Recognition of H3K9 methylation by GLP is required for efficient establishment of H3K9 methylation, rapid target gene repression, and mouse viability
GENES & DEVELOPMENT
Authors: Liu, Nan; Zhang, Zhuqiang; Wu, Hui; Jiang, Yonghua; Meng, Lingjun; Xiong, Jun; Zhao, Zuodong; Zhou, Xiaohua; Li, Jia; Li, Hong; Zheng, Yong; Chen, She; Cai, Tao; Gao, Shaorong; Zhu, Bing
Abstract
GLP and G9a are major H3K9 dimethylases and are essential for mouse early embryonic development. GLP and G9a both harbor ankyrin repeat domains that are capable of binding H3K9 methylation. However, the functional significance of their recognition of H3K9 methylation is unknown. Here, we report that the histone methyltransferase activities of GLP and G9a are stimulated by neighboring nucleosomes that are premethylated at H3K9. These stimulation events function in cis and are dependent on the H3K9 methylation binding activities of ankyrin repeat domains of GLP and G9a. Disruption of the H3K9 methylation-binding activity of GLP in mice causes growth retardation of embryos, ossification defects of calvaria, and postnatal lethality due to starvation of the pups. In mouse embryonic stem cells (ESCs) harboring a mutant GLP that lacks H3K9me1-binding activity, critical pluripotent genes, including Oct4 and Nanog, display inefficient establishment of H3K9me2 and delayed gene silencing during differentiation. Collectively, our study reveals a new activationmechanism for GLP and G9a that plays an important role in ESC differentiation and mouse viability.
Determination of enriched histone modifications in non-genic portions of the human genome
BMC GENOMICS
Authors: Rosenfeld, Jeffrey A.; Wang, Zhibin; Schones, Dustin E.; Zhao, Keji; DeSalle, Rob; Zhang, Michael Q.
Abstract
Background: Chromatin immunoprecipitation followed by high-throughput sequencing (ChIP-seq) has recently been used to identify the modification patterns for the methylation and acetylation of many different histone tails in genes and enhancers. Results: We have extended the analysis of histone modifications to gene deserts, pericentromeres and subtelomeres. Using data from human CD4(+) T cells, we have found that each of these non-genic regions has a particular profile of histone modifications that distinguish it from the other noncoding regions. Different methylation states of H4K20, H3K9 and H3K27 were found to be enriched in each region relative to the other regions. These findings indicate that non-genic regions of the genome are variable with respect to histone modification patterns, rather than being monolithic. We furthermore used consensus sequences for unassembled centromeres and telomeres to identify the significant histone modifications in these regions. Finally, we compared the modification patterns in non-genic regions to those at silent genes and genes with higher levels of expression. For all tested methylations with the exception of H3K27me3, the enrichment level of each modification state for silent genes is between that of non-genic regions and expressed genes. For H3K27me3, the highest levels are found in silent genes. Conclusion: In addition to the histone modification pattern difference between euchromatin and heterochromatin regions, as is illustrated by the enrichment of H3K9me2/3 in non-genic regions while H3K9me1 is enriched at active genes; the chromatin modifications within non-genic (heterochromatin-like) regions (e. g. subtelomeres, pericentromeres and gene deserts) are also quite different.