先天免疫系统
免疫
生物
细胞生物学
免疫系统
表观遗传学
获得性免疫系统
骨髓生成
免疫学
生物化学
基因
干细胞
祖细胞
作者
Samuel T. Keating,Laszlo Groh,Charlotte D.C.C. van der Heijden,Hanah Rodriguez,Jéssica Cristina dos Santos,Stephanie Fanucchi,Jun Okabe,Harikrishnan Kaipananickal,Jelmer H. van Puffelen,Leonie Helder,Marlies P. Noz,Vasiliki Matzaraki,Yang Li,L. Charlotte J. de Bree,Valerie A. C. M. Koeken,Simone J.C.F.M. Moorlag,Vera P. Mourits,Jorge Domínguez‐Andrés,Marije Oosting,Elianne P. Bulthuis
出处
期刊:Cell Reports
[Cell Press]
日期:2020-04-01
卷期号:31 (3): 107548-107548
被引量:155
标识
DOI:10.1016/j.celrep.2020.107548
摘要
Trained immunity confers a sustained augmented response of innate immune cells to a secondary challenge, via a process dependent on metabolic and transcriptional reprogramming. Because of its previous associations with metabolic and transcriptional memory, as well as the importance of H3 histone lysine 4 monomethylation (H3K4me1) to innate immune memory, we hypothesize that the Set7 methyltransferase has an important role in trained immunity induced by β-glucan. Using pharmacological studies of human primary monocytes, we identify trained immunity-specific immunometabolic pathways regulated by Set7, including a previously unreported H3K4me1-dependent plasticity in the induction of oxidative phosphorylation. Recapitulation of β-glucan training in vivo additionally identifies Set7-dependent changes in gene expression previously associated with the modulation of myelopoiesis progenitors in trained immunity. By revealing Set7 as a key regulator of trained immunity, these findings provide mechanistic insight into sustained metabolic changes and underscore the importance of characterizing regulatory circuits of innate immune memory.
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