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黄星卫  程香荣  王楠  张雨薇  廖辰  金连弘  雷蕾 《遗传》2018,40(3):186-196
组蛋白是真核生物中一类进化上相对保守的蛋白质。由组蛋白八聚体及缠绕其上的DNA构成的核小体是真核生物染色质的基本组成单位。核小体使DNA保持固缩状态,既能维持基因组的稳定性,又能保证DNA序列可以正确地进行复制、转录、重组和修复。核小体调控细胞的生物过程除了通过组蛋白翻译后修饰,还可以通过组蛋白变体替换的方式进行。研究发现,组蛋白H3变体H3.3与常规组蛋白H3尽管仅有几个氨基酸的区别,但H3.3却能由特异的分子伴侣介导,整合进入染色质的特定区域,从而发挥不同的作用。同时,H3.3作为一种母源因子在正常受精和体细胞核移植等细胞重编程过程中也发挥着重要作用。本文总结了H3.3的结构特点和富集情况,探讨了特异的分子伴侣及其在细胞重编程中的作用,以期为提高体细胞重编程效率提供新思路,为体细胞重编程的应用奠定基础。  相似文献   

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Histone methylation: a dynamic mark in health, disease and inheritance   总被引:3,自引:0,他引:3  
Organisms require an appropriate balance of stability and reversibility in gene expression programmes to maintain cell identity or to enable responses to stimuli; epigenetic regulation is integral to this dynamic control. Post-translational modification of histones by methylation is an important and widespread type of chromatin modification that is known to influence biological processes in the context of development and cellular responses. To evaluate how histone methylation contributes to stable or reversible control, we provide a broad overview of how histone methylation is regulated and leads to biological outcomes. The importance of appropriately maintaining or reprogramming histone methylation is illustrated by its links to disease and ageing and possibly to transmission of traits across generations.  相似文献   

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Kong QR  Zhu J  Huang B  Huan YJ  Wang F  Shi YQ  Liu ZF  Wu ML  Liu ZH 《遗传》2011,33(7):749-756
不完全的表观遗传重编程是造成转基因克隆动物效率低下的主要原因,组蛋白修饰作为表观遗传修饰的一个重要部分,可以直接影响克隆胚胎的发育和外源基因的表达情况。TSA(Trichostatin A)作为一种组蛋白去乙酰化抑制剂,可以改变组蛋白的乙酰化水平,促进表观遗传重编程,提高克隆动物的效率。同时TSA能改变染色质结构,使转录因子易于与DNA序列结合,促进外源基因的表达。文章确定了TSA处理转基因猪成纤维细胞和核移植胚胎的最佳条件,分别为250 nmol/L、24 h和40 nmol/L、24 h,通过进一步正交实验发现,TSA同时处理供体细胞和克隆胚胎可以显著的促进核移植胚胎的体外发育。此外,无论TSA处理转基因猪成纤维细胞或核移植胚胎,都可以提高外源基因的表达水平。  相似文献   

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Individual cell fate decisions can vary according to changes in gene expression in response to environmental, developmental, or metabolic cues. This plasticity is tightly regulated during embryonic development and mediated by the exquisitely coordinated activation and repression of groups of genes. Genes that become repressed are immersed in a condensed chromatin environment that renders them refractory to stimulation. This mechanism is responsible for both the loss of cell plasticity during differentiation and the preservation of cell identity. Understanding the molecular events involved in the establishment and maintenance of these restrictive domains will benefit the design of strategies for cellular reprogramming, differentiation, and cancer treatment.  相似文献   

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