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哺乳动物早期发育过程中的表观遗传重编程。

Epigenetic reprogramming during early development in mammals.

作者信息

Santos Fátima, Dean Wendy

机构信息

Laboratory of Developmental Genetics and Imprinting, Developmental Genetics Programme, The Babraham Institute, Cambridge CB2 4AT, UK.

出版信息

Reproduction. 2004 Jun;127(6):643-51. doi: 10.1530/rep.1.00221.

Abstract

Epigenetic modifications serve as an extension of the information content by which the underlying genetic code may be interpreted. These modifications mark genomic regions and act as heritable and stable instructions for the specification of chromatin organisation and structure that dictate transcriptional states. In mammals, DNA methylation and the modification of histones account for the major epigenetic alterations. Two cycles of DNA methylation reprogramming have been characterised. During germ cell development, epigenetic reprogramming of DNA methylation resets parent-of-origin based genomic imprints and restores totipotency to gametes. On fertilisation, the second cycle is triggered resulting in an asymmetric difference between parental genomes. Further epigenetic asymmetry is evident in the establishment of the first two lineages at the blastocyst stage. This differentiative event sets the epigenetic characteristics of the lineages as derivatives of the inner cell mass (somatic) and trophectoderm (extra-embryonic). It is the erasure and subsequent re-tracing of the epigenetic checkpoints that pose the most serious obstacles to somatic nuclear transfer. Elaboration of the mechanisms of these interactions will be invaluable in our fundamental understanding of biological processes and in achieving substantial therapeutic advances.

摘要

表观遗传修饰是对遗传信息内容的一种扩展,借此可以解读潜在的遗传密码。这些修饰标记基因组区域,并作为染色质组织和结构规范的可遗传且稳定的指令,进而决定转录状态。在哺乳动物中,DNA甲基化和组蛋白修饰构成了主要的表观遗传改变。DNA甲基化重编程已经明确了两个周期。在生殖细胞发育过程中,DNA甲基化的表观遗传重编程会重置基于亲本来源的基因组印记,并恢复配子的全能性。受精时,第二个周期被触发,导致亲本基因组之间存在不对称差异。在囊胚期前两个谱系的建立过程中,进一步的表观遗传不对称也很明显。这一分化事件确定了谱系的表观遗传特征,即内细胞团(体细胞)和滋养外胚层(胚外组织)的衍生物。正是表观遗传检查点的擦除和随后的重新追踪,给体细胞核移植带来了最严重的障碍。阐明这些相互作用的机制,对于我们从根本上理解生物学过程以及实现重大治疗进展将具有不可估量的价值。

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