独立于Dnmt1的CG甲基化有助于不同类型的真核体中核体的定位
Jason T Huff1, Daniel Zilberman1
1Department of Plant and Microbial Biology, University of California, Berkeley, Berkeley, CA 94720, USA.
Cell
|March 18, 2014
概括
在缺乏Dnmt1.1.的物种中,DNA甲基转移酶5 (Dnmt5) 催化对称的CG甲基化. 这种密集的聚类甲基化会影响核细胞在紧的核中核的定位.
科学领域:
- 表观遗传学 在表观遗传学中,表观遗传学是指表观遗传学.
- 分子生物学分子生物学
- 基因组学就是基因组学.
背景情况:
- DNA甲基转移酶1 (Dnmt1) 在真核生物中传播对称的CG甲基化.
- 基因组通常缺乏CG二核酸,这是由于未被氨基化甲基细胞素的修复不完善.
研究的目的:
- 在缺乏Dnmt1.1.的物种中研究对称CG甲基化的存在和机制.
- 描述与替代CG甲基化模式相关的基因组架构.
主要方法:
- 对缺乏Dnmt1.1.的多种物种进行了广泛的调查.
- 对DNA甲基转移酶家族和甲基化模式的分析.
- 核细胞的定位和染色体结构的研究.
主要成果:
- 在缺乏Dnmt1的生物体中,对称的CG甲基化经常存在,并由DNA甲基转移酶5 (Dnmt5) 催化.
- 通过Dnmt5介导的甲基化通常在高密度的核酶链体中聚集在一起.
- 密集甲基化不利于核细胞,影响其定位,并为独特的基因组架构做出贡献.
- 具有链接甲基化的物种表现出具有极端染色质紧缩的小,转录活性核.
结论:
- Dnmt5代表了对称CG甲基化的一个替代途径.
- 密集,集群的链接甲基化塑造了基因组架构,并在空间约束下影响了核过程.
- 这种被忽视的基因组架构凸显了表观遗传调节的多样性.
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