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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的合成的分子机制一直是DAN修复中的主要的未解决问题之一,最近通过对一类结构相关性UmuC/DimB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,并且从细胞到人在进化上功能保守。  相似文献   

2.
跨损伤DNA合成(translesion DNA synthesis,TLS)是细胞应答DNA损伤时的一种耐受机制,它利用特异的低保真度的DNA聚合酶直接在损伤的对面合成DNA,使复制得以延续.TLS分为无错旁路和易错旁路两种途径,其中易错旁路途径是DNA损伤诱发基因组突变的主要机制.另外TLS也与肿瘤细胞耐药性相关.在体内执行TLS功能的DNA聚合酶主要是DNA聚合酶Y家族的成员,其中包括聚合酶kappa(Polκ).就TLS的特性,哺乳动物Polκ的结构及催化活性、表达及调控、蛋白质相互作用及其在TLS中可能的调控机制和体内功能等方面做一阐述.  相似文献   

3.
周虎传  杨劲 《生物磁学》2011,(2):365-367
Y家族DNA聚合酶是一种跨损伤复制酶,即能以损伤的DNA为模板进行复制。Y家族DNA聚合酶广泛分布生物界,人类细胞中Y家族DNA聚合酶至少包括Rev1、Polκ、Polι、Polη四种,Polι在以DNA为模板进行复制时错配率很高而不同于其他跨损伤DNA聚合酶,Polι是目前发现的所有DNA聚合酶中保真性最低的DNA聚合酶。很高的错配率导致很高的突变率,最后基因的突变导致癌症的发生,因此Polι在各个国家被广泛的研究,并且对Polι的各个不同的特性进行了研究,取得了一系列成果,现对Polι的研究进展予以综述,并展望了未来的研究趋势。  相似文献   

4.
Y家族DNA聚合酶是一种跨损伤复制酶,即能以损伤的DNA为模板进行复制。Y家族DNA聚合酶广泛分布生物界,人类细胞中Y家族DNA聚合酶至少包括Rev1、Polκ、Polι、Polη四种,Polι在以DNA为模板进行复制时错配率很高而不同于其他跨损伤DNA聚合酶,Polι是目前发现的所有DNA聚合酶中保真性最低的DNA聚合酶。很高的错配率导致很高的突变率,最后基因的突变导致癌症的发生,因此Polι在各个国家被广泛的研究,并且对Polι的各个不同的特性进行了研究,取得了一系列成果,现对Polι的研究进展予以综述,并展望了未来的研究趋势。  相似文献   

5.
目的:将带有DNA聚合酶iota(DNA Polymerase iota,Polι)目的基因的真核表达质粒PCDNA3.1转入HEK-293细胞,建立DNA聚合酶iota在HEK-293细胞中的高表达体系,为进一步研究DNA聚合酶在DNA损伤修复中的生物学功能奠定了基础.方法:用脂质体2000(Lipofectamine2000)将带有目的基因的真核表达质粒PCDNA3.1转入HEK-293细胞,通过G418筛选抗性克隆,用一步法提取细胞总RNA,采用逆转录聚合酶链式反应(RT-PCR)技术检测出高表达克隆.结果:通过G418筛选筛选出了具有G418抗性的克隆,通过RT-PCR技术检测出高表达DNA聚合酶iota的HEK-293细胞系.结论:建立了高表达DNA聚合酶iota的HEK-293细胞系.为进一步研究DNA聚合酶在DNA损伤修复中的生物学功能奠定了基础.  相似文献   

6.
在真核生物染色体DNA复制过程中主要涉及三种DNA聚合酶:α(Polα),δ(Polδ)和ε(Polε)。人源DNA聚合酶δ是p125,p68,p50,p12四个亚基构成的异源四聚体,属于DNA聚合酶B家族,具有5’-3’聚合酶催化活性和3’-5’核酸外切酶活性,是染色体DNA复制过程中最主要的复制酶,同时还参与多种形式的损伤修复,在保证基因组结构的完整性和遗传稳定性方面具有重要的意义。由于其重要的生物学功能,目前引起人们更多的关注和重视。对人源DNA聚合酶δ的分离纯化方法及涉及DNA复制和损伤修复过程中酶学功能等方面的最新研究进展进行综述。  相似文献   

7.
生物体在正常生命过程中面临内/外因来源的DNA损伤,DNA损伤不仅影响基因正确复制,也阻碍其正常转录. 为避免DNA损伤带来的灾难性后果,生物体进化出一整套修复机制,以保证复制和转录的正确性、基因组的完整性和遗传的稳定性. 本文重点综述了RNA聚合酶监视(RNA polymerase-surveilled,RNAP-S)的DNA修复机制. 首先从RNA聚合酶(RNA polymerase,RNAP)的结构出发介绍了RNAP对DNA损伤的感知机制;其次讨论了滞留RNAP的回溯、与其模板DNA的解离以及后续修复机制的启动,真核细胞科凯恩综合征B蛋白(Cockayne syndrome protein B,CSB)及其泛素化和8-氧代鸟嘌呤DNA糖基化酶1(8-oxoguanine DNA glycosylase1,OGG1)介导的RNAP-S修复;最后探讨了RNAP-S损伤修复的生物学意义并展望其前景.  相似文献   

8.
受PCNA翻译后修饰调控的DNA损伤耐受机制   总被引:1,自引:0,他引:1  
秦周帅  张传林  萧伟 《生命科学》2014,(11):1143-1156
为了应对DNA损伤复制阻滞,增殖细胞核抗原(proliferating cell nuclear antigen,PCNA)164位点的赖氨酸残基能够发生一系列的泛素化修饰并介导两种不用的损伤耐受机制,即DNA跨损伤合成(TLS)和无错耐受通路。目前,单泛素化的PCNA介导DNA跨损伤合成通路,而多泛素化的PCNA介导无错耐受通路这一观点已被普遍认可。另外,PCNA的164位点还能被泛素类似物小蛋白(SUMO)修饰,从而抑制DNA双链断裂重组。总结PCNA的翻译后修饰及其在DNA损伤应答过程中的作用机制,有助于我们了解PCNA在DNA损伤耐受机制中的中心作用。重点总结PCNA的翻译后修饰如何调控真核生物DNA损伤应答的不同途径。  相似文献   

9.
本文主要介绍动物细胞中四种依赖于DNA的DNA聚合酶(简称DNA聚合酶)的结构、功能及其在DNA复制和修复作用中的研究现状。  相似文献   

10.
Xie ZH 《遗传》2012,34(6):679-686
DNA的忠实性合成对于基因组稳定和物种延续至关重要,否则可能会产生严重的后果。DNA合成具有极高的忠实性,这主要基于3个步骤:(1)基于氢键、碱基对构象或其他因素的核苷酸选择;(2)基于3′→5′外切酶活性的校对,方式有顺式校对和反式校对,可以去除错误掺入的核苷酸;(3)基于错配修复、切除修复、同源重组修复和跨损伤DNA合成的修复过程,可以纠正逃过校对的错误核苷酸。由于DNA聚合酶不仅可以作为抗病毒或抗癌药物的靶标,而且其忠实性还与抗药性或药物副作用有关,所以深入研究DNA合成的忠实性具有非常重要的意义。文章主要论述了DNA合成的忠实性机制,并对DNA聚合酶的应用前景做了展望。  相似文献   

11.
DNA damage that escapes repair and blocks replicative DNA polymerases is tolerated by bypass mechanisms that fall into two general categories: error-free template switching and error-prone translesion synthesis. Prior studies of DNA damage responses in Saccharomyces cerevisiae have demonstrated that repair mechanisms are critical for survival when a single, high dose of DNA damage is delivered, while bypass/tolerance mechanisms are more important for survival when the damage level is low and continuous (acute and chronic damage, respectively). In the current study, epistatic interactions between DNA-damage tolerance genes were examined and compared when haploid yeast cells were exposed to either chronic ultraviolet light or chronic methyl methanesulfonate. Results demonstrate that genes assigned to error-free and error-prone bypass pathways similarly promote survival in the presence of each type of chronic damage. In addition to using defined sources of chronic damage, rates of spontaneous mutations generated by the Pol ζ translesion synthesis DNA polymerase (complex insertions in a frameshift-reversion assay) were used to infer epistatic interactions between the same genes. Similar epistatic interactions were observed in analyses of spontaneous mutation rates, suggesting that chronic DNA-damage responses accurately reflect those used to tolerate spontaneous lesions. These results have important implications when considering what constitutes a safe and acceptable level of exogenous DNA damage.  相似文献   

12.
Overexpression of the error-prone DNA polymerase beta (Pol beta) has been found to increase spontaneous mutagenesis by competing with the replicative polymerases during DNA replication. Here, we investigate an additional mechanism potentially used by Pol beta to enhance genetic instability via its ability to incorporate ribonucleotides into DNA. By using an in vitro primer extension assay, we show that purified human and calf thymus Pol beta can synthesize up to 8-mer long RNA. Moreover, Pol beta can efficiently incorporate rCTP opposite G in the absence of dCTP and, to a lesser extent, rATP opposite T in the absence of dATP and rGTP opposite C in the absence of dGTP. Recently, Pol beta was shown to catalyze in vitro translesion replication of a thymine cyclobutane pyrimidine dimer (CPD). Here, we investigate if ribonucleotides could be incorporated opposite the CPD damage and modulate the efficiency of the bypass process. We find that all four rNTPs can be incorporated opposite the CPD lesion, and that this process affects translesion synthesis. We discuss how incorporation of ribonucleotides into DNA may contribute to the high frequency of mutagenesis observed in Pol beta up-regulating cells.  相似文献   

13.
14.
DNA repair mechanisms are critical for maintaining the integrity of genomic DNA, and their loss is associated with cancer predisposition syndromes. Studies in Saccharomyces cerevisiae have played a central role in elucidating the highly conserved mechanisms that promote eukaryotic genome stability. This review will focus on repair mechanisms that involve excision of a single strand from duplex DNA with the intact, complementary strand serving as a template to fill the resulting gap. These mechanisms are of two general types: those that remove damage from DNA and those that repair errors made during DNA synthesis. The major DNA-damage repair pathways are base excision repair and nucleotide excision repair, which, in the most simple terms, are distinguished by the extent of single-strand DNA removed together with the lesion. Mistakes made by DNA polymerases are corrected by the mismatch repair pathway, which also corrects mismatches generated when single strands of non-identical duplexes are exchanged during homologous recombination. In addition to the true repair pathways, the postreplication repair pathway allows lesions or structural aberrations that block replicative DNA polymerases to be tolerated. There are two bypass mechanisms: an error-free mechanism that involves a switch to an undamaged template for synthesis past the lesion and an error-prone mechanism that utilizes specialized translesion synthesis DNA polymerases to directly synthesize DNA across the lesion. A high level of functional redundancy exists among the pathways that deal with lesions, which minimizes the detrimental effects of endogenous and exogenous DNA damage.  相似文献   

15.
Abstract

Environmental mutagens lead to mutagenesis. However, the mechanisms are very complicated and not fully understood. Environmental mutagens produce various DNA lesions, including base-damaged or sugar-modified DNA lesions, as well as epigenetically modified DNA. DNA polymerases produce mutation spectra in translesion DNA synthesis (TLS) through misincorporation of incorrect nucleotides, frameshift deletions, blockage of DNA replication, imbalance of leading- and lagging-strand DNA synthesis, and genome instability. Motif or subunit in DNA polymerases further affects the mutations in TLS. Moreover, protein interactions and accessory proteins in DNA replisome also alter mutations in TLS, demonstrated by several representative DNA replisomes. Finally, in cells, multiple DNA polymerases or cellular proteins collaborate in TLS and reduce in vivo mutagenesis. Summaries and perspectives were listed. This review shows mechanisms of mutagenesis induced by DNA lesions and the effects of multiple factors on mutations in TLS in vitro and in vivo.  相似文献   

16.
The well-being of all living organisms relies on the accurate duplication of their genomes. This is usually achieved by highly elaborate replicase complexes which ensure that this task is accomplished timely and efficiently. However, cells often must resort to the help of various additional “specialized” DNA polymerases that gain access to genomic DNA when replication fork progression is hindered. One such specialized polymerase family consists of the so-called “translesion synthesis” (TLS) polymerases; enzymes that have evolved to replicate damaged DNA. To fulfill their main cellular mission, TLS polymerases often must sacrifice precision when selecting nucleotide substrates. Low base-substitution fidelity is a well-documented inherent property of these enzymes. However, incorrect nucleotide substrates are not only those which do not comply with Watson–Crick base complementarity, but also those whose sugar moiety is incorrect. Does relaxed base-selectivity automatically mean that the TLS polymerases are unable to efficiently discriminate between ribonucleoside triphosphates and deoxyribonucleoside triphosphates that differ by only a single atom? Which strategies do TLS polymerases employ to select suitable nucleotide substrates? In this review, we will collate and summarize data accumulated over the past decade from biochemical and structural studies, which aim to answer these questions.  相似文献   

17.
Andersen PL  Xu F  Xiao W 《Cell research》2008,18(1):162-173
In addition to well-defined DNA repair pathways, all living organisms have evolved mechanisms to avoid cell death caused by replication fork collapse at a site where replication is blocked due to disruptive covalent modifications of DNA. The term DNA damage tolerance (DDT) has been employed loosely to include a collection of mechanisms by which cells survive replication-blocking lesions with or without associated genomic instability. Recent genetic analyses indicate that DDT in eukaryotes, from yeast to human, consists of two parallel pathways with one being error-free and another highly mutagenic. Interestingly, in budding yeast, these two pathways are mediated by sequential modifications of the proliferating cell nuclear antigen (PCNA) by two ubiquitination complexes Rad6-Rad18 and Mms2-Ubc13-Rad5. Damage-induced monoubiquitination of PCNA by Rad6-Rad18 promotes translesion synthesis (TLS) with increased mutagenesis, while subsequent polyubiquitination of PCNA at the same K164 residue by Mms2-Ubc13-Rad5 promotes error-free lesion bypass. Data obtained from recent studies suggest that the above mechanisms are conserved in higher eukaryotes. In particular, mammals contain multiple specialized TLS polymerases. Defects in one of the TLS polymerases have been linked to genomic instability and cancer.  相似文献   

18.
The primary role of DNA polymerases is to accurately and efficiently replicate the genome in order to ensure the maintenance of the genetic information and its faithful transmission through generations. This is not a simple task considering the size of the genome and its constant exposure to endogenous and environmental DNA damaging agents. Thus, a number of DNA repair pathways operate in cells to protect the integrity of the genome. In addition to their role in replication, DNA polymerases play a central role in most of these pathways. Given the multitude and the complexity of DNA transactions that depend on DNA polymerase activity, it is not surprising that cells in all organisms contain multiple highly specialized DNA polymerases, the majority of which have only recently been discovered. Five DNA polymerases are now recognized in Escherichia coli, 8 in Saccharomyces cerevisiae, and at least 15 in humans. While polymerases in bacteria, yeast and mammalian cells have been extensively studied much less is known about their counterparts in plants. For example, the plant model organism Arabidopsis thaliana is thought to contain 12 DNA polymerases, whose functions are mostly unknown. Here we review the properties and functions of DNA polymerases focusing on yeast and mammalian cells but paying special attention to the plant enzymes and the special circumstances of replication and repair in plant cells.  相似文献   

19.
Mechanisms of Dealing with DNA Damage-Induced Replication Problems   总被引:1,自引:0,他引:1  
During every S phase, cells need to duplicate their genomes so that both daughter cells inherit complete copies of genetic information. Given the large size of mammalian genomes and the required precision of DNA replication, genome duplication requires highly fine-tuned corrective and quality control processes. A major threat to the accuracy and efficiency of DNA synthesis is the presence of DNA lesions, caused by both endogenous and exogenous damaging agents. Replicative DNA polymerases, which carry out the bulk of DNA synthesis, evolved to do their job extremely precisely and efficiently. However, they are unable to use damaged DNA as a template and, consequently, are stopped at most DNA lesions. Failure to restart such stalled replication forks can result in major chromosomal aberrations and lead to cell dysfunction or death. Therefore, a well-coordinated response to replication perturbation is essential for cell survival and fitness. Here we review how this response involves activating checkpoint signaling and the use of specialized pathways promoting replication restart. Checkpoint signaling adjusts cell cycle progression to the emergency situation and thus gives cells more time to deal with the damage. Replication restart is mediated by two pathways. Homologous recombination uses homologous DNA sequence to repair or bypass the lesion and is therefore mainly error free. Error-prone translesion synthesis employs specialized, low fidelity polymerases to bypass the damage.  相似文献   

20.
Translesion DNA synthesis is a mechanism of DNA damage tolerance, and mono-ubiquitination of proliferating cell nuclear antigen (PCNA) is considered to play a key role in regulating the switch from replicative to translesion DNA polymerases (pols). In this study, we analyzed effects of a replicative pol δ on PCNA mono-ubiquitination with the ubiquitin-conjugating enzyme and ligase UBE2A/HHR6A/RAD6A-RAD18. The results revealed that PCNA interacting with pol δ is a better target for ubiquitination, and PCNA mono-ubiquitination could be coupled with DNA replication. Consequently, we could reconstitute replication-coupled switching between pol δ and a translesion pol, pol η, on an ultraviolet-light-irradiated template. With this system, we obtained direct evidence that polymerase switching reactions are stimulated by mono-ubiquitination of PCNA, depending on a function of the ubiquitin binding zinc finger domain of pol η. This study provides a framework for detailed analyses of molecular mechanisms of human pol switching and regulation of translesion DNA synthesis.  相似文献   

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