Development of a mouse model expressing a bifunctional glutathione-synthesizing enzyme to study glutathione limitation in vivo Journal Article


Authors: Timson, R. C.; Khan, A.; Uygur, B.; Saad, M.; Yeh, H. W.; DelGaudio, N. L.; Weber, R.; Alwaseem, H.; Gao, J.; Yang, C.; Birsoy, K.
Article Title: Development of a mouse model expressing a bifunctional glutathione-synthesizing enzyme to study glutathione limitation in vivo
Abstract: Glutathione (GSH) is a highly abundant tripeptide thiol that performs diverse protective and biosynthetic functions in cells. While changes in GSH availability are associated with inborn errors of metabolism, cancer, and neurodegenerative disorders, studying the limiting role of GSH in physiology and disease has been challenging due to its tight regulation. To address this, we generated cell and mouse models that express a bifunctional glutathione-synthesizing enzyme from Streptococcus thermophilus (GshF), which possesses both glutamate-cysteine ligase and glutathione synthase activities. GshF expression allows efficient production of GSH in the cytosol and mitochondria and prevents cell death in response to GSH depletion, but not ferroptosis induction, indicating that GSH is not a limiting factor under lipid peroxidation. CRISPR screens using engineered enzymes further revealed genes required for cell proliferation under cellular and mitochondrial GSH depletion. Among these, we identified the glutamate-cysteine ligase modifier subunit, GCLM, as a requirement for cellular sensitivity to buthionine sulfoximine, a glutathione synthesis inhibitor. Finally, GshF expression in mice is embryonically lethal but sustains postnatal viability when restricted to adulthood. Overall, our work identifies a conditional mouse model to investigate the limiting role of GSH in physiology and disease. © 2024 The Authors
Keywords: cell proliferation; metabolism; cell death; oxygen; animal model; biosynthesis; peptides; iron; reactive oxygen species; antioxidant; amino acids; superoxide dismutase; mammals; mitochondria; cell metabolism; glutathione; transgenic mice; neurodegenerative diseases; sulfur; ferroptosis; iron metabolism; reactive oxygen species (ros); gluthathione; iron-sulfur clusters; iron-sulphur clusters; mice models
Journal Title: Journal of Biological Chemistry
Volume: 300
Issue: 2
ISSN: 0021-9258
Publisher: American Society for Biochemistry and Molecular Biology  
Date Published: 2024-02-01
Start Page: 105645
Language: English
DOI: 10.1016/j.jbc.2024.105645
PUBMED: 38218225
PROVIDER: scopus
PMCID: PMC10869265
DOI/URL:
Notes: Source: Scopus
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  1. Ryan C Weber
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