DFCP1-containing ER microdomains mediate lysosomal membrane repair

Abstract Lysosomal membrane integrity is essential for preserving cellular homeostasis in response to different stressors. Upon lysosomal membrane permeabilization, cells activate several mechanisms for lysosomal membrane repair, including ESCRT proteins, phosphatidylinositol 4-phosphate (PI4P)-dependent lipid transfer from the endoplasmic reticulum (ER) and conjugation of ATG8 family proteins to single membranes (CASM). The interplay between these pathways and the regulation of the lipid transfer machinery remain incompletely understood. Here we show that phosphatidylinositol 3-phosphate (PI3P)-containing ER domains play a major role in lysosomal membrane repair. PI3P is formed on lysosome-proximal ER domains by the phosphatidylinositol 3-kinase PIK3C3/VPS34 in response to membrane damage, and inhibition or depletion of PIK3C3 inhibits lysosome repair. Mechanistically, the ATPase DFCP1/ZFYVE1 accumulates on lysosome-proximal ER domains by its PI3P binding, triggered by Ca 2+ efflux from lysosomes and requiring the ULK1 kinase complex and ER proteins of the VAP family. Downstream of CASM, PI4P, ESCRTs and PI3P, DFCP1 promotes focal accumulation of the lipid channel VPS13C on ER domains proximal to damaged lysosomes to promote their repair. The function and dynamics of DFCP1 depend on its ability to bind and hydrolyse ATP, and absence of DFCP1 compromises cellular resistance to vacuolar damage induced by Listeria monocytogenes . We conclude that DFCP1 mediates concentration of the ER-associated lipid transport machinery at damaged lysosomes to promote their sealing in response to Ca 2+ flux and PIK3C3 activation.

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Journal
Nature Cell Biology
Published
2026-09-15
DOI
https://doi.org/10.1038/s41556-026-02062-z
Primary Topic
Cellular transport and secretion
Type
article
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article

DFCP1-containing ER microdomains mediate lysosomal membrane repair

Katy R. McCarron, Athanasios Kournoutis, Harald Stenmark, Santosh Phuyal et al.
Nature Cell Biology
Cellular transport and secretion
article

DFCP1-containing ER microdomains mediate lysosomal membrane repair

Katy R. McCarron, Athanasios Kournoutis, Harald Stenmark, Santosh Phuyal, Camilla Raiborg, Eric Herrmann, Andreas Brech, Claudio Bussi, James H. Hurley, Sascha Pust, Maja Radulovic, Maximiliano G. Gutiérrez, Thomas J. Böddeker, Luis Bonet‐Ponce, Kevin Rose, Sebastian W. Schultz, Qijian Liang, M. Isabel Giner, Di Chen
article en

Abstract

Abstract Lysosomal membrane integrity is essential for preserving cellular homeostasis in response to different stressors. Upon lysosomal membrane permeabilization, cells activate several mechanisms for lysosomal membrane repair, including ESCRT proteins, phosphatidylinositol 4-phosphate (PI4P)-dependent lipid transfer from the endoplasmic reticulum (ER) and conjugation of ATG8 family proteins to single membranes (CASM). The interplay between these pathways and the regulation of the lipid transfer machinery remain incompletely understood. Here we show that phosphatidylinositol 3-phosphate (PI3P)-containing ER domains play a major role in lysosomal membrane repair. PI3P is formed on lysosome-proximal ER domains by the phosphatidylinositol 3-kinase PIK3C3/VPS34 in response to membrane damage, and inhibition or depletion of PIK3C3 inhibits lysosome repair. Mechanistically, the ATPase DFCP1/ZFYVE1 accumulates on lysosome-proximal ER domains by its PI3P binding, triggered by Ca 2+ efflux from lysosomes and requiring the ULK1 kinase complex and ER proteins of the VAP family. Downstream of CASM, PI4P, ESCRTs and PI3P, DFCP1 promotes focal accumulation of the lipid channel VPS13C on ER domains proximal to damaged lysosomes to promote their repair. The function and dynamics of DFCP1 depend on its ability to bind and hydrolyse ATP, and absence of DFCP1 compromises cellular resistance to vacuolar damage induced by Listeria monocytogenes . We conclude that DFCP1 mediates concentration of the ER-associated lipid transport machinery at damaged lysosomes to promote their sealing in response to Ca 2+ flux and PIK3C3 activation.

Nature Cell Biology
Oslo University Hospital (NO), Nanyang Technological University (SG), University of Oslo (NO), The Francis Crick Institute (GB), The Ohio State University Wexner Medical Center (US), Institute of Molecular Biology (DE), The Ohio State University (US), Charité - Universitätsmedizin Berlin (DE), University of California, Berkeley (US)
Openalex Percentile: Top 14%
Cellular transport and secretion
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