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Piezo1-mediated mechanotransduction regulates the translational activity, function and lung pathogenicity of group 2 innate lymphoid cells

Authors
 Lim, MinYeong  ;  Park, Seonjun  ;  Joo, Yoon Ha  ;  Kim, Sung Eun  ;  Ham, Min Hee  ;  Kim, TaeSoo  ;  Kwak, Kihyuck  ;  Kim, Sung Joon  ;  Lee, Jung Chan  ;  Park, Sung Ho  ;  Kim, Hye Young 
Citation
 SIGNAL TRANSDUCTION AND TARGETED THERAPY, Vol.10(1), 2025-08 
Article Number
 269 
Journal Title
SIGNAL TRANSDUCTION AND TARGETED THERAPY
ISSN
 2095-9907 
Issue Date
2025-08
MeSH
Alternaria / immunology ; Alternaria / pathogenicity ; Animals ; Bleomycin / toxicity ; Humans ; Immunity, Innate* / genetics ; Interleukin-13 / genetics ; Interleukin-13 / immunology ; Interleukin-33 / genetics ; Interleukin-33 / immunology ; Ion Channels* / genetics ; Ion Channels* / immunology ; Lung* / immunology ; Lung* / microbiology ; Lung* / pathology ; Lymphocytes* / immunology ; Lymphocytes* / pathology ; Mechanotransduction, Cellular* / genetics ; Mechanotransduction, Cellular* / immunology ; Mice ; Protein Biosynthesis / genetics ; TOR Serine-Threonine Kinases / genetics ; TOR Serine-Threonine Kinases / immunology
Abstract
Group 2 innate lymphoid cells (ILC2s) are central effectors of type 2 immune responses in the lung; however, how mechanical cues regulate their function remains unclear. Here, we identified the mechanosensitive ion channel Piezo1 as a key regulator of ILC2 effector function through translational control. Piezo1 is highly expressed in murine and human ILC2s, and its activation by mechanical stress or the Piezo1 agonist, Yoda1 induces calcium influx, triggering mTOR signaling and selectively enhancing IL-13 protein production. Conditional deletion of Piezo1 in ILC2s reduced mTOR activation and puromycin incorporation, leading to impaired protein synthesis and attenuated lung inflammation and fibrosis in the IL-33, Alternaria alternata, and bleomycin models. scRNA-seq and scATAC-seq confirmed that Piezo1-deficient ILC2s retained Il13 transcription and chromatin accessibility but presented translational suppression, as evidenced by protein-mRNA interactions. Pharmacologic mTOR inhibition phenocopied Piezo1 loss, supporting the functional relevance of the Piezo1-mTOR axis. These findings demonstrate that Piezo1 functions as a mechanosensor that integrates biomechanical cues to regulate cytokine output via mTOR-mediated translation. Targeting Piezo1 signaling or its downstream effectors may provide therapeutic benefits in type 2 inflammation-associated lung diseases.
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DOI
10.1038/s41392-025-02350-4
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Microbiology (미생물학교실) > 1. Journal Papers
Yonsei Authors
Kwak, Kihyuck(곽기혁)
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/208005
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