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Treatment of silicosis with quercetin depolarizing macrophages via inhibition of mitochondrial damage-associated pyroptosis

Authors :
Chuan-Yong Xiao
Yijun Tang
Tao Ren
Cunqing Kong
Hui You
Xiao-Feng Bai
Qi Huang
Yi Chen
Liu-Gen Li
Mei-Yi Liu
Fan Leng
Ning Han
Tong-Fei Li
Mei-Fang Wang
Source :
Ecotoxicology and Environmental Safety, Vol 286, Iss , Pp 117161- (2024)
Publication Year :
2024
Publisher :
Elsevier, 2024.

Abstract

Macrophage polarization facilitates the inflammatory response and intensified fibrosis in the silicosis microenvironment by a mechanism related to macrophage pyroptosis, although the upstream target remains poorly defined. Currently, there are few reports on the development of drugs that alleviate macrophage polarization by dampening pyroptosis. The present study aims to explore the mechanics of silica mediating macrophage polarization and to investigate whether quercetin (Que) can depolarize macrophages with this mechanism. Silica processing led to prominent M1 polarization of macrophages. Additionally, significant macrophage polarization could be detected in the lung tissue of mice with airway-perfused silica. Further investigation turned out that pronounced mitochondria damage, mtDNA cytoplasmic ectomy, and pyroptosis occurred in response to silica. Nevertheless, Que treatment could effectively attenuate silica-induced mitochondria damage and pyroptosis as demonstrated in vitro and in vivo. Further exploration presented Que could bind to TOM70 and restore silica-induced mitochondrial damage. More importantly, the M1 polarization of macrophage was depressed with the co-treatment of Que and silica, wherein the inflammatory response and pulmonary fibrosis were also mitigated without obvious damage to vital organs. In conclusion, these findings proved that silica leads to mitochondrial damage, thereby evoking pyroptosis and promoting macrophage M1 polarization. Que could bind to TOM70 and restore its function, suppressing mitochondrial damage and pyroptosis, and depolarizing macrophages to reduce fibrosis, which provides a promising strategy for silicosis treatment in the future.

Details

Language :
English
ISSN :
01476513
Volume :
286
Issue :
117161-
Database :
Directory of Open Access Journals
Journal :
Ecotoxicology and Environmental Safety
Publication Type :
Academic Journal
Accession number :
edsdoj.22fdeb12b3ed4582b3d0ecaec3c74bec
Document Type :
article
Full Text :
https://doi.org/10.1016/j.ecoenv.2024.117161