表观基因组
重编程
造血
血小板
干细胞
生物
癌症研究
基因沉默
细胞生物学
基因组编辑
免疫学
血小板活化
血小板生成素
抗血栓
造血干细胞
整合素
小RNA
心理压抑
Wiskott-Aldrich综合征
下调和上调
医学
DNA甲基化
基因表达调控
生物信息学
基因传递
遗传增强
血栓形成
作者
Tianyi Ye,Wanying Xu,María N. Barrachina,Peng Lyu,Mateusz Antoszewski,Lucrezia della Volpe,Chun-Jie Guo,Andrew Lee,Madelaine S. Theardy,Spencer D. Shelton,Lara Wahlster,Alexis Caulier,Luana Messa,Michael Poeschla,Gaurav Agarwal,Ronodeep Mitra,Alec A. Schmaier,Jonathan S. Weissman,Kellie R. Machlus,Vijay G. Sankaran
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2026-03-29
标识
DOI:10.64898/2026.03.27.714536
摘要
Thrombosis remains a major cause of cardiovascular and cerebrovascular diseases, driven in large part by platelet activation and aggregation. Because platelets are continuously produced from hematopoietic stem cells (HSCs), durable reprogramming of HSC output offers a unique opportunity for a one-time antithrombotic intervention. Here, we show that DNA methylation-based epigenome editors delivered transiently as RNA result in stable, heritable gene silencing in primary human HSCs that persists through long-term self-renewal and megakaryocytic differentiation, while remaining reversible through targeted demethylation. Targeting the platelet integrin β3 ( ITGB3 ), this approach achieves robust, sustained repression and yields platelets with impaired aggregation. Extending this framework to additional genetically-nominated platelet targets establishes HSC epigenome editing as a durable and reversible strategy to modulate thrombotic risk and highlights broader opportunities to engineer hematopoiesis.
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