Supramolecular assembly of GSK3α as a cellular response to amino acid starvation Journal Article


Authors: Hinze, L.; Schreek, S.; Zeug, A.; Ibrahim, N. K.; Fehlhaber, B.; Loxha, L.; Cinar, B.; Ponimaskin, E.; Degar, J.; McGuckin, C.; Chiosis, G.; Eckert, C.; Cario, G.; Bornhauser, B.; Bourquin, J. P.; Stanulla, M.; Gutierrez, A.
Article Title: Supramolecular assembly of GSK3α as a cellular response to amino acid starvation
Abstract: The tolerance of amino acid starvation is fundamental to robust cellular fitness. Asparagine depletion is lethal to some cancer cells, a vulnerability that can be exploited clinically. We report that resistance to asparagine starvation is uniquely dependent on an N-terminal low-complexity domain of GSK3α, which its paralog GSK3β lacks. In response to depletion of specific amino acids, including asparagine, leucine, and valine, this domain mediates supramolecular assembly of GSK3α with ubiquitin-proteasome system components in spatially sequestered cytoplasmic bodies. This effect is independent of mTORC1 or GCN2. In normal cells, GSK3α promotes survival during essential amino acid starvation. In human leukemia, GSK3α body formation predicts asparaginase resistance, and sensitivity to asparaginase combined with a GSK3α inhibitor. We propose that GSK3α body formation provides a cellular mechanism to maximize the catalytic efficiency of proteasomal protein degradation in response to amino acid starvation, an adaptive response co-opted by cancer cells for asparaginase resistance. © 2022 Elsevier Inc.
Keywords: leukemia; genetics; metabolism; protein degradation; asparaginase; amino acid; amino acids; asparagine; wnt; ubiquitin-proteasome system; humans; human; protein serine-threonine kinases; gsk3
Journal Title: Molecular Cell
Volume: 82
Issue: 15
ISSN: 1097-2765
Publisher: Cell Press  
Date Published: 2022-08-04
Start Page: 2858
End Page: 2870.e8
Language: English
DOI: 10.1016/j.molcel.2022.05.025
PUBMED: 35732190
PROVIDER: scopus
PMCID: PMC9357031
DOI/URL:
Notes: Article -- Export Date: 1 September 2022 -- Source: Scopus
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  1. Gabriela Chiosis
    279 Chiosis