染色质
表观遗传学
表观遗传学
生物
DNA甲基化
组蛋白
遗传学
髓性白血病
染色质重塑
基因
基因组学
后生
基因调控网络
计算生物学
转录因子
癌症研究
基因表达调控
髓样
组蛋白修饰酶
甲基化
髓系白血病
表观基因组
转录组
细胞分化
生物信息学
CpG站点
人类遗传学
作者
Yotaro Ochi,Markus Liew‐Littorin,Yasuhito Nannya,Sofia Bengtzén,Bénédicte Piauger,Stefan Deneberg,Martin Jädersten,Vladimir Lazarević,Jörg Cammenga,Anna Robelius,Lovisa Wennström,Emma Ölander,Senji Kasahara,Nobuhiro Hiramoto,Nobuhiro Kanemura,Nobuo Sezaki,Maki Sakurada,Makoto Iwasaki,Junya Kanda,Yasunori Ueda
出处
期刊:Nature
[Nature Portfolio]
日期:2026-07-08
被引量:1
标识
DOI:10.1038/s41586-026-10703-4
摘要
Acute myeloid leukaemia (AML) is an aggressive blood cancer characterized by the unregulated proliferation of immature myeloblasts. Gene mutations have been shown to have a large effect on pathogenesis, inter-tumour heterogeneity and clinical outcomes in AML1–8; however, the role of epigenetic alterations in these respects has been investigated less extensively. Here we use ATAC-seq (assay for transposase-accessible chromatin with sequencing) in a cohort of 1,563 individuals with a recent diagnosis of AML (the ‘eCHROMA’ cohort) to show that AML can be classified into 16 subgroups on the basis of chromatin accessibility profiles. Multiomics analyses of gene mutations, the transcriptome, DNA methylation and histone marks show that these ATAC subgroups exhibit distinct driver mutations, differentiation states, gene expression, DNA methylation and super-enhancer profiles, and are also associated with clinical outcomes. These findings were validated in independent cohorts. Single-cell ATAC sequencing reveals that all leukaemic cells in each subgroup share a common chromatin accessibility profile, which suggests that subgroup-specific epigenomic fingerprints underlie the ATAC-based classification. Mechanistically, the subgroups have distinct gene-regulatory networks that are driven by the activities of key transcription factors in haematopoiesis, and in which subgroup-specific super-enhancers have a pivotal role. Multiomics single-cell analysis further reveals deregulated trajectories of differentiation coupled with chromatin accessibility and gene expression. Notably, ATAC subgroups have an independent prognostic effect, compared with genomic classification, and are associated with particular drug sensitivities. In summary, ATAC-based chromatin profiling, combined with multiomics data, provides insights into AML pathogenesis beyond genomics and constitutes a valuable resource for AML research. An ATAC-seq-based approach is used to classify acute myeloid leukaemia (AML) into 16 epigenomic subgroups, and provides insight into the role of non-genetic mechanisms in determining pathogenesis, clinical behaviour and drug sensitivity in this disease.