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铁负荷巨噬细胞介导的旁分泌促纤维化信号诱导肺成纤维细胞激活。

Iron-laden macrophage-mediated paracrine profibrotic signaling induces lung fibroblast activation.

机构信息

Department of Immunology, School of Basic Medical Sciences, Capital Medical University, Beijing, People's Republic of China.

Department of Pulmonary and Critical Care Medicine, Center of Respiratory Medicine, China-Japan Friendship Hospital, Beijing, People's Republic of China.

出版信息

Am J Physiol Cell Physiol. 2024 Oct 1;327(4):C979-C993. doi: 10.1152/ajpcell.00675.2023. Epub 2024 Aug 26.

Abstract

Idiopathic pulmonary fibrosis (IPF) is a devastating condition characterized by progressive lung scarring and uncontrolled fibroblast proliferation, inevitably leading to organ dysfunction and mortality. Although elevated iron levels have been observed in patients and animal models of lung fibrosis, the mechanisms linking iron dysregulation to lung fibrosis pathogenesis, particularly the role of macrophages in orchestrating this process, remain poorly elucidated. Here we evaluate iron metabolism in macrophages during pulmonary fibrosis using both in vivo and in vitro approaches. In murine bleomycin- and amiodarone-induced pulmonary fibrosis models, we observed significant iron deposition and lipid peroxidation in pulmonary macrophages. Intriguingly, the ferroptosis regulator glutathione peroxidase 4 (GPX4) was upregulated in pulmonary macrophages following bleomycin instillation, a finding corroborated by single-cell RNA sequencing analysis. Moreover, macrophages isolated from fibrotic mouse lungs exhibited increased transforming growth factor (TGF)-β1 expression that correlated with lipid peroxidation. In vitro, iron overload in bone marrow-derived macrophages triggered lipid peroxidation and TGF-β1 upregulation, which was effectively suppressed by ferroptosis inhibitors. When cocultured with iron-overloaded macrophages, lung fibroblasts exhibited heightened activation, evidenced by increased α-smooth muscle actin and fibronectin expression. Importantly, this profibrotic effect was attenuated by treating macrophages with a ferroptosis inhibitor or blocking TGF-β receptor signaling in fibroblasts. Collectively, our study elucidates a novel mechanistic paradigm in which the accumulation of iron within macrophages initiates lipid peroxidation, thereby amplifying TGF-β1 production, subsequently instigating fibroblast activation through paracrine signaling. Thus, inhibiting iron overload and lipid peroxidation warrants further exploration as a strategy to suppress fibrotic stimulation by disease-associated macrophages. This study investigates the role of iron in pulmonary fibrosis, specifically focusing on macrophage-mediated mechanisms. Iron accumulation in fibrotic lung macrophages triggers lipid peroxidation and an upregulation of transforming growth factor (TGF)-β1 expression. Coculturing iron-laden macrophages activates lung fibroblasts in a TGF-β1-dependent manner, which can be mitigated by ferroptosis inhibitors. These findings underscore the potential of targeting iron overload and lipid peroxidation as a promising strategy to alleviate fibrotic stimulation provoked by disease-associated macrophages.

摘要

特发性肺纤维化 (IPF) 是一种破坏性疾病,其特征为进行性肺瘢痕形成和不受控制的成纤维细胞增殖,最终导致器官功能障碍和死亡。尽管在肺纤维化患者和动物模型中观察到铁水平升高,但铁调节与肺纤维化发病机制之间的机制,特别是巨噬细胞在协调这一过程中的作用,仍未得到充分阐明。在这里,我们使用体内和体外方法评估肺纤维化过程中巨噬细胞中的铁代谢。在小鼠博来霉素和胺碘酮诱导的肺纤维化模型中,我们观察到肺巨噬细胞中存在明显的铁沉积和脂质过氧化。有趣的是,在博来霉素滴注后,肺巨噬细胞中 ferroptosis 调节剂谷胱甘肽过氧化物酶 4 (GPX4) 上调,单细胞 RNA 测序分析证实了这一点。此外,从纤维化小鼠肺部分离的巨噬细胞表现出更高的转化生长因子 (TGF)-β1 表达,这与脂质过氧化相关。在体外,骨髓来源的巨噬细胞中铁过载引发脂质过氧化和 TGF-β1 上调,铁死亡抑制剂可有效抑制这一过程。当与铁过载巨噬细胞共培养时,肺成纤维细胞表现出更高的激活,表现为 α-平滑肌肌动蛋白和纤维连接蛋白表达增加。重要的是,用铁死亡抑制剂处理巨噬细胞或阻断成纤维细胞中的 TGF-β 受体信号可以减弱这种促纤维化作用。总之,我们的研究阐明了一个新的机制范例,即在巨噬细胞内积累的铁引发脂质过氧化,从而放大 TGF-β1 的产生,随后通过旁分泌信号引发成纤维细胞激活。因此,抑制铁过载和脂质过氧化值得进一步探索,作为抑制疾病相关巨噬细胞引发的纤维化刺激的策略。本研究探讨了铁在肺纤维化中的作用,特别是聚焦于巨噬细胞介导的机制。纤维化肺巨噬细胞中的铁积累触发脂质过氧化和转化生长因子 (TGF)-β1 表达上调。共培养铁负荷巨噬细胞以 TGF-β1 依赖的方式激活肺成纤维细胞,铁死亡抑制剂可减轻这种作用。这些发现强调了靶向铁过载和脂质过氧化作为减轻疾病相关巨噬细胞引发的纤维化刺激的有前途策略的潜力。

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