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 93 毫秒
1.
目的:分析在人类胚胎干细胞分化过程中,CDCA8基因启动子区甲基化的状态.方法:生物信息学预测人类CDCA8基因上游2 kb区域的CpG岛.抽提未分化和自然分化的人类胚胎干细胞gDNA,应用重亚硫酸盐修饰和DNA序列分析方法检测CDCA8基因启动子区CpG岛甲基化情况.结果:未分化和自然分化的人类胚胎干细胞中,被检测的CDCA8基因启动子区CpC岛均未发现明显的甲基化修饰.结论:在人类胚胎干细胞分化前后,CDCA8基因启动子关键区域的甲基化状态未发生明显改变.  相似文献   

2.
DNA甲基化是表观遗传机制中一种重要的调控方式,它通过调控基因的表达影响一系列的生物学过程。干细胞作为具有自我更新、高度增殖和多向分化潜能的细胞群体,其分化和再生过程必然受到精确的表观调控。DNA甲基化在干细胞的维持、分化调控等方面都发挥着重要作用。现对胚胎干细胞、多能干细胞以及成体干细胞中DNA甲基化及羟甲基化的最新研究进展进行简要综述,回顾并展望DNA甲基化在干细胞中的潜在生物学功能及调控机制,同时为未来在临床诊断治疗及药物研发等方面提供一定的参考。  相似文献   

3.
宋红卫  安铁洙  朴善花  王春生 《遗传》2014,36(5):431-438
诱导多能干细胞(Induced pluripotent stem cell, iPS)技术提供了将终末分化的细胞逆转为多潜能干细胞的可能, 在干细胞基础理论研究和再生医学中具有重要意义。然而, 目前体细胞诱导重编程方法效率极低, 常发生不完全的重编程。研究表明, 在不完全重编程的细胞中存在体细胞的表观遗传记忆, 而DNA甲基化作为相对长期和稳定的表观遗传修饰, 是影响重编程效率和iPS细胞分化能力的重要因素之一。哺乳动物DNA甲基化是指胞嘧啶第五位碳原子上的甲基化修饰, 常发生于CpG位点。DNA甲基化能够调节体细胞特异基因和多能性基因的表达, 因此其在哺乳动物基因调控、胚胎发育和细胞重编程过程中发挥着重要作用。此外, 异常DNA甲基化可能导致iPS细胞基因印记的异常和X染色体的失活。文章重点围绕DNA甲基化的机制、分布特点、及其在体细胞诱导重编程中的作用进行了综述。  相似文献   

4.
DNA甲基化是最早被发现的表观遗传修饰之一。近年来,大量的研究显示DNA甲基化在中枢神经系统(CNS)发育中发挥了重要作用。不同种类的DNA甲基转移酶(Dnmt)和DNA甲基结合蛋白(MBD)在CNS发育的不同阶段发挥不同的作用。DNA甲基化促进神经干细胞向神经元方向分化,抑制其向胶质细胞分化。Dnmt和MBD主要在神经元中表达,而在胶质细胞不表达或表达较少。DNA甲基化调节神经发生和突触的形成,参与学习记忆。星型胶质细胞的标志物GFAP去甲基化促进早期神经上皮分化为星型胶质细胞。少突胶质细胞相关基因MAG和Sox10等也受甲基化的调节。本文主要从以上方面综述了DNA甲基化在中枢神经系统发育中的作用。  相似文献   

5.
基因组DNA的甲基化修饰通常使基因转录失活,去甲基化或低甲基化则使基因转录活化。但是,胚胎干细胞向各种成体细胞分化过程中相关基因的转录活化与DNA甲基化修饰水平并不呈简单的正性或负性相关。因此,甲基化修饰调节基因转录是一个复杂的过程。目前,对甲基化修饰作用的研究主要集中在基因选择性活化、改变转录因子与靶基因的结合活性、与组蛋白修饰协同作用及其基因表达的阶段特异性等方面。  相似文献   

6.
干细胞具有自我更新和多种分化潜能的特性。干细胞向分化细胞的转变涉及到基因表达模式的改变,与自我更新有关的基因关闭.与细胞特化有关的基因激活。表观遗传调控机制,包括DNA甲基化、组蛋白修饰和微RNA(microRNA)介导的基因调控,在多个层面上控制发育过程中基因表达。近年研究表明,动态的表观遗传调控机制在干细胞自我更新和分化中起关键作用。  相似文献   

7.
胚胎干细胞分化过程中的表观遗传调控   总被引:1,自引:0,他引:1  
作为一类既有自我更新能力,并具有多向分化潜能的细胞,胚胎干细胞具有非常重要的理论研究意义和临床应用前景。近期以胚胎干细胞为模型,研究有关干细胞分化的表观遗传调控已成为新的研究热点。本文就胚胎干细胞分化过程中DNA甲基化、组蛋白修饰、非编码RNA调控以及与胚胎干细胞分化密切相关的表观遗传学动态变化做一概述,对表观遗传学改变与胚胎干细胞分化关系的基础研究进行探讨。  相似文献   

8.
组蛋白赖氨酸甲基化修饰与肿瘤   总被引:2,自引:0,他引:2  
郑杰 《生命科学》2008,20(3):442-446
对组蛋白甲基化修饰认识已有相当长的时间,但直到最近几年由于组蛋白甲基化修饰酶的发现才使人们逐渐认识到组蛋白甲基化修饰有广泛的生物学功能,像异染色质形成、X染色体失活、转录调节、干细胞的维持和分化等,组蛋白甲基化修饰的改变与某些人类疾病和肿瘤也有一定关系。组蛋白修饰是可逆性的,这为某些疾病的治疗提供了新的可能。  相似文献   

9.
DNA、RNA的甲基化作为重要的表观遗传标记,在真核生物多个细胞过程中发挥作用。DNA中的N6-甲基腺嘌呤(N6-methyladenine in DNA, 6mA)和RNA中的N6-甲基腺嘌呤(N6-methyladenine in RNA, m6A)均为来自腺嘌呤第6位的甲基化修饰,在合成和功能上有相似性也有区别。6mA或m6A的修饰缺陷影响植物胚胎发育、干细胞分化、组织器官发生及应激反应等。meRIPseq等技术的发展为全组甲基化位点鉴定提供了基础,未来将更加注重于功能研究。该文对近年来植物6mA或m6A甲基化位点的全组鉴定、合成、调控及成员功能研究进行回顾和比较,并展望未来的研究方向。  相似文献   

10.
Tet2(Tet家族成员2)在DNA去甲基化修饰、表观遗传调控及骨髓造血中起着重要作用。笔者课题组前期研究发现,随着年龄增长,Tet2敲除小鼠逐步发展为淋系白血病和髓系白血病。但Tet2在骨髓微环境中的作用仍不清楚。进一步研究发现,Tet2敲除的骨髓间充质干细胞(Mesenchymal stem cells,MSC)更多处于G2/M分裂期,其细胞分裂时间缩短,生长速度加快。长周期培养-起始细胞实验表明,Tet2敲除的MSC支持造血干细胞扩增和髓系分化的能力增强。通过点杂交实验发现,Tet2敲除后,骨髓细胞DNA总甲基化水平升高。对Tet2缺失的骨髓细胞进行甲基化测序,结果表明:基因组转录调控区域等多个功能性结构域的甲基化水平明显升高。同时,敲除Tet2的MSC分泌IL-8、IL-18等炎性细胞因子的能力下降;敲除Tet2的MSC更多分泌促进造血干细胞髓系分化的GM-CSF和CCL-3等细胞因子。Tet2可以影响间充质干细胞造血支持作用,进而调节造血。  相似文献   

11.
12.
It has been proposed that the existence of stem cell epigenetic patterns confer a greater likelihood of CpG island hypermethylation on tumor suppressor-coding genes in cancer. The suggested mechanism is based on the Polycomb-mediated methylation of K27 of histone H3 and the recruitment of DNA methyltransferases on the promoters of tumor suppressor genes in cancer cells, when those genes are preferentially pre-marked in embryonic stem cells (ESCs) with bivalent chromatin domains. On the other hand, miRNAs appear to be dysregulated in cancer, with many studies reporting silencing of miRNA genes due to aberrant hypermethylation of their promoter regions. We wondered whether a pre-existing histone modification profile in stem cells might also contribute to the DNA methylation-associated silencing of miRNA genes in cancer. To address this, we examined a group of tumor suppressor miRNA genes previously reported to become hypermethylated and inactivated specifically in cancer cells. We analyzed the epigenetic events that take place along their promoters in human embryonic stem cells and in transformed cells. Our results suggest that there is a positive correlation between the existence of bivalent chromatin domains on miRNA promoters in ESCs and the hypermethylation of those genes in cancer, leading us to conclude that this epigenetic mark could be a mechanism that prepares miRNA promoters for further DNA hypermethylation in human tumors.  相似文献   

13.
《Epigenetics》2013,8(11):1344-1353
It has been proposed that the existence of stem cell epigenetic patterns confer a greater likelihood of CpG island hypermethylation on tumor suppressor-coding genes in cancer. The suggested mechanism is based on the Polycomb-mediated methylation of K27 of histone H3 and the recruitment of DNA methyltransferases on the promoters of tumor suppressor genes in cancer cells, when those genes are preferentially pre-marked in embryonic stem cells (ESCs) with bivalent chromatin domains. On the other hand, miRNAs appear to be dysregulated in cancer, with many studies reporting silencing of miRNA genes due to aberrant hypermethylation of their promoter regions. We wondered whether a pre-existing histone modification profile in stem cells might also contribute to the DNA methylation-associated silencing of miRNA genes in cancer. To address this, we examined a group of tumor suppressor miRNA genes previously reported to become hypermethylated and inactivated specifically in cancer cells. We analyzed the epigenetic events that take place along their promoters in human embryonic stem cells and in transformed cells. Our results suggest that there is a positive correlation between the existence of bivalent chromatin domains on miRNA promoters in ESCs and the hypermethylation of those genes in cancer, leading us to conclude that this epigenetic mark could be a mechanism that prepares miRNA promoters for further DNA hypermethylation in human tumors.  相似文献   

14.
Epigenetics     
《Epigenetics》2013,8(8):823-840
Emerging evidence is shedding light on a large and complex network of epigenetic modifications at play in human stem cells. This “epigenetic landscape” governs the fine-tuning and precision of gene expression programs that define the molecular basis of stem cell pluripotency, differentiation and reprogramming. This review will focus on recent progress in our understanding of the processes that govern this landscape in stem cells, such as histone modification, DNA methylation, alterations of chromatin structure due to chromatin remodeling and non-coding RNA activity. Further investigation into stem cell epigenetics promises to provide novel advances in the diagnosis and treatment of a wide array of human diseases.  相似文献   

15.
In mammals, DNA methylation and hydroxymethylation are specific epigenetic mechanisms that can contribute to the regulation of gene expression and cellular functions. DNA methylation is important for the function of embryonic stem cells and adult stem cells (such as haematopoietic stem cells, neural stem cells and germline stem cells), and changes in DNA methylation patterns are essential for successful nuclear reprogramming. In the past several years, the rediscovery of hydroxymethylation and the TET enzymes expanded our insights tremendously and uncovered more dynamic aspects of cytosine methylation regulation. Here, we review the current knowledge and highlight the most recent advances in DNA methylation and hydroxymethylation in embryonic stem cells, induced pluripotent stem cells and several well‐studied adult stems cells. Our current understanding of stem cell epigenetics and new advances in the field will undoubtedly stimulate further clinical applications of regenerative medicine in the future. Copyright © 2015 John Wiley & Sons, Ltd.  相似文献   

16.
Reprogramming of somatic cells to induced pluripotent stem cells(iPSCs) is a comprehensive epigenetic process involving genome-wide modifications of histones and DNA methylation. This process is often incomplete, which subsequently affects i PSC reprograming,pluripotency, and differentiation capacity. Here, we review the epigenetic changes with a focus on histone modification(methylation and acetylation) and DNA modification(methylation) during i PSC induction. We look at changes in specific epigenetic signatures, aberrations and epigenetic memory during reprogramming and small molecules influencing the epigenetic reprogramming of somatic cells. Finally,we discuss how to improve i PSC generation and pluripotency through epigenetic manipulations.  相似文献   

17.
Cytosine methylation at CpG dinucleotides is a critical epigenetic modification of mammalian genomes. CpG binding protein (CGBP) exhibits a unique DNA-binding specificity for unmethylated CpG motifs and is essential for early murine development. Embryonic stem cell lines deficient for CGBP were generated to further examine CGBP function. CGBP(-)(/)(-) cells are viable but show an increased rate of apoptosis and are unable to achieve in vitro differentiation following removal of leukemia inhibitory factor from the growth media. Instead, CGBP(-)(/)(-) embryonic stem cells remain undifferentiated as revealed by persistent expression of the pluripotent markers Oct4 and alkaline phosphatase. CGBP(-)(/)(-) cells exhibit a 60 to 80% decrease in global cytosine methylation, including hypo-methylation of repetitive elements, single-copy genes, and imprinted genes. Total DNA methyltransferase activity is reduced by 30 to 60% in CGBP(-)(/)(-) cells, and expression of the maintenance DNA methyltransferase 1 protein is similarly reduced. However, de novo DNA methyltransferase activity is normal. Nearly all aspects of the pleiotropic CGBP(-)(/)(-) phenotype are rescued by introduction of a CGBP expression vector. Hence, CGBP is essential for normal epigenetic modification of the genome by cytosine methylation and for cellular differentiation, consistent with the requirement for CGBP during early mammalian development.  相似文献   

18.
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