Ministry of Education Key Laboratory of Protein Sciences, Beijing Advanced Innovation Center for Structural Biology, Beijing Frontier Research Center for Biological Structure, Department of Basic Medical Sciences, School of Medicine, Tsinghua University, Beijing 100084, China.
Department of Chemistry, Princeton University, Princeton, NJ 08540.
Proc Natl Acad Sci U S A. 2021 Feb 9;118(6). doi: 10.1073/pnas.2016742118.
Serotonylation of glutamine 5 on histone H3 (H3Q5ser) was recently identified as a permissive posttranslational modification that coexists with adjacent lysine 4 trimethylation (H3K4me3). While the resulting dual modification, H3K4me3Q5ser, is enriched at regions of active gene expression in serotonergic neurons, the molecular outcome underlying H3K4me3-H3Q5ser crosstalk remains largely unexplored. Herein, we examine the impact of H3Q5ser on the readers, writers, and erasers of H3K4me3. All tested H3K4me3 readers retain binding to the H3K4me3Q5ser dual modification. Of note, the PHD finger of TAF3 favors H3K4me3Q5ser, and this binding preference is dependent on the Q5ser modification regardless of H3K4 methylation states. While the activity of the H3K4 methyltransferase, MLL1, is unaffected by H3Q5ser, the corresponding H3K4me3/2 erasers, KDM5B/C and LSD1, are profoundly inhibited by the presence of the mark. Collectively, this work suggests that adjacent H3Q5ser potentiates H3K4me3 function by either stabilizing H3K4me3 from dynamic turnover or enhancing its physical readout by downstream effectors, thereby potentially providing a mechanism for fine-tuning critical gene expression programs.
组蛋白 H3 上谷氨酰胺 5 的丝氨酰化(H3Q5ser)最近被鉴定为一种允许的翻译后修饰,与相邻赖氨酸 4 三甲基化(H3K4me3)共存。虽然由此产生的双重修饰 H3K4me3Q5ser 在 5-羟色胺能神经元中活跃基因表达的区域富集,但 H3K4me3-H3Q5ser 串扰的分子结果在很大程度上仍未得到探索。在这里,我们研究了 H3Q5ser 对 H3K4me3 的读取器、写入器和橡皮擦的影响。所有测试的 H3K4me3 读取器都保留了对 H3K4me3Q5ser 双重修饰的结合。值得注意的是,TAF3 的 PHD 指针对 H3K4me3Q5ser 有偏好,并且这种结合偏好取决于 Q5ser 修饰,而与 H3K4 甲基化状态无关。虽然 H3K4 甲基转移酶 MLL1 的活性不受 H3Q5ser 的影响,但相应的 H3K4me3/2 橡皮擦 KDM5B/C 和 LSD1 被该标记的存在严重抑制。总的来说,这项工作表明,相邻的 H3Q5ser 通过稳定 H3K4me3 免受动态周转或增强其下游效应物的物理读出,从而增强 H3K4me3 的功能,从而为精细调节关键基因表达程序提供了一种机制。