Astaxanthin attenuates cigarette smoke-induced small airway remodeling via the AKT1 signaling pathway

慢性阻塞性肺病 气道 血管生成 医学 成纤维细胞 肌成纤维细胞 免疫印迹 癌症研究 成纤维细胞生长因子 虾青素 细胞生物学 体外 病理 化学 生物 内科学 生物化学 纤维化 受体 外科 基因 类胡萝卜素
作者
Haidong Ding,Liming Yan,Yu Wang,Yao Lu,Mingming Deng,Yingxi Wang,Qiuyue Wang,Xiaoming Zhou
出处
期刊:Respiratory Research [BioMed Central]
卷期号:25 (1)
标识
DOI:10.1186/s12931-024-02768-4
摘要

Abstract Background Astaxanthin (AXT) is a keto-carotenoid with a variety of biological functions, including antioxidant and antifibrotic effects. Small airway remodeling is the main pathology of chronic obstructive pulmonary disease (COPD) and is caused by epithelial-to-mesenchymal transition (EMT) and fibroblast differentiation and proliferation. Effective therapies are still lacking. This study aimed to investigate the role of AXT in small airway remodeling in COPD and its underlying mechanisms. Methods First, the model of COPD mice was established by cigarette smoke (CS) exposure combined with intraperitoneal injection of cigarette smoke extract (CSE). The effects of AXT on the morphology of CS combined with CSE -induced emphysema, EMT, and small airway remodeling by using Hematoxylin-eosin (H&E) staining, immunohistochemical staining, and western blot. In addition, in vitro experiments , the effects of AXT on CSE induced-EMT and fibroblast function were further explored. Next, to explore the specific mechanisms underlying the protective effects of AXT in COPD, potential targets of AXT in COPD were analyzed using network pharmacology. Finally, the possible mechanism was verified through molecular docking and in vitro experiments. Results AXT alleviated pulmonary emphysema, EMT, and small airway remodeling in a CS combined with CSE -induced mouse model. In addition, AXT inhibited the EMT process in airway cells and the differentiation and proliferation of fibroblasts. Mechanistically, AXT inhibited myofibroblast activation by directly binding to and suppressing the phosphorylation of AKT1. Therefore, our results show that AXT protects against small airway remodeling by inhibiting AKT1. Conclusions The present study identified and illustrated a new food function of AXT, indicating that AXT could be used in the therapy of COPD-induced small airway remodeling.

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