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IRF5 调控巨噬细胞外膜浸润以促进腹主动脉瘤的形成。

IRF5 governs macrophage adventitial infiltration to fuel abdominal aortic aneurysm formation.

机构信息

Department of Cardiology, State Key Laboratory of Transvascular Implantation Devices, Provincial Key Laboratory of Cardiovascular Research, and.

Department of Vascular Surgery, The second Affiliated Hospital of Zhejiang University School of Medicine, Hangzhou, China.

出版信息

JCI Insight. 2024 Jan 4;9(3):e171488. doi: 10.1172/jci.insight.171488.

Abstract

Abdominal aortic aneurysm (AAA) is a chronic inflammatory disease characterized by the expansion of the aortic wall. One of the most significant features is the infiltration of macrophages in the adventitia, which drives vasculature remodeling. The role of macrophage-derived interferon regulatory factor 5 (IRF5) in macrophage infiltration and AAA formation remains unknown. RNA sequencing of AAA adventitia identified Irf5 as the top significantly increased transcription factor that is predominantly expressed in macrophages. Global and myeloid cell-specific deficiency of Irf5 reduced AAA progression, with a marked reduction in macrophage infiltration. Further cellular investigations indicated that IRF5 promotes macrophage migration by direct regulation of downstream phosphoinositide 3-kinase γ (PI3Kγ, Pik3cg). Pik3cg ablation hindered AAA progression, and myeloid cell-specific salvage of Pik3cg restored AAA progression and macrophage infiltration derived from Irf5 deficiency. Finally, we found that IRF5 and PI3Kγ expression in the adventitia is significantly increased in patients with AAA. These findings reveal that the IRF5-dependent regulation of PI3Kγ is essential for AAA formation.

摘要

腹主动脉瘤(AAA)是一种慢性炎症性疾病,其特征为主动脉壁扩张。最显著的特征之一是巨噬细胞在外膜浸润,驱动血管重塑。巨噬细胞来源的干扰素调节因子 5(IRF5)在巨噬细胞浸润和 AAA 形成中的作用尚不清楚。AAA 外膜的 RNA 测序将 Irf5 鉴定为显著上调的转录因子,其主要在巨噬细胞中表达。Irf5 的全局和髓系细胞特异性缺失可减少 AAA 的进展,巨噬细胞浸润明显减少。进一步的细胞研究表明,IRF5 通过直接调节下游磷酸肌醇 3-激酶 γ(PI3Kγ,Pik3cg)促进巨噬细胞迁移。Pik3cg 的缺失可抑制 AAA 的进展,而髓系细胞特异性拯救 Pik3cg 可恢复源自 Irf5 缺失的 AAA 进展和巨噬细胞浸润。最后,我们发现 AAA 患者的外膜中 IRF5 和 PI3Kγ 的表达显著增加。这些发现揭示了 IRF5 依赖的 PI3Kγ 调节对 AAA 形成至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ce5/11143966/08bd05b2c1b2/jciinsight-9-171488-g044.jpg

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