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1.
王建  张凯翔  芦国珍  赵湘辉 《遗传》2017,39(12):1138-1149
神经系统的正常发育是多种因素相互协调作用的结果,一旦特定因素失衡将引起相关疾病的发生。近年来不断有研究发现,DNA去甲基化过程的一类中间产物5-羟甲基胞嘧啶(5-hydroxymethylcytosine, 5hmC)作为一种新的表观遗传标记,在神经系统中高水平分布,并参与认知、记忆等重要的神经功能。5hmC的形成由氧合酶家族分子(ten-eleven translocation protein, TET)催化,在多种神经系统相关疾病中,5hmC水平和TETs分子的表达都发生改变,提示TET-5hmC表观遗传机制在复杂的神经系统发生发展过程中发挥了重要的调控作用。此外,作为基因表达调控的DNA标记物,5hmC的基因定位与基因表达水平的关系也是重要的研究方向。本文就近年来5hmC和TET家族蛋白分子在神经系统发育和相关疾病方面的重要研究发现进行了综述总结,希望为相关领域研究人员深入开展研究提供重要的思路,并为相关疾病设计治疗策略提供理论支持。  相似文献   

2.
DNA甲基化与基因表达调控研究进展   总被引:4,自引:0,他引:4  
表观遗传修饰是指不改变DNA序列的、可遗传的对碱基和组蛋白的化学修饰,主要包括DNA甲基化、组蛋白修饰、染色质重塑以及非编码RNA等.表观遗传修饰是更高层次的基因表达调控手段.DNA甲基化是一种重要的表观遗传修饰,参与基因表达调控、基因印记、转座子沉默、X染色体失活以及癌症发生等重要生物学过程.近年来随着研究方法和技术的进步,全基因组DNA甲基化的研究广泛兴起,多个物种全基因组甲基化图谱被破译,全局水平对DNA甲基化的研究不仅利于在宏观层面上了解DNA甲基化的特性与规律,同时也为深入分析DNA甲基化的生物学功能与调控奠定了基础.结合最新研究进展综述DNA甲基化在基因组中的分布模式、规律以及和基因转录的关系等.  相似文献   

3.
DNA甲基化和组蛋白修饰等表观遗传机制是恶性肿瘤发生发展的重要原因之一.然而近年来研究发现,microRNA表达水平改变也参与恶性肿瘤的形成.最新研究资料揭示,表观遗传可调控microRNA表达,而一些种类的microRNA也可调节表观遗传,并且二者之间相互作用可调控组织细胞内基因表达以及诱导体内恶性肿瘤产生.研究资料还显示,表观遗传主要通过DNA甲基化、组蛋白修饰等方式调控microRNA表达,而microRNA则通过调节DNA甲基化转移酶、维持细胞中DNA甲基化水平或改变组蛋白修饰等途径调控表观遗传.对microRNA与表观遗传之间的调控关系以及在抗肿瘤领域内的应用进行全面而系统的论述.  相似文献   

4.
王晓铄  俞英 《遗传》2010,32(7):663-669
炎症受遗传和非遗传因素(环境或表观遗传)的共同影响, 其中表观遗传(Epigenetic)在炎症的发生发展过程中发挥重要调控作用。表观遗传修饰是指DNA序列没有改变, 而基因表达却发生了可遗传的变化, 主要包括DNA甲基化和组蛋白修饰等。表观遗传为病原微生物与炎症反应间关系的研究架起了重要桥梁。炎症反应中T辅助细胞的分化, 细胞因子、趋化因子等基因的表达都受到表观遗传的调控。文章主要综述了DNA甲基化、组蛋白修饰等对炎症尤其是乳房炎的调控机制, 并就表观遗传调控在奶牛乳房炎治疗及抗病育种中的应用前景进行了展望。  相似文献   

5.
选择性剪接是真核生物基因表达过程中的关键环节,是蛋白质多样性的主要来源,在生物的分化、发育及疾病的发生中扮演重要角色。传统的选择性剪接调控机制的研究多集中于RNA序列元件及与之相关的一些剪接因子,但近期的突破性研究指出表观遗传因素在选择性剪接的调控中发挥重要作用。DNA甲基化、染色质结构、组蛋白修饰相互影响并作用于pre-mRNA的选择性剪接,构成一个庞大、复杂的调控网络,表明表观遗传因素不仅决定着基因转录的起始,还影响其转录本剪接的结果。文章综述了近年来pre-mRNA选择性剪接的表观遗传调控的研究进展,探讨了DNA甲基化、染色质结构、组蛋白修饰在pre-mRNA选择性剪接中的可能作用,并展望了其对人类疾病研究所带来的深远影响。  相似文献   

6.
刘辰东  杨露  蒲红州  杨琼  黄文耀  赵雪  朱砺  张顺华 《遗传》2017,39(10):888-896
DNA甲基化、组蛋白修饰和miRNA表达调控是表观遗传调控的3种重要方式,其在基因表达调控中发挥着关键作用。适当运动有益于身心健康。骨骼肌作为运动的主体组织,运动可以提高其代谢能力,改善其线粒体生物学功能,调控肌纤维类型转化,增加骨骼肌力量。近年来越来越多的研究表明,表观遗传调控在机体适应运动过程中发挥着重要作用,DNA甲基化、组蛋白修饰和miRNA表达调控等表观遗传调控方式通过调控骨骼肌基因表达来改变骨骼肌代谢能力、线粒体生物学功能和肌纤维类型,从而适应运动变化。本文对近年来运动对骨骼肌基因DNA甲基化、组蛋白修饰和相应miRNA表达调控等3种表观遗传调控方式的研究现状进行了综述,以期为进一步研究运动改善机体机能和健康提供参考。  相似文献   

7.
DNA甲基化修饰作为一种重要的表观遗传修饰,能通过影响染色质结构,DNA构象、稳定性以及与蛋白质相互作用方式等,起到调控基因表达的作用。在正常的生理条件以及一些疾病发生过程中均起着重要作用。本文概述了DNA甲基化修饰的动态变化,并着重论述了最近的一项与DNA修饰有着密切关系的发现。TET1是一个5mC加氧酶,可以将5mC转变为5hmC,在DNA去甲基化过程中可能扮演着重要角色。  相似文献   

8.
DNA甲基化是基因表达的表观遗传调控机制之一,在细胞分化和疾病发生过程中发挥着重要的作用。病毒感染可导致DNA甲基化水平变化,从而影响疾病的发生与发展。随着全基因组甲基化测序等生物学新技术的飞速发展,对DNA甲基化也有了更深的认识。现就DNA甲基化和去甲基化的主要影响因素以及病毒感染过程中导致甲基化水平改变的机制做一概述,为从表观遗传角度研究病毒致病机制提供一定的理论依据。  相似文献   

9.
表观遗传(epigenetics)是指DNA序列不发生变化但基因表达却发生了可遗传的改变.表观遗传调控过程十分复杂,主要包括DNA甲基化、组蛋白修饰和微小RNA(miRNA)等.糖尿病是一种慢性代谢性疾病,常伴随大血管和微血管并发症.糖尿病的发生、发展不仅取决于遗传因素,而且也受到表观遗传修饰的调控.因此,对表观遗传调控的研究将为糖尿病及其并发症的预防和治疗提供新的思路和方法.  相似文献   

10.
《遗传》2020,(7)
DNA羟甲基化作为一种表观遗传学修饰,对基因的表达调控起到了重要作用。近年来,越来越多的研究发现在心血管疾病中可见5-羟甲基胞嘧啶(5-hydroxymethylcytosine, 5hmC)和染色体10/11易位(ten-eleven translocation,TET)家族蛋白的异常改变,提示这些心血管疾病与DNA羟甲基化的调控密切相关。DNA羟甲基化水平与动脉粥样硬化常见的危险因素如衰老、性别、高血压和吸烟存在一定关联,并且和动脉粥样硬化发生过程中所涉及的免疫炎症反应以及内皮细胞和血管平滑肌细胞的功能相关。本文综述了DNA羟甲基化和TET家族蛋白对于动脉粥样硬化的作用机制及研究现状,以期为动脉粥样硬化的发生发展及诊断治疗提供表观遗传学方面的研究思路。  相似文献   

11.
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   

12.
Irier HA  Jin P 《DNA and cell biology》2012,31(Z1):S42-S48
Gene expression is modulated by epigenetic factors that come in varying forms, such as DNA methylation, histone modifications, microRNAs, and long noncoding RNAs. Recent studies reveal that these epigenetic marks are important regulatory factors in brain function. In particular, DNA methylation dynamics are found to be essential components of epigenetic regulation in the mammalian central nervous system. In this review, we provide an overview of the literature on DNA methylation in neurodegenerative diseases, with a special focus on methylation of 5-position of cytosine base (5mC) and hydroxymethylation of 5-position of cytosine base (5hmC) in the context of neurodegeneration associated with aging and Alzheimer's disease.  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.  相似文献   

14.
DNA methylation at cytosine-phosphate-guanine (CpG) dinucleotides changes as a function of age in humans and animal models, a process that may contribute to chronic disease development. Recent studies have investigated the role of an oxidized form of DNA methylation – 5-hydroxymethylcytosine (5hmC) – in the epigenome, but its contribution to age-related DNA methylation remains unclear. We tested the hypothesis that 5hmC changes with age, but in a direction opposite to 5-methylcytosine (5mC), potentially playing a distinct role in aging. To characterize epigenetic aging, genome-wide 5mC and 5hmC were measured in longitudinal blood samples (2, 4, and 10 months of age) from isogenic mice using two sequencing methods – enhanced reduced representation bisulfite sequencing and hydroxymethylated DNA immunoprecipitation sequencing. Examining the epigenome by age, we identified 28,196 unique differentially methylated CpGs (DMCs) and 8,613 differentially hydroxymethylated regions (DHMRs). Mouse blood showed a general pattern of epigenome-wide hypermethylation and hypo-hydroxymethylation with age. Comparing age-related DMCs and DHMRs, 1,854 annotated genes showed both differential 5mC and 5hmC, including one gene – Nfic – at five CpGs in the same 250 bp chromosomal region. At this region, 5mC and 5hmC levels both decreased with age. Reflecting these age-related epigenetic changes, Nfic RNA expression in blood decreased with age, suggesting that age-related regulation of this gene may be driven by 5hmC, not canonical DNA methylation. Combined, our genome-wide results show age-related differential 5mC and 5hmC, as well as some evidence that changes in 5hmC may drive age-related DNA methylation and gene expression.  相似文献   

15.
自稳态平衡是机体生命活动的重要基础,在维持机体的正常生理功能中发挥重要作用。血管疾病中的稳态失衡受物理、化学、生物等内外环境改变及致病因素的影响,其中氧稳态、血流稳态、糖脂代谢稳态在内环境的影响中较为突出,由此引起的一系列表观遗传修饰将导致血管结构和功能的异常。表观遗传学中的DNA甲基化与血管疾病的发生发展密不可分。此外,5-羟甲基胞嘧啶(5-hydroxymethylcytosine, 5hmC)及N6-甲基腺嘌呤(N6-methyladenine, m6A)作为新的修饰碱基,将为表观遗传学研究提供新的思路。文章主要对DNA甲基化修饰变异在血管疾病稳态失衡方面的研究进展进行了阐述。  相似文献   

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17.
Xu Y  Wu F  Tan L  Kong L  Xiong L  Deng J  Barbera AJ  Zheng L  Zhang H  Huang S  Min J  Nicholson T  Chen T  Xu G  Shi Y  Zhang K  Shi YG 《Molecular cell》2011,42(4):451-464
DNA methylation at the 5 position of cytosine (5mC) in the mammalian genome is a key epigenetic event critical for various cellular processes. The ten-eleven translocation (Tet) family of 5mC-hydroxylases, which convert 5mC to 5-hydroxymethylcytosine (5hmC), offers a way for dynamic regulation of DNA methylation. Here we report that Tet1 binds to unmodified C or 5mC- or 5hmC-modified CpG-rich DNA through its CXXC domain. Genome-wide mapping of Tet1 and 5hmC reveals mechanisms by which Tet1 controls 5hmC and 5mC levels in mouse embryonic stem cells (mESCs). We also uncover a comprehensive gene network influenced by Tet1. Collectively, our data suggest that Tet1 controls DNA methylation both by binding to CpG-rich regions to prevent unwanted DNA methyltransferase activity, and by converting 5mC to 5hmC through hydroxylase activity. This Tet1-mediated antagonism of CpG methylation imparts differential maintenance of DNA methylation status at Tet1 targets, ultimately contributing to mESC differentiation and the onset of embryonic development.  相似文献   

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