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CCND1 Mitigates Ischemia-Induced Pathological Cardiac Remodeling by Promoting Cardiac Monocyte–Derived Macrophage Transition to a Reparative Phenotype

医学 炎症 巨噬细胞 癌症研究 表型 外周血单个核细胞 免疫学 心肌梗塞 先天免疫系统 表观遗传学 免疫系统 小RNA 病理 重编程 条件基因敲除 心室重构 染色质重塑 生物 电池类型 心脏纤维化 心肌保护 细胞凋亡 心肌炎 基因剔除小鼠 细胞生物学 PDK4型 细胞因子
作者
Chuhan Wang,Huian Han,Kailai Li,Lai Zhang,Chuanjun Shu,Liyuan Cao,Mengxuan Zhang,Yating Yang,Shenghang Liu,Hao Shi,Chen Liu,Hui Bai,Jingjing Ben,Xudong Zhu,Xiaoyu Li,Qing Yang,Dongdong Wang,Feng Chen,Yigang Zhong,Hao Wang
出处
期刊:Circulation [Lippincott Williams & Wilkins]
标识
DOI:10.1161/circulationaha.126.079966
摘要

BACKGROUND: The innate immune system plays a pivotal role in orchestrating the response to myocardial infarction (MI), with monocytes and macrophages acting as central mediators of tissue injury and repair. Following MI, a dynamic sequence of inflammatory, anti-inflammatory, and reparative phases unfolds over the course of several days. While timely resolution of inflammation and initiation of reparative programs are critical for favorable cardiac remodeling and improved long-term outcomes, the mechanisms by which recruited monocyte-derived macrophages are instructed within the postinfarct niche to adopt a reparative phenotype remain incompletely understood. METHODS: Human peripheral blood mononuclear cells were isolated from individuals with and without MI for single-cell RNA sequencing analysis. The murine cardiac monocyte-derived macrophage behaviors after MI were characterized by genetic lineage tracing, lineage tracing plus bone marrow transplantation, metabolite profiling, and cell phenotyping approaches. The role of macrophage CCND1 (cyclin D1) in MI-induced adverse remodeling was investigated using macrophage-specific Ccnd1 knockout mice. Epigenetic experiments were conducted to study the mechanisms underlying metabolic reprogramming and macrophage phenotypic transition. The therapeutic efficacy of lentivirus-targeting macrophage CCND1 and its downstream regulator PDK4 (pyruvate dehydrogenase kinase 4) were assessed in vivo using an MI mouse model. RESULTS: We found that CCND1 levels in peripheral blood mononuclear cells, monocytes, and cardiac macrophages from patients with MI were significantly decreased. Both macrophage-specific and monocyte-derived macrophage–specific deletion of CCND1 worsened MI-induced cardiac dysfunction and adverse remodeling, driven by amplified inflammatory responses. Mechanistically, CCND1 directly interacted with PDK4 and facilitated its ubiquitination by recruiting RPL11 (ribosomal protein L11) and mouse double minute 2. Through this axis, CCND1 suppressed PDK4-driven PDH (pyruvate dehydrogenase) phosphorylation, enhanced glucose oxidation, and shifted macrophages toward an anti-inflammatory phenotype. Targeted overexpression of the CCND1-PDK4 binding motif or knockdown of PDK4 in macrophages improved cardiac function and mitigated adverse remodeling after MI, independent of the canonical cell cycle–regulatory role of CCND1. CONCLUSIONS: Our findings identify the CCND1-PDK4 axis as a key regulator of macrophage functional reprogramming toward a reparative phenotype after MI, highlighting it as a potential therapeutic target in postinfarction remodeling.
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