4.8 Article

Infection-induced membrane ruffling initiates danger and immune signaling via the mechanosensor PIEZO1

期刊

CELL REPORTS
卷 40, 期 6, 页码 -

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CELL PRESS
DOI: 10.1016/j.celrep.2022.111173

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资金

  1. SNIC through the Uppsala Multidisciplinary Center for Advanced Computational Science (UPPMAX) [SNIC 2017-7-258, uppstore2017093, SNIC 2020/16-261]
  2. Knut and Alice Wallenberg Foundation [KAW 2015.0225]
  3. Carl Kempe Foundation [JCK-1528, SMK-1859, JCK-2031.3, SMK-1860]
  4. UCMR Linnaeus Program Gender Policy Support Grant
  5. MIMS -Vetenskapsra det grant [2016-06598]
  6. Umea University
  7. Carl Trygger Foundation for Scientific Research grant [CTS 18-65]
  8. Umea County Council ALF grant
  9. MIMS Excellence by Choice Postdoctoral Program stipend under the patronage of Emmanuelle Charpentier grant [SMK-1532.2]
  10. Svenska Sallskapet for Medicinsk Forskning (SSMF) Postdoctoral grant [PD20-0022]

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This study demonstrates that the mechanosensitive plasma membrane channel PIEZO1 acts as a sensor for bacterial entry and initiates immune signaling through ATP secretion and gene expression. It suggests that the detection of infection by PIEZO1 is driven by physical signals instead of chemical ligands, independent of detection of microbial molecules.
Microorganisms are generally sensed by receptors recognizing microbial molecules, which evoke changes in cellular activities and gene expression. Bacterial pathogens induce secretion of the danger signal ATP as an early alert response of intestinal epithelial cells, initiating overt inflammation. However, what triggers ATP secretion during infection is unclear. Here we show that the inherently mechanosensitive plasma membrane channel PIEZO1 acts as a sensor for bacterial entry. PIEZO1 is mechanically activated by invasion-induced membrane ruffles upstream of Ca2+ influx and ATP secretion. Mimicking mechanical stimuli of pathogen uptake with sterile beads equally elicits ATP secretion. Chemical or genetic PIEZO1 inactivation inhibits mechanically induced ATP secretion. Moreover, chemical or mechanical PIEZO1 activation evokes gene expression in immune and barrier pathways. Thus, mechanosensation of invasion-induced plasma membrane distortion initiates immune signaling upon infection, independently of detection of microbial molecules. Hence, PIEZO1-dependent detection of infection is driven by physical signals instead of chemical ligands.

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