乙酰化
染色质
组蛋白乙酰转移酶
细胞生物学
转录因子
组蛋白
化学
重编程
HEK 293细胞
激活剂(遗传学)
染色质免疫沉淀
抄写(语言学)
髓系白血病
转录调控
乙酰转移酶
基因表达调控
癌症研究
生物
白血病
赖氨酸
P300-CBP转录因子
髓样
血浆蛋白结合
辅活化剂
染色质重塑
组蛋白H3
体外
基因
发起人
分子生物学
生物化学
溴尿嘧啶
细胞分化
增强子
基因表达
作者
Markus Meyerhöfer,Yawen Zhou,Aaron Gallego-Crespo,Viral Shah,Malte Andreas Behrendt,Maria Saura-Pañella,Björn Häupl,Oleksandr Todoriuk,Monika Hartmann,Matthias Klein,Catherine Wölfel,Patricia S. Hähnel,Christian Michel,Sabine Muth,Thomas Kindler,Tobias Bopp,Hansjörg Schild,Sarah J. Horton,Markus P. Radsak,Matthias Theobald
出处
期刊:Blood
[Elsevier BV]
日期:2026-03-18
被引量:1
标识
DOI:10.1182/blood.2025031924
摘要
The lysine acetyltransferase (KAT) activity of p300/CREBBP has traditionally been linked to transcriptional activation. This has been attributed largely to acetylation of histone residues such as H3K27ac, a defining hallmark of active regulatory elements. Here we show that, in acute myeloid leukemia (AML), inhibition of p300/CREBBP catalysis can paradoxically increase transcription. We combined time-resolved dynamics of nascent and total transcription with chromatin binding dynamics of p300/CREBBP and their associated TFs/co-regulators (inferred from chromatin pull-down proteomics, acetyl-proteomics and motif enrichment) to uncover mechanisms of transcriptional rewiring after p300/CREBBP catalytic inhibition. In parallel, we dissected the functional contribution of individual p300/CREBBP acetyl-interactome members to KAT inhibition using genome-wide CRISPR-Cas9 dropout and focused Perturb-seq screens. Together, these approaches revealed that KAT inhibition paradoxically retains p300/CREBBP and promotes cooperative TF assembly and increased H3K27 acetylation at a subset of regulatory elements. The effect was most pronounced at IRF motif-enriched loci, including interferon-stimulated genes (ISGs), where KAT inhibition triggered p300/CREBBP accumulation and enhanced combinatorial TF binding, enabling recruitment of the ISG activator STAT1. Consequently, ISG loci were converted into transcriptionally active states that induced cell-cycle arrest, differentiation and apoptosis. Therapeutically, combining KAT inhibition with interferon-alpha augmented ISG expression, synergistically drove AML cell death in vitro and significantly extended survival in both AML xenografts and murine models. These findings refine our understanding of p300/CREBBP KAT activity, demonstrating that cooperative TF assembly can reconfigure p300/CREBBP-containing complexes under catalytic inhibition to induce transcription, with translational implications for reprogramming interferon-driven programs through catalytic inhibition in AML and beyond.
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