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Disruption of proteostasis causes IRE1 mediated reprogramming of alveolar epithelial cells.


ABSTRACT: Disruption of alveolar type 2 cell (AEC2) protein quality control has been implicated in chronic lung diseases, including pulmonary fibrosis (PF). We previously reported the in vivo modeling of a clinical surfactant protein C (SP-C) mutation that led to AEC2 endoplasmic reticulum (ER) stress and spontaneous lung fibrosis, providing proof of concept for disruption to proteostasis as a proximal driver of PF. Using two clinical SP-C mutation models, we have now discovered that AEC2s experiencing significant ER stress lose quintessential AEC2 features and develop a reprogrammed cell state that heretofore has been seen only as a response to lung injury. Using single-cell RNA sequencing in vivo and organoid-based modeling, we show that this state arises de novo from intrinsic AEC2 dysfunction. The cell-autonomous AEC2 reprogramming can be attenuated through inhibition of inositol-requiring enzyme 1 (IRE1α) signaling as the use of an IRE1α inhibitor reduced the development of the reprogrammed cell state and also diminished AEC2-driven recruitment of granulocytes, alveolitis, and lung injury. These findings identify AEC2 proteostasis, and specifically IRE1α signaling through its major product XBP-1, as a driver of a key AEC2 phenotypic change that has been identified in lung fibrosis.

SUBMITTER: Katzen J 

PROVIDER: S-EPMC9618079 | biostudies-literature | 2022 Oct

REPOSITORIES: biostudies-literature

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Disruption of proteostasis causes IRE1 mediated reprogramming of alveolar epithelial cells.

Katzen Jeremy J   Rodriguez Luis L   Tomer Yaniv Y   Babu Apoorva A   Zhao Ming M   Murthy Aditi A   Carson Paige P   Barrett Matthew M   Basil Maria C MC   Carl Justine J   Leach John P JP   Morley Michael M   McGraw Matthew D MD   Mulugeta Surafel S   Pelura Timothy T   Rosen Glenn G   Morrisey Edward E EE   Beers Michael F MF  

Proceedings of the National Academy of Sciences of the United States of America 20221017 43


Disruption of alveolar type 2 cell (AEC2) protein quality control has been implicated in chronic lung diseases, including pulmonary fibrosis (PF). We previously reported the in vivo modeling of a clinical surfactant protein C (SP-C) mutation that led to AEC2 endoplasmic reticulum (ER) stress and spontaneous lung fibrosis, providing proof of concept for disruption to proteostasis as a proximal driver of PF. Using two clinical SP-C mutation models, we have now discovered that AEC2s experiencing si  ...[more]

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