首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 119 毫秒
1.
DNA的胞嘧啶(C)5-甲基化是一种重要的表观修饰,它参与基因调节、基因组印记、X-染色体失活、重复序列抑制和癌症发生等过程. 5-甲基胞嘧啶(5mC)可被TET (ten-eleven translocation)蛋白家族进一步转化为5-羟甲基胞嘧啶(5hmC),该过程是DNA去甲基化的1个必要阶段. 5hmC可在活性转录基因起始位点和Polycomb抑制基因启动子延伸区域富集.TET蛋白包括3个成员TET1、TET2和TET3,均属于α-酮戊二酸和Fe2+依赖的双加氧酶,其催化涉及氧化过程.小鼠Tet1在胚胎干细胞发育中拥有双重作用,即促进全能因子的转录,又参与发育调节因子的抑制.人TET蛋白的破坏与造血系统肿瘤相关,如在骨髓增生性疾病/肿瘤存在频繁的TET2基因突变.TET蛋白和5hmC的研究为DNA甲基化/去甲基化及其生物学功能提供了新的视点.  相似文献   

2.
DNA羟甲基化修饰是基因组表观遗传学的重要调控方式,指5-甲基胞嘧啶(5-m C)在TET蛋白家族的催化作用下氧化生成5-羟甲基胞嘧啶(5-hm C),完成DNA胞嘧啶的去甲基化过程。基因组甲基化异常导致了多种肿瘤的发生,羟甲基化修饰作为去甲基化的一种,同样与肿瘤发生密不可分。在消化系统肿瘤发生发展过程中存在5-hm C含量的变化,其原因可能与TET蛋白家族、IDH突变等密切相关,提示DNA羟甲基化修饰参与了消化系统肿瘤的发生发展过程。本文围绕DNA羟甲基化修饰与消化系统肿瘤之间的关系进行综述,旨在为消化系统肿瘤羟甲基化修饰研究提供新方向。  相似文献   

3.
李滨忠 《生命科学》2012,(6):518-520
DNA甲基化是一种非常重要的表观遗传调控方式,在基因印迹、X染色体失活、转座子与外源DNA的沉默及组织特异性基因的中发挥着重要的作用。在哺乳动物的配子发生过程及从受精到着床的早期胚胎发育阶段,基因组DNA发生大规模的主动去甲基化。但去甲基化的分子机制一直是表观遗传领域的谜题。2009年,Anjana Rao及其同事发现一种DNA双氧化酶TET蛋白能够将5-甲基胞嘧啶氧化成5-羟甲基胞嘧啶,这为DNA去甲基化的机制研究开拓了新的思路。在此基础上,徐国良实验室展开了深入研究,发现TET蛋白能够进一步将5-羟甲基胞嘧啶氧化成5-羧基胞嘧啶,并发现糖苷酶TDG能够特异性地识别并切除DNA中的5-羧基胞嘧啶,进而启动碱基切除修复途径完成DNA去甲基化,从而提出了氧化作用与碱基切除修复途径协同介导的DNA主动去甲基化机制。  相似文献   

4.
TET蛋白的去甲基化机制及其在调控小鼠发育过程中的作用   总被引:1,自引:0,他引:1  
TET(Ten-eleven translocation)蛋白家族共有3个成员,分别为TET1、TET2和TET3,均属于α-酮戊二酸(α-KG)和Fe2+依赖的双加氧酶,可以将5-甲基胞嘧啶(5-methylcytosine, 5 mC)氧化为5-羟甲基胞嘧啶(5-hydroxymethylcytosine, 5 hmC)、5-甲酰基胞嘧啶(5-formylcytosine, 5 fC)及5-羧基胞嘧啶(5-carboxylcytosine, 5 caC)。研究表明,TET蛋白通过不同机制以主动或被动的方式调控DNA去甲基化,且去甲基化的活性可能受其他因子的调控。TET蛋白广泛参与哺乳动物发育过程的调节,其中在原始生殖细胞的形成、胚胎发育、干细胞多能性及神经和脑发育等方面发挥了重要作用。TET蛋白生物功能的发现为表观遗传学研究开辟了全新的研究领域,而且相关研究结果对拓展生命科学研究具有重要意义。文章综述了TET蛋白家族的结构、去甲基化分子机制及在小鼠发育过程中的作用,为深入了解TET蛋白的功能提供理论基础。  相似文献   

5.
DNA甲基化失调引起基因表达异常是表观遗传学的一个显著特点。目前已知,由DNA甲基转移酶(DNA methyltransferases,DMNTs)催化DNA甲基化,其酶基因突变或表达异常引起DNA甲基化水平的改变。近期研究发现了一种DNA去甲基化酶--TET(Ten-Eleventranslocation)家族DNA羟化酶,能通过多种途径催化5-甲基胞嘧啶(5.methylcytosine,5-mC)去甲基化,从而调控DNA基化的平衡。5-羟甲基胞嘧啶(5-hydroxymethylcytosine,5-hmC)作为DNA去甲基化多重步骤中重要的中间产物,其水平在肿瘤的发生和发展时期发生显著变化。该文从TET家族蛋白展开,介绍TET蛋白的结构、功能及作用机制以及多种人类肿瘤中丁E丁家族基因与5-hmC水平的相关性及其对肿瘤发生发展、诊断预后等临床意义的研究进展。  相似文献   

6.
TET(ten-eleven translocation)家族蛋白能够介导DNA的5-甲基胞嘧啶(5-methylcytosine,5m C)的氧化,产生5-羟甲基胞嘧啶(5-hydroxymethylcytosine,5hm C)。通过TET蛋白的催化,可以诱导特定靶基因的启动子区域Cp G岛的去甲基化,从而激活基因的转录。TET1蛋白是一个拥有2039个氨基酸的DNA去甲基化酶,通过预测,TET1拥有18个核定位信号(nuclear localization signals,NLSs),其中13个为单分型NLS,5个为双分型NLS。本文利用绿色荧光蛋白和各种突变体,首次确定了小鼠TET1蛋白的2个NLSs,分别存在于CXXC结构域和催化结构域,而且这2个NLSs对全长TET1的和定位都是必需的。我们的研究对深入理解TET1的蛋白结构与功能研究具有重要意义。  相似文献   

7.
TET(ten-eleven translocation)家族蛋白能够介导DNA的5-甲基胞嘧啶(5-methylcytosine,5m C)的氧化,产生5-羟甲基胞嘧啶(5-hydroxymethylcytosine,5hm C)。通过TET蛋白的催化,可以诱导特定靶基因的启动子区域Cp G岛的去甲基化,从而激活基因的转录。TET1蛋白是一个拥有2039个氨基酸的DNA去甲基化酶,通过预测,TET1拥有18个核定位信号(nuclear localization signals,NLSs),其中13个为单分型NLS,5个为双分型NLS。本文利用绿色荧光蛋白和各种突变体,首次确定了小鼠TET1蛋白的2个NLSs,分别存在于CXXC结构域和催化结构域,而且这2个NLSs对全长TET1的和定位都是必需的。我们的研究对深入理解TET1的蛋白结构与功能研究具有重要意义。  相似文献   

8.
DNA羟甲基化修饰主要是指5-甲基胞嘧啶(5-methylcytosine,5m C)在10-11易位(ten-eleven translocation,TET)蛋白家族的氧化作用下生成5-羟甲基胞嘧啶(5-hydroxymethylcytosine,5hm C)。5hm C不仅能在去甲基化过程中起重要作用,而且还参与了基因的表达调控。5hm C的含量有着高度的组织特异性,且目前在中枢神经系统中也发现了高水平的5hm C。与神经系统疾病相关的基因中存在明显的5hm C水平的改变,暗示着DNA羟甲基化修饰很可能在神经系统疾病的发生与发展过程中起了重要作用。  相似文献   

9.
DNA甲基化作为一种重要的表观修饰,在基因表达调控及胚胎生长发育等方面起到重要作用。尽管5-甲基胞嘧啶(5mC)是一种稳定的共价修饰,但它在生物体内仍处于一个动态变化的过程,也就是说,它可能会通过某种方式发生去甲基化。而TET蛋白功能的揭示为DNA主动去甲基化提供了一条途径:TET双加氧酶可以将5mC迭代氧化形成5-羟甲基胞嘧啶(5hmC)、5-醛基胞嘧啶(5fC)和5-羧基胞嘧啶(5caC),再通过DNA糖苷酶TDG介导的碱基切除修复(base excision repair,BER)途径将5mC重新变为未修饰的胞嘧啶。随着人们对TET双加氧酶及主动去甲基化研究的深入,主动去甲基化的生物学功能也被逐渐揭示。现总结了已经揭示的主动去甲基化分子机制和生物学意义,同时,概括了本实验室近些年的研究进展。  相似文献   

10.
DNA甲基化是真核生物的重要表观遗传修饰,如胞嘧啶C~5位甲基化5-甲基胞嘧啶(5mC)和腺嘌呤N~6位甲基化6-甲基腺嘌呤(6mA)。DNA 5mC可经Tet双加氧酶催化氧化形成5-羟甲基胞嘧啶(5hmC)、5-醛甲基胞嘧啶(5fC)和5-羧基胞嘧啶(5caC)。这些氧化产物不仅是去甲基化过程的中间体,而且也可能存在各自特有的表观调控功能。其中,5hmC异常可能和癌症相关,有可能成为疾病诊断的生物标志物。发展可靠、高灵敏和抗干扰能力强的DNA甲基化和去甲基化检测技术和方法至关重要,有助于理解甲基化和去甲基化的分子机制以及提高肿瘤的诊断水平。现针对DNA甲基化和去甲基化检测技术进行简要介绍。  相似文献   

11.
12.
Cytosine methylation is the major epigenetic modification of metazoan DNA. Although there is strong evidence that active DNA demethylation occurs in animal cells, the molecular details of this process are unknown. The recent discovery of the TET protein family (TET1–3) 5-methylcytosine hydroxylases has provided a new entry point to reveal the identity of the long-sought DNA demethylase. Here, we review the recent progress in understanding the function of TET proteins and 5-hydroxymethylcytosine (5hmC) through various biochemical and genomic approaches, the current evidence for a role of 5hmC as an early intermediate in active DNA demethylation and the potential functions of TET proteins and 5hmC beyond active DNA demethylation. We also discuss how future studies can extend our knowledge of this novel epigenetic modification.  相似文献   

13.
Cytosine methylation is the major epigenetic modification of metazoan DNA. Although there is strong evidence that active DNA demethylation occurs in animal cells, the molecular details of this process are unknown. The recent discovery of the TET protein family (TET1–3) 5-methylcytosine hydroxylases has provided a new entry point to reveal the identity of the long-sought DNA demethylase. Here, we review the recent progress in understanding the function of TET proteins and 5-hydroxymethylcytosine (5hmC) through various biochemical and genomic approaches, the current evidence for a role of 5hmC as an early intermediate in active DNA demethylation and the potential functions of TET proteins and 5hmC beyond active DNA demethylation. We also discuss how future studies can extend our knowledge of this novel epigenetic modification.Key words: TET1, 5-hydroxymethylcytosine, active DNA demethylation, epigenetic, DNA methylation, hippocampus, electroconvulsive stimulation, Gadd45b, BER  相似文献   

14.
15.
Active DNA demethylation performed by ten-eleven translocation (TET) enzymes produces 5-hydroxymethylcytosines, 5-formylcytosines, and 5-carboxylcytosines. Recent observations suggest that 5-hydroxymethylcytosine is a stable epigenetic mark rather than merely an intermediate of DNA demethylation. However, the clear functional role of this new epigenetic player is elusive. The contribution of 5-hydroxymethylation to DNA repair is being discussed currently. Recently, Jiang and colleagues have demonstrated that DNA damage response-activated ATR kinase phosphorylates TET3 in mammalian cells and promotes DNA demethylation and 5-hydroxymethylcytosine accumulation. Moreover, TET3 catalytic activity is important for proper DNA repair and cell survival. Here, we discuss recent studies on the potential role of 5-hydroxymethylation in DNA repair and genome integrity maintenance.  相似文献   

16.
17.
The family of Ten-Eleven Translocation (TET) proteins is implicated in the process of active DNA demethylation and thus in epigenetic regulation. TET 1, 2 and 3 proteins are oxygenases that can hydroxylate 5-methylcytosine (5-mC) into 5-hydroxymethylcytosine (5-hmC) and further oxidize 5-hmC into 5-formylcytosine (5-fC) and 5-carboxylcytosine (5-caC). The base excision repair (BER) pathway removes the resulting 5-fC and 5-caC bases paired with a guanine and replaces them with regular cytosine. The question arises whether active modification of 5-mC residues and their subsequent elimination could affect the genomic DNA stability. Here, we generated two inducible cell lines (Ba/F3-EPOR, and UT7) overexpressing wild-type or catalytically inactive human TET2 proteins. Wild-type TET2 induction resulted in an increased level of 5-hmC and a cell cycle defect in S phase associated with higher level of phosphorylated P53, chromosomal and centrosomal abnormalities. Furthermore, in a thymine-DNA glycosylase (Tdg) deficient context, the TET2-mediated increase of 5-hmC induces mutagenesis characterized by GC > AT transitions in CpG context suggesting a mutagenic potential of 5-hmC metabolites. Altogether, these data suggest that TET2 activity and the levels of 5-hmC and its derivatives should be tightly controlled to avoid genetic and chromosomal instabilities. Moreover, TET2-mediated active demethylation might be a very dangerous process if used to entirely demethylate the genome and might rather be used only at specific loci.  相似文献   

18.
The ten-eleven translocation (TET) family of dioxygenases (TET1/2/3) converts 5-methylcytosine to 5-hydroxymethylcytosine and provides a vital mechanism for DNA demethylation. However, how TET proteins are regulated is largely unknown. Here we report that the O-linked β-GlcNAc (O-GlcNAc) transferase (OGT) is not only a major TET3-interacting protein but also regulates TET3 subcellular localization and enzymatic activity. OGT catalyzes the O-GlcNAcylation of TET3, promotes TET3 nuclear export, and, consequently, inhibits the formation of 5-hydroxymethylcytosine catalyzed by TET3. Although TET1 and TET2 also interact with and can be O-GlcNAcylated by OGT, neither their subcellular localization nor their enzymatic activity are affected by OGT. Furthermore, we show that the nuclear localization and O-GlcNAcylation of TET3 are regulated by glucose metabolism. Our study reveals the differential regulation of TET family proteins by OGT and a novel link between glucose metabolism and DNA epigenetic modification.  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