β-carotene alleviates PM2.5-induced pulmonary fibrosis via suppression of the Frizzled5-mediated Wnt5a/Ca2+pathway

Exposure to fine particulate matter (PM 2.5 ) is a major environmental risk factor for pulmonary fibrosis, yet the involvement of calcium dyshomeostasis and its upstream Wnt signaling regulators in this process remains incompletely understood. This study investigated whether the dietary antioxidant β-carotene (BC) alleviates PM 2.5 -induced pulmonary fibrosis by modulating the Wnt5a/Ca 2+ pathway and, if so, to identify the receptor mediating this effect. We employed a C57BL/6 murine model of intratracheal PM 2.5 instillation, alongside BEAS-2B human bronchial epithelial cells subjected to Fzd5 overexpression. In vivo, PM 2.5 exposure induced significant fibrosis, oxidative stress, and calcium homeostasis disruption, characterized by increased mitochondria-associated ER membranes (MAMs), aberrant expression of calcium-handling proteins (IP 3 R, STIM1, ORAI1, SERCA2), and activation of the Wnt5a/Fzd5/Ca 2+ axis. BC treatment effectively reversed these pathological changes. In vitro, Fzd5 overexpression not only exacerbated PM 2.5 -evoked activation of the Wnt5a/Ca 2+ pathway, calcium overload, oxidative stress, and EMT, but also, crucially, abrogated the protective effects of BC against these fibrotic changes. These results identify Fzd5 as a critical mediator through which BC acts. Our findings demonstrate that BC ameliorates PM 2.5 -induced pulmonary fibrosis by suppressing the Fzd5-mediated Wnt5a/Ca 2+ pathway, thereby restoring calcium homeostasis. This study reveals a novel mechanistic axis in PM 2.5 pathogenesis and suggests that BC may hold promise as a dietary supplement for mitigating environment-related pulmonary fibrosis.

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Publication Details

Journal
Ecotoxicology and Environmental Safety
Published
2026-09-18
DOI
https://doi.org/10.1016/j.ecoenv.2026.120816
Primary Topic
Interstitial Lung Diseases and Idiopathic Pulmonary Fibrosis
Type
article
Field-Weighted Citation Impact
0.00

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article

β-carotene alleviates PM2.5-induced pulmonary fibrosis via suppression of the Frizzled5-mediated Wnt5a/Ca2+pathway

Wenbo Wu, Wanwei Li, Mengxiao Luan, Lanhao Liu et al.
Ecotoxicology and Environmental Safety
Interstitial Lung Diseases and Idiopathic Pulmonary Fibrosis
article

β-carotene alleviates PM2.5-induced pulmonary fibrosis via suppression of the Frizzled5-mediated Wnt5a/Ca2+pathway

Wenbo Wu, Wanwei Li, Mengxiao Luan, Lanhao Liu, Jian Zhou, Yunyun Ma, Yingjie Zou, Meina Wu, Fengjiao Tan, Xiaolin Han, Luxi Tu, Chunyue Wu, Yumei Liu, Xiaohong Li, Qin Wang
article en

Abstract

Exposure to fine particulate matter (PM 2.5 ) is a major environmental risk factor for pulmonary fibrosis, yet the involvement of calcium dyshomeostasis and its upstream Wnt signaling regulators in this process remains incompletely understood. This study investigated whether the dietary antioxidant β-carotene (BC) alleviates PM 2.5 -induced pulmonary fibrosis by modulating the Wnt5a/Ca 2+ pathway and, if so, to identify the receptor mediating this effect. We employed a C57BL/6 murine model of intratracheal PM 2.5 instillation, alongside BEAS-2B human bronchial epithelial cells subjected to Fzd5 overexpression. In vivo, PM 2.5 exposure induced significant fibrosis, oxidative stress, and calcium homeostasis disruption, characterized by increased mitochondria-associated ER membranes (MAMs), aberrant expression of calcium-handling proteins (IP 3 R, STIM1, ORAI1, SERCA2), and activation of the Wnt5a/Fzd5/Ca 2+ axis. BC treatment effectively reversed these pathological changes. In vitro, Fzd5 overexpression not only exacerbated PM 2.5 -evoked activation of the Wnt5a/Ca 2+ pathway, calcium overload, oxidative stress, and EMT, but also, crucially, abrogated the protective effects of BC against these fibrotic changes. These results identify Fzd5 as a critical mediator through which BC acts. Our findings demonstrate that BC ameliorates PM 2.5 -induced pulmonary fibrosis by suppressing the Fzd5-mediated Wnt5a/Ca 2+ pathway, thereby restoring calcium homeostasis. This study reveals a novel mechanistic axis in PM 2.5 pathogenesis and suggests that BC may hold promise as a dietary supplement for mitigating environment-related pulmonary fibrosis.

Ecotoxicology and Environmental SafetyVol. 324
Weifang Medical University (CN), Ocean Institute (US), Weifang University (CN)
Natural Science Foundation of Shandong Province
Life in Land
Openalex Percentile: Top 11%
Interstitial Lung Diseases and Idiopathic Pulmonary Fibrosis
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