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An H2A.Z-dependent epigenetic checkpoint in macrophages couples genetic risk to microbial metabolite signaling
Zhaoran Sun1, Fanyi Meng2, Chunjian Piao1
1State Key Laboratory of Experimental Hematology, The Province and Ministry Co-sponsored Collaborative Innovation Center for Medical Epigenetics, Tianjin Key Laboratory of Medical Epigenetics, Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Department of Cell Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China.
Abstract:
Inflammatory gene programs must be precisely controlled to maintain immune homeostasis, yet the chromatin mechanisms enforcing transcriptional shutdown remain unclear. Here we show that the histone variant H2A.Z is evicted from pro-inflammatory loci upon acute macrophage activation and re-deposited during resolution. Myeloid-specific H2a.z deletion in mice causes unrestrained inflammatory transcription, arrested macrophage maturation, exacerbates colitis and dysbiosis, depleting butyrate-producing bacteria. Consistently, gut short-chain fatty acids, particularly butyrate, promote H2A.Z deposition through histone acylation, and butyrate's anti-inflammatory effects require H2A.Z. Strikingly, human inflammatory bowel disease (IBD)-associated risk variants are linked to reduced expression of GAS41 and TIP60, which form a reader-writer module that senses acylation mark to direct H2A.Z deposition. Diminished GAS41/TIP60 expression in patient tissues correlates with IBD progression and poor response to anti-TNF therapy. Thus, H2A.Z deposition functions as an acylation-dependent epigenetic checkpoint that couples macrophage differentiation to inflammatory resolution, integrating host genetics and microbial metabolites to calibrate immune responses.
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