Tamura Tomohiko, Smith Matthew, Kanno Tomohiko, Dasenbrock Hormuzdiyer, Nishiyama Akira, Ozato Keiko
Laboratory of Molecular Growth Regulation, Eunice Kennedy Shriver NICHD, National Institutes of Health, Bethesda, Maryland 20892, USA.
J Biol Chem. 2009 May 1;284(18):12217-25. doi: 10.1074/jbc.M805651200. Epub 2009 Feb 25.
The H3.3 histone variant is synthesized throughout cell cycle and deposited onto chromatin in a replication-independent manner. It is enriched in transcriptionally active regions of chromatin and is implicated in epigenetic memory. The dynamics of H3.3 deposition during transcriptional activation, however, have not been fully studied so far. Here we examined H3.3 incorporation into interferon (IFN)-stimulated genes in confluent mouse NIH3T3 cells expressing H3.3 fused to the yellow fluorescent protein (YFP). Following IFN stimulation, H3.3-YFP was rapidly incorporated into all four IFN-activated genes tested, with the highest enrichment seen in the distal end of the coding region. Surprisingly, H3.3 enrichment in the coding region continued for an extended period of time, long after transcription ceased. The promoter region, although constitutively enriched with H3.3-YFP, did not show an increase in its deposition in response to IFN stimulation. Further, although H3.3-YFP deposition stably remained in non-dividing cells for days after IFN stimulation, it was rapidly diminished in dividing cells. Lastly, we examined the role of H3.3 in IFN-stimulated transcription by a short hairpin RNA approach and found that IFN-stimulated transcription was significantly impaired in H3.3 knockdown cells. Results indicate that H3.3 plays a role in IFN-mediated transcription, and its deposition leaves a prolonged post-transcriptional mark in these genes.
H3.3组蛋白变体在整个细胞周期中合成,并以不依赖复制的方式沉积到染色质上。它在染色质的转录活性区域富集,并与表观遗传记忆有关。然而,到目前为止,转录激活过程中H3.3沉积的动态变化尚未得到充分研究。在这里,我们检测了在表达与黄色荧光蛋白(YFP)融合的H3.3的汇合小鼠NIH3T3细胞中,H3.3掺入干扰素(IFN)刺激的基因的情况。在IFN刺激后,H3.3-YFP迅速掺入所有四个测试的IFN激活基因中,在编码区远端观察到最高的富集。令人惊讶的是,在转录停止很长时间后,编码区的H3.3富集仍持续很长一段时间。启动子区域虽然持续富集H3.3-YFP,但在IFN刺激后其沉积没有增加。此外,虽然IFN刺激后H3.3-YFP沉积在非分裂细胞中稳定存在数天,但在分裂细胞中迅速减少。最后,我们通过短发夹RNA方法研究了H3.3在IFN刺激转录中的作用,发现H3.3敲低的细胞中IFN刺激的转录显著受损。结果表明,H3.3在IFN介导的转录中起作用,其沉积在这些基因中留下了延长的转录后标记。