Protein interaction network of the mammalian Hippo pathway reveals mechanisms of kinase-phosphatase interactions - PubMed (original) (raw)
. 2013 Nov 19;6(302):rs15.
doi: 10.1126/scisignal.2004712.
James D R Knight, Michelle J Kean, Guoci Teo, Alexander Weiss, Wade H Dunham, Zhen-Yuan Lin, Richard D Bagshaw, Frank Sicheri, Tony Pawson, Jeffrey L Wrana, Hyungwon Choi, Anne-Claude Gingras
Affiliations
- PMID: 24255178
- DOI: 10.1126/scisignal.2004712
Protein interaction network of the mammalian Hippo pathway reveals mechanisms of kinase-phosphatase interactions
Amber L Couzens et al. Sci Signal. 2013.
Abstract
The Hippo pathway regulates organ size and tissue homeostasis in response to multiple stimuli, including cell density and mechanotransduction. Pharmacological inhibition of phosphatases can also stimulate Hippo signaling in cell culture. We defined the Hippo protein-protein interaction network with and without inhibition of serine and threonine phosphatases by okadaic acid. We identified 749 protein interactions, including 599 previously unrecognized interactions, and demonstrated that several interactions with serine and threonine phosphatases were phosphorylation-dependent. Mutation of the T-loop of MST2 (mammalian STE20-like protein kinase 2), which prevented autophosphorylation, disrupted its association with STRIPAK (striatin-interacting phosphatase and kinase complex). Deletion of the amino-terminal forkhead-associated domain of SLMAP (sarcolemmal membrane-associated protein), a component of the STRIPAK complex, prevented its association with MST1 and MST2. Phosphatase inhibition produced temporally distinct changes in proteins that interacted with MOB1A and MOB1B (Mps one binder kinase activator-like 1A and 1B) and promoted interactions with upstream Hippo pathway proteins, such as MST1 and MST2, and with the trimeric protein phosphatase 6 complex (PP6). Mutation of three basic amino acids that are part of a phospho-serine- and phospho-threonine-binding domain in human MOB1B prevented its interaction with MST1 and PP6 in cells treated with okadaic acid. Collectively, our results indicated that changes in phosphorylation orchestrate interactions between kinases and phosphatases in Hippo signaling, providing a putative mechanism for pathway regulation.
Similar articles
- Regulation of Protein Interactions by _M_ps _O_ne _B_inder (MOB1) Phosphorylation.
Xiong S, Couzens AL, Kean MJ, Mao DY, Guettler S, Kurinov I, Gingras AC, Sicheri F. Xiong S, et al. Mol Cell Proteomics. 2017 Jun;16(6):1111-1125. doi: 10.1074/mcp.M117.068130. Epub 2017 Apr 3. Mol Cell Proteomics. 2017. PMID: 28373297 Free PMC article. - Angiomotins stimulate LATS kinase autophosphorylation and act as scaffolds that promote Hippo signaling.
Mana-Capelli S, McCollum D. Mana-Capelli S, et al. J Biol Chem. 2018 Nov 23;293(47):18230-18241. doi: 10.1074/jbc.RA118.004187. Epub 2018 Sep 28. J Biol Chem. 2018. PMID: 30266805 Free PMC article. - MAP4K2 connects the Hippo pathway to autophagy in response to energy stress.
Seo G, Mckinley J, Wang W. Seo G, et al. Autophagy. 2024 Mar;20(3):704-706. doi: 10.1080/15548627.2023.2280876. Epub 2023 Nov 15. Autophagy. 2024. PMID: 37937799 Free PMC article. - Okadaic Acid: a tool to study the hippo pathway.
Hata Y, Timalsina S, Maimaiti S. Hata Y, et al. Mar Drugs. 2013 Mar 14;11(3):896-902. doi: 10.3390/md11030896. Mar Drugs. 2013. PMID: 23493077 Free PMC article. Review. - SOcK, MiSTs, MASK and STicKs: the GCKIII (germinal centre kinase III) kinases and their heterologous protein-protein interactions.
Sugden PH, McGuffin LJ, Clerk A. Sugden PH, et al. Biochem J. 2013 Aug 15;454(1):13-30. doi: 10.1042/BJ20130219. Biochem J. 2013. PMID: 23889253 Review.
Cited by
- MAP4K4 expression in cardiomyocytes: multiple isoforms, multiple phosphorylations and interactions with striatins.
Fuller SJ, Edmunds NS, McGuffin LJ, Hardyman MA, Cull JJ, Alharbi HO, Meijles DN, Sugden PH, Clerk A. Fuller SJ, et al. Biochem J. 2021 Jun 11;478(11):2121-2143. doi: 10.1042/BCJ20210003. Biochem J. 2021. PMID: 34032269 Free PMC article. - Establishment of a relationship between blastomere geometry and YAP localisation during compaction.
Royer C, Leonavicius K, Kip A, Fortin D, Nandi K, Vincent A, Jones C, Child T, Coward K, Graham C, Srinivas S. Royer C, et al. Development. 2020 Oct 9;147(19):dev189449. doi: 10.1242/dev.189449. Development. 2020. PMID: 32928909 Free PMC article. - Probing mammalian centrosome structure using BioID proximity-dependent biotinylation.
Firat-Karalar EN, Stearns T. Firat-Karalar EN, et al. Methods Cell Biol. 2015;129:153-170. doi: 10.1016/bs.mcb.2015.03.016. Epub 2015 May 27. Methods Cell Biol. 2015. PMID: 26175438 Free PMC article. - The human mitochondrial translation factor TACO1 alleviates mitoribosome stalling at polyproline stretches.
Brischigliaro M, Krüger A, Moran JC, Antonicka H, Ahn A, Shoubridge EA, Rorbach J, Barrientos A. Brischigliaro M, et al. Nucleic Acids Res. 2024 Sep 9;52(16):9710-9726. doi: 10.1093/nar/gkae645. Nucleic Acids Res. 2024. PMID: 39036954 Free PMC article. - Genome-wide expression analysis in a Fabry disease human podocyte cell line.
Snanoudj S, Derambure C, Zhang C, Hai Yen NT, Lesueur C, Coutant S, Abily-Donval L, Marret S, Yang H, Mardinoglu A, Bekri S, Tebani A. Snanoudj S, et al. Heliyon. 2024 Jul 9;10(14):e34357. doi: 10.1016/j.heliyon.2024.e34357. eCollection 2024 Jul 30. Heliyon. 2024. PMID: 39100494 Free PMC article.
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources
Other Literature Sources
Molecular Biology Databases
Research Materials
Miscellaneous