Duong Phu, Rodriguez-Parks Anjelica, Kang Junsu, Murphy Patrick J
University of Rochester.
University of Wisconsin-Madison.
Res Sq. 2024 Apr 3:rs.3.rs-4189493. doi: 10.21203/rs.3.rs-4189493/v1.
Regenerative potential is governed by a complex process of transcriptional reprogramming, involving chromatin reorganization and dynamics in transcription factor binding patterns throughout the genome. The degree to which chromatin and epigenetic changes contribute to this process remains partially understood. Here we provide a modified CUT&Tag protocol suitable for improved characterization and interrogation of epigenetic changes during adult fin regeneration in zebrafish. Our protocol generates data that recapitulates results from previously published ChIP-Seq methods, requires far fewer cells as input, and significantly improves signal to noise ratios. We deliver high-resolution enrichment maps for H3K4me3 of uninjured and regenerating fin tissues. During regeneration, we find that H3K4me3 levels increase over gene promoters which become transcriptionally active and genes which lose H3K4me3 become silenced. Interestingly, these epigenetic reprogramming events recapitulate the H3K4me3 patterns observed in developing fin folds of 24-hour old zebrafish embryos. Our results indicate that changes in genomic H3K4me3 patterns during fin regeneration occur in a manner consistent with reactivation of developmental programs, demonstrating CUT&Tag to be an effective tool for profiling chromatin landscapes in regenerating tissues.
再生潜能受转录重编程这一复杂过程的调控,该过程涉及整个基因组中的染色质重组以及转录因子结合模式的动态变化。染色质和表观遗传变化对这一过程的贡献程度仍部分未知。在此,我们提供了一种改良的CUT&Tag方案,适用于更好地表征和研究斑马鱼成年鳍再生过程中的表观遗传变化。我们的方案生成的数据重现了先前发表的ChIP-Seq方法的结果,所需的输入细胞数量少得多,并且显著提高了信噪比。我们提供了未受伤和再生鳍组织的H3K4me3高分辨率富集图谱。在再生过程中,我们发现H3K4me3水平在转录激活的基因启动子上增加,而失去H3K4me3的基因则沉默。有趣的是,这些表观遗传重编程事件重现了在24小时龄斑马鱼胚胎发育中的鳍褶中观察到的H3K4me3模式。我们的结果表明,鳍再生过程中基因组H3K4me3模式的变化以与发育程序重新激活一致的方式发生,证明CUT&Tag是分析再生组织中染色质景观的有效工具。