actively halting the cell cycle until it ensures that critical processes such as DNA replication or mitosis are complete or by initiating apoptosis as a last resort. Over the last decade, complex hierarchical interactions between the key components like ATM/ATR in the checkpoint pathway and various other mediators, effectors including DNA damage repair proteins have begun to emerge. In the meantime, an intimate relationship between mechanisms of damage checkpoint pathway, DNA damage repair, and genome stability was also uncovered. Reviewed hereinare the recent findings on both the mechanisms of activation of checkpoint pathways and their coordination with DNA damage repair machinery as well as their effect on genomic integrity.  相似文献   

15.
生物有机体基因组DNA经常会受到内源或外源因素的影响而导致结构发生变化,产生损伤;在长期进化过程中,有机体也相应形成了一系列应对与修复损伤DNA,并维持染色体基因组正常结构功能的机制。其中DNA损伤检验点(DNA damage checkpoint)就是在感应DNA损伤的基础上,对损伤感应信号进行转导,或引起细胞周期的暂停,从而使细胞有足够的时间对损伤DNA进行修复,或最终导致细胞发生凋亡。DNA损伤检验点信号转导途径是一个高度保守的信号感应过程,整个途径大致可以分为损伤感应、信号传递及信号效应3个组成部分。其中3-磷脂酰肌醇激酶家族类成员ATM(ataxia-telangiectasia mutated)和ATR(ataxia-telangiectasia and Rad3-related)活性的增加构成整个途径活化的第一步。它们通过激活下游的效应激酶,Chk2/Chk1,通过协同作用许多其他调控细胞周期、DNA复制、DNA损伤修复及细胞凋亡等过程的蛋白质因子来实现细胞对DNA损伤的高度协调反应。近十几年,随着此领域研究的不断深入,人们逐步揭示了DNA损伤检验点途径发生过程中,各种核心组分通过与不同调节因子、效应因子及DNA损伤修复蛋白间的复杂相互作用,以实现监测感应异常DNA结构并实施相应反应的机制;其中,检验点衔接因子(mediators)及染色质结构,尤其是核小体组蛋白的共价修饰在调控ATM/ATR活性,促进ATM/ATR与底物间的相互作用以及介导DNA损伤位点周围染色质区域上多蛋白复合物在时间与空间上的动态形成发挥着重要的作用。同时,人们也开始发现DNA损伤检验点途径与DNA损伤修复、基因组稳定性以及肿瘤发生等过程之间某些内在的联系。该反应途径在通过协调细胞针对DNA损伤做出各种反应的基础上,直接或间接地参与或调控DNA损伤修复过程,并与DNA损伤修复途径协同作用最终保证染色体基凶组结构的完整性,而检验点途径的改变,则会引起基因组不稳定的发生,包括从突变频率的提高到大范围的染色体重排,以及染色体数量的畸变。如:突变发生在肿瘤形成早期,会大大增加肿瘤发生的几率。文章将对DNA损伤检验点途径机制及其对DNA损伤修复、基因组稳定性影响的最新进展进行综述。  相似文献   

16.
The cellular DNA damage response (DDR) machinery that maintains genomic integrity and prevents severe pathologies, including cancer, is orchestrated by signaling through protein modifications. Protein ubiquitylation regulates repair of DNA double-strand breaks (DSBs), toxic lesions caused by various metabolic as well as environmental insults such as ionizing radiation (IR). Whereas several components of the DSB-evoked ubiquitylation cascade have been identified, including RNF168 and BRCA1 ubiquitin ligases, whose genetic defects predispose to a syndrome mimicking ataxia-telangiectasia and cancer, respectively, the identity of the apical E1 enzyme involved in DDR has not been established. Here, we identify ubiquitin-activating enzyme UBA1 as the E1 enzyme required for responses to IR and replication stress in human cells. We show that siRNA-mediated knockdown of UBA1, but not of another UBA family member UBA6, impaired formation of both ubiquitin conjugates at the sites of DNA damage and IR-induced foci (IRIF) by the downstream components of the DSB response pathway, 53BP1 and BRCA1. Furthermore, chemical inhibition of UBA1 prevented IRIF formation and severely impaired DSB repair and formation of 53BP1 bodies in G1, a marker of response to replication stress. In contrast, the upstream steps of DSB response, such as phosphorylation of histone H2AX and recruitment of MDC1, remained unaffected by UBA1 depletion. Overall, our data establish UBA1 as the apical enzyme critical for ubiquitylation-dependent signaling of both DSBs and replication stress in human cells, with implications for maintenance of genomic integrity, disease pathogenesis and cancer treatment.  相似文献   

17.
Proper repair of damaged DNA is crucial for genetic integrity and organismal survival. As semi-autonomous organelles, plastids have their own genomes whose integrity must be preserved. Several factors have been shown to participate in plastid DNA damage repair; however, the underlying mechanism remains unclear. Here, we elucidate a mechanism of homologous recombination (HR) repair in chloroplasts that involves R-loops. We find that the recombinase RecA1 forms filaments in chloroplasts during HR repair, but aggregates as puncta when RNA:DNA hybrids accumulate. ssDNA-binding proteins WHY1/3 and chloroplast RNase H1 AtRNH1C are recruited to the same genomic sites to promote HR repair. Depletion of AtRNH1C or WHY1/3 significantly suppresses the binding of RNA polymerase to the damaged DNA, thus reducing HR repair and modulating microhomology-mediated double-strand break repair. Furthermore, we show that DNA polymerase IB works with AtRNH1C genetically to complete the DNA damage repair process. This study reveals the positive role of R-loops in facilitating the activities of WHY1/3 and RecA1, which in turn secures HR repair and organellar development.  相似文献   

18.
19.
DNA修复酶是一类能保护生物体免受各种DNA损伤的毒性效应和保证遗传信息完整性的重要酶蛋白。近年来对DNA修复酶晶体结构的研究揭示了一些结构基序参与了酶蛋白与特定DNA损伤的识别过程,这些研究结果促进了对修复特定DNA损伤的作用机理和结构基础的认识和了解。本文综述了这方面的研究进展。  相似文献   

20.
物理或化学等多种因素均可以引起DNA损伤。为维持机体基因组的稳定性,机体形成了精确完整的机制来修复损伤的/DNA。SUMO(smallubiquitin-relatedmodifier,SUMO)化修饰与其他蛋白翻译后修饰一样,具有多种生物学功能。近年来的研究表明,其在DNA损伤修复中也具有非常重要的作用。该文就DNA损伤修复、SUMO,96修饰系统及其二者关系的最新研究进展作了较为全面的介绍和总结。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号