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DNA 甲基化通过减弱 IRF-7 结合活性损害 TLR9 诱导的 Foxp3 表达,从而导致暴发性 1 型糖尿病。

DNA methylation impairs TLR9 induced Foxp3 expression by attenuating IRF-7 binding activity in fulminant type 1 diabetes.

机构信息

Diabetes Center, 2nd Xiangya Hospital, and Institute of Metabolism and Endocrinology, Key Laboratory of Diabetes Immunology, Ministry of Education, Central South University, 139 Renmin Middle Rd, Changsha, Hunan 410011, China.

出版信息

J Autoimmun. 2013 Mar;41:50-9. doi: 10.1016/j.jaut.2013.01.009. Epub 2013 Mar 11.

DOI:10.1016/j.jaut.2013.01.009
PMID:23490285
Abstract

Fulminant type 1 diabetes (FT1D) is an extremely aggressive disease characterized by the abrupt onset of insulin-deficient hyperglycemia. However, the precise mechanisms underlying disease etiology almost remain unclear. As mice deficient in regulatory T cells (Tregs) are prone to the development of an FT1D-like phenotype, we thus investigated whether FT1D patients manifest Treg deficiency and explored the related mechanisms. We first noted a significant reduction for Foxp3 and CTLA4 expression levels in PBMCs of FT1D patients. IRF-7 was found to selectively bind to the Foxp3 promoter, and by which it promotes Foxp3 transcription. Therefore, ectopic IRF-7 expression significantly promoted Foxp3 and CTLA4 expression in PBMCs, while knockdown of IRF-7 manifested opposite effect. Importantly, stimulation of PBMCs with CpG ODN, a ligand for TLR9, significantly induced Foxp3 expression, demonstrating that TLR9 signaling positively regulates Treg development. However, knockdown of IRF-7 expression almost completely diminished the enhancing effect of TLR9 signaling on Foxp3 expression, suggesting that IRF-7 is a downstream molecule of TLR9 signaling and is essential for TLR9 induced Treg generation. Of interestingly note, the Foxp3 promoter in FT1D patients was hypermethylated, indicating that DNA methylation could be a causative factor responsible for the reduced Foxp3 expression in FT1D patients. Indeed, our mechanistic studies revealed that DNA methylation blocked IRF-7 binding to the Foxp3 promoter. Together, our data support the notion that environmental insults in genetic predisposed subjects trigger Foxp3 promoter hypermethylation, which then prevents IRF-7 binding to the Foxp3 promoter and impairs Treg development/functionality contributing to the pathogenesis of FT1D.

摘要

暴发性 1 型糖尿病(FT1D)是一种极具侵袭性的疾病,其特征为胰岛素缺乏性高血糖的突然发生。然而,疾病病因的精确机制几乎仍不清楚。由于缺乏调节性 T 细胞(Tregs)的小鼠易发生类似 FT1D 的表型,因此我们研究了 FT1D 患者是否表现出 Treg 缺陷,并探讨了相关机制。我们首先注意到 FT1D 患者的 PBMCs 中 Foxp3 和 CTLA4 的表达水平显著降低。IRF-7 被发现选择性结合 Foxp3 启动子,从而促进 Foxp3 转录。因此,异位表达 IRF-7 可显著促进 PBMCs 中 Foxp3 和 CTLA4 的表达,而 IRF-7 的敲低则表现出相反的效果。重要的是,CpG ODN(TLR9 的配体)刺激 PBMCs 可显著诱导 Foxp3 的表达,表明 TLR9 信号正向调节 Treg 的发育。然而,IRF-7 表达的敲低几乎完全消除了 TLR9 信号对 Foxp3 表达的增强作用,表明 IRF-7 是 TLR9 信号的下游分子,对于 TLR9 诱导的 Treg 生成是必需的。有趣的是,FT1D 患者的 Foxp3 启动子发生超甲基化,表明 DNA 甲基化可能是导致 FT1D 患者 Foxp3 表达降低的一个致病因素。实际上,我们的机制研究表明,DNA 甲基化阻止了 IRF-7 结合到 Foxp3 启动子上。总之,我们的数据支持这样一种观点,即在遗传易感个体中,环境因素的刺激会触发 Foxp3 启动子的超甲基化,从而阻止 IRF-7 结合到 Foxp3 启动子上,并损害 Treg 的发育/功能,导致 FT1D 的发病机制。

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