Repository logo
 

Gene editing of alveolar organoids reveals AT2 dysfunction due to endosomal SFTPC accumulation.

Accepted version
Peer-reviewed

Loading...
Thumbnail Image

Change log

Authors

Abstract

Alveolar type 2 (AT2) cell dysfunction is key to the development of many lung diseases including pulmonary fibrosis (PF). The underlying mechanisms often remain poorly understood due to a paucity of manipulable primary human models and lack of defined triggers. Monogenic forms of familial pulmonary fibrosis combined with recent advances in in vitro culture techniques offer a unique opportunity to interrogate early pathogenic events in PF. To model toxic gain-of-function disease caused by the SFTPC variant I73T, we employed a base editing strategy in human lung-derived AT2 (fdAT2) organoids to edit the endogenous SFTPC locus and generate a heterozygous SFTPC-I73T-expressing disease model which we interrogated when grown in standard 3D culture, monolayer culture, and at air-liquid interface. SFTPC-I73T expressing organoids failed to form lumens and displayed disrupted epithelial polarity. This was due to SFTPC accumulation in enlarged early endosomes resulting in impaired apico-basal trafficking of polarity and adhesion proteins. Air exposure exacerbated these defects, causing epithelial barrier breakdown and impaired wound healing. Together, we demonstrate the ability to edit endogenous loci in differentiated alveolar organoids to generate disease models that provide mechanistic insights into disease. We establish endosomal dysfunction and polarity loss as drivers of SFTPC-I73T-mediated epithelial injury and highlight mechanisms that may underlie AT2 dysfunction in disease more broadly.

Description

Keywords

Journal Title

Am J Respir Cell Mol Biol

Conference Name

Journal ISSN

1044-1549
1535-4989

Volume Title

Publisher

Oxford University Press (OUP)

Rights and licensing

Except where otherwised noted, this item's license is described as Attribution 4.0 International
Sponsorship
Medical Research Council (MR/S005552/1)
Action for Pulmonary Fibrosis (APF) (MBF2023_001)
Action for Pulmonary Fibrosis Korea University National Research Foundation of Korea Royal Society NIH EPSRC Cambridge BRC Asthma + Lung UK Victor Dahdaleh Foundation