表观遗传学
生物
染色质
神经发生的表观遗传调控
重编程
DNA甲基化
组蛋白
细胞命运测定
获得性免疫系统
先天免疫系统
免疫系统
转录因子
先天性淋巴细胞
细胞生物学
遗传学
染色质重塑
细胞
基因
基因表达
作者
Antonietta Liotti,Anne Lise Ferrara,Stefania Loffredo,Maria Rosaria Galdiero,Gilda Varricchi,Francesca Di Rella,Mauro Maniscalco,Martina Belardo,Roberta Vastano,Rosaria Prencipe,Laura Pignata,Roberta Romanò,Giuseppe Spadaro,Paola de Candia,Antonio Pezone,Veronica De Rosa
出处
期刊:Immunology
[Wiley]
日期:2022-09-26
卷期号:167 (4): 451-470
被引量:4
摘要
Epigenetics connects genetic and environmental factors: it includes DNA methylation, histone post-translational modifications and the regulation of chromatin accessibility by non-coding RNAs, all of which control constitutive or inducible gene transcription. This plays a key role in harnessing the transcriptional programs of both innate and adaptive immune cells due to its plasticity and environmental-driven nature, piloting myeloid and lymphoid cell fate decisions with no change in their genomic sequence. In particular, epigenetic marks at the site of lineage-specific transcription factors and maintenance of cell type-specific epigenetic modifications, referred to as 'epigenetic memory', dictate cell differentiation, cytokine production and functional capacity following repeated antigenic exposure in memory T cells. Moreover, metabolic and epigenetic reprogramming occurring during a primary innate immune response leads to enhanced responses to secondary challenges, a phenomenon known as 'trained immunity'. Here, we discuss how stable and dynamic epigenetic states control immune cell identity and plasticity in physiological and pathological conditions. Dissecting the regulatory circuits of cell fate determination and maintenance is of paramount importance for understanding the delicate balance between immune cell activation and tolerance, in healthy conditions and in autoimmune diseases.
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