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A bovine model of hypoxia-induced pulmonary hypertension reveals a gradient of immune and matrisome response with a complement signature found in circulation

细胞外基质 生物 发病机制 肺动脉高压 补体系统 免疫学 细胞生物学 缺氧(环境) 免疫系统 医学 化学 内科学 有机化学 氧气
作者
Jason S. Williams,Franklyn Nonso Iheagwam,Sean P. Maroney,Lauren R. Schmitt,R. Dale Brown,Greta M. Krafsur,Maria G. Frid,Maxwell C. McCabe,Aneta Gandjeva,Kurt J. Williams,James P. Luyendyk,Anthony J. Saviola,Rubin M. Tuder,Kurt R. Stenmark,Kirk C. Hansen
出处
期刊:American Journal of Physiology-cell Physiology [American Physiological Society]
标识
DOI:10.1152/ajpcell.00274.2024
摘要

Pulmonary hypertension (PH) is a progressive vascular disease characterized by vascular remodeling, stiffening, and luminal obstruction, driven by dysregulated cell proliferation, inflammation, and extracellular matrix (ECM) alterations. Despite the recognized contribution of ECM dysregulation to PH pathogenesis, the precise molecular alterations in the matrisome remain poorly understood. In this study, we employed a matrisome-focused proteomics approach to map the protein composition in a young bovine calf model of acute hypoxia-induced PH. Our findings reveal distinct alterations in the matrisome along the pulmonary vascular axis, with the most prominent changes observed in the main pulmonary artery. Key alterations included a strong immune response and wound repair signature, characterized by increased levels of complement components, coagulation cascade proteins, and provisional matrix markers. Additionally, we observed upregulation of ECM-modifying enzymes, growth factors, and core ECM proteins implicated in vascular stiffening, such as collagens, periostin, tenacsin-C, and fibrin(ogen). Notably, these alterations correlated with increased mean pulmonary arterial pressure and vascular remodeling. In the plasma, we identified increased levels of complement components, indicating a systemic inflammatory response accompanying the vascular remodeling. Our findings shed light on the dynamic matrisome remodeling in early-stage PH, implicating a wound-healing trajectory with distinct patterns from the MPA to the distal vasculature. This study provides novel insights into the molecular underpinnings of PH pathogenesis and highlights potential biomarkers and therapeutic targets within the matrisome landscape.

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