SPP1 regulates alveolar type 2 cell-macrophage cross talk and epithelial cell fate in iron-driven lung fibrosis.

IF 4.7 2区 生物学 Q2 CELL BIOLOGY
Xinqian Du, Xinyu Zhang, Zhe Wang, Dan Wang, Yunqi Li, Zengqing Liu, Qing Miao, Hanxiao Zhang, Luo Duan, Yue Hu, Muzhi Zhang, Jie Liu, Zhe Lv, Yan Chen, Wei Wang, Ying Sun, Ye Cui
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引用次数: 0

Abstract

Pulmonary fibrosis, a life-threatening respiratory condition affecting millions globally, is characterized by progressive lung scarring that severely compromises respiratory function. With few effective treatment options available, it carries a poor prognosis for those affected. Disrupted iron homeostasis is increasingly implicated in its pathogenesis, yet the precise mechanisms linking iron overload to fibrotic progression remain elusive. This study unveils a novel pathway by which iron accumulation orchestrates fibrotic remodeling via secreted phosphoprotein 1 (SPP1)-mediated reprogramming of alveolar type 2 (AT2) cells. Using an integrated approach combining analysis of public single-cell and single-nucleus RNA sequencing datasets with functional validation across multiple murine models of pulmonary fibrosis (iron-induced, bleomycin-induced, and silica-induced), we demonstrate that iron overload within AT2 cells triggers a coordinated transcriptional cascade affecting iron handling, immune cell recruitment, and cellular differentiation. Mechanistically, SPP1 emerges as a key mediator, functioning both externally as a paracrine signal for macrophage recruitment following iron-induced secretion from AT2 cells and internally as a driver of pathological epithelial transitions, specifically fostering the development of a Krt8+ alveolar intermediate phenotype. The clinical relevance of these findings is substantiated by analysis of human idiopathic pulmonary fibrosis specimens using publicly available single-cell and spatial transcriptomic datasets. These analyses reveal conserved pathway activation and a distinctive spatial organization of SPP1-expressing AT2 cells within remodeled tissue microenvironments, notably in close proximity to macrophages. By establishing SPP1 as a critical nexus between iron dysregulation and fibrotic progression, our work identifies the SPP1 signaling axis as a compelling therapeutic target for this devastating condition.NEW & NOTEWORTHY This study reveals a novel mechanism linking iron dysregulation to pulmonary fibrosis through SPP1-mediated reprogramming of alveolar type 2 cells. We demonstrate SPP1's dual role: externally coordinating macrophage recruitment and internally directing pathological epithelial transitions toward a Krt8+ intermediate state. These findings, validated across multiple mouse models and human specimens, identify the SPP1 signaling axis as a promising therapeutic target, offering new hope for treating this devastating condition where treatment options have historically been limited.

铁驱动型肺纤维化中SPP1调控肺泡2型细胞-巨噬细胞串扰和上皮细胞命运。
肺纤维化是一种危及生命的呼吸系统疾病,影响着全球数百万人,其特点是进行性肺瘢痕形成,严重损害呼吸功能。由于几乎没有有效的治疗选择,对受影响的人来说,预后很差。铁稳态的破坏越来越多地涉及其发病机制,但铁超载与纤维化进展之间的确切机制仍然难以捉摸。这项研究揭示了铁积累通过分泌磷蛋白1 (SPP1)介导的肺泡2型(AT2)细胞重编程来协调纤维化重塑的新途径。通过综合分析公开的单细胞和单核RNA测序数据集,并在多种小鼠肺纤维化模型(铁诱导、博莱霉素诱导和二氧化硅诱导)中进行功能验证,我们证明AT2细胞内的铁过载触发了协调的转录级联,影响铁处理、免疫细胞募集和细胞分化。从机制上讲,SPP1作为一个关键的介质出现,在AT2细胞铁诱导分泌后,作为巨噬细胞募集的旁分泌信号,在内部作为病理上皮转移的驱动因素,特别是促进Krt8+肺泡中间表型的发展。这些发现的临床相关性通过使用公开的单细胞和空间转录组数据集分析人类特发性肺纤维化标本得到证实。这些分析揭示了在重塑的组织微环境中,特别是在巨噬细胞附近,表达spp1的AT2细胞的保守通路激活和独特的空间组织。通过建立SPP1作为铁调节失调和纤维化进展之间的关键联系,我们的工作确定了SPP1信号轴是这种破坏性疾病的一个引人注目的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.10
自引率
1.80%
发文量
252
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Cell Physiology is dedicated to innovative approaches to the study of cell and molecular physiology. Contributions that use cellular and molecular approaches to shed light on mechanisms of physiological control at higher levels of organization also appear regularly. Manuscripts dealing with the structure and function of cell membranes, contractile systems, cellular organelles, and membrane channels, transporters, and pumps are encouraged. Studies dealing with integrated regulation of cellular function, including mechanisms of signal transduction, development, gene expression, cell-to-cell interactions, and the cell physiology of pathophysiological states, are also eagerly sought. Interdisciplinary studies that apply the approaches of biochemistry, biophysics, molecular biology, morphology, and immunology to the determination of new principles in cell physiology are especially welcome.
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