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CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions

Prenylation is an irreversible post-translational modification that supports membrane interactions of proteins involved in various cellular processes, including migration, proliferation, and survival. Dysregulation of prenylation contributes to multiple disorders, including cancers and vascular and...

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Autores principales: Tennakoon, Mithila, Thotamune, Waruna, Payton, John L., Karunarathne, Ajith
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10590752/
https://www.ncbi.nlm.nih.gov/pubmed/37739036
http://dx.doi.org/10.1016/j.jbc.2023.105269
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author Tennakoon, Mithila
Thotamune, Waruna
Payton, John L.
Karunarathne, Ajith
author_facet Tennakoon, Mithila
Thotamune, Waruna
Payton, John L.
Karunarathne, Ajith
author_sort Tennakoon, Mithila
collection PubMed
description Prenylation is an irreversible post-translational modification that supports membrane interactions of proteins involved in various cellular processes, including migration, proliferation, and survival. Dysregulation of prenylation contributes to multiple disorders, including cancers and vascular and neurodegenerative diseases. Prenyltransferases tether isoprenoid lipids to proteins via a thioether linkage during prenylation. Pharmacological inhibition of the lipid synthesis pathway by statins is a therapeutic approach to control hyperlipidemia. Building on our previous finding that statins inhibit membrane association of G protein γ (Gγ) in a subtype-dependent manner, we investigated the molecular reasoning for this differential inhibition. We examined the prenylation of carboxy-terminus (Ct) mutated Gγ in cells exposed to Fluvastatin and prenyl transferase inhibitors and monitored the subcellular localization of fluorescently tagged Gγ subunits and their mutants using live-cell confocal imaging. Reversible optogenetic unmasking-masking of Ct residues was used to probe their contribution to prenylation and membrane interactions of the prenylated proteins. Our findings suggest that specific Ct residues regulate membrane interactions of the Gγ polypeptide, statin sensitivity, and extent of prenylation. Our results also show a few hydrophobic and charged residues at the Ct are crucial determinants of a protein’s prenylation ability, especially under suboptimal conditions. Given the cell and tissue-specific expression of different Gγ subtypes, our findings indicate a plausible mechanism allowing for statins to differentially perturb heterotrimeric G protein signaling in cells depending on their Gγ-subtype composition. Our results may also provide molecular reasoning for repurposing statins as Ras oncogene inhibitors and the failure of using prenyltransferase inhibitors in cancer treatment.
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spelling pubmed-105907522023-10-24 CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions Tennakoon, Mithila Thotamune, Waruna Payton, John L. Karunarathne, Ajith J Biol Chem Research Article Prenylation is an irreversible post-translational modification that supports membrane interactions of proteins involved in various cellular processes, including migration, proliferation, and survival. Dysregulation of prenylation contributes to multiple disorders, including cancers and vascular and neurodegenerative diseases. Prenyltransferases tether isoprenoid lipids to proteins via a thioether linkage during prenylation. Pharmacological inhibition of the lipid synthesis pathway by statins is a therapeutic approach to control hyperlipidemia. Building on our previous finding that statins inhibit membrane association of G protein γ (Gγ) in a subtype-dependent manner, we investigated the molecular reasoning for this differential inhibition. We examined the prenylation of carboxy-terminus (Ct) mutated Gγ in cells exposed to Fluvastatin and prenyl transferase inhibitors and monitored the subcellular localization of fluorescently tagged Gγ subunits and their mutants using live-cell confocal imaging. Reversible optogenetic unmasking-masking of Ct residues was used to probe their contribution to prenylation and membrane interactions of the prenylated proteins. Our findings suggest that specific Ct residues regulate membrane interactions of the Gγ polypeptide, statin sensitivity, and extent of prenylation. Our results also show a few hydrophobic and charged residues at the Ct are crucial determinants of a protein’s prenylation ability, especially under suboptimal conditions. Given the cell and tissue-specific expression of different Gγ subtypes, our findings indicate a plausible mechanism allowing for statins to differentially perturb heterotrimeric G protein signaling in cells depending on their Gγ-subtype composition. Our results may also provide molecular reasoning for repurposing statins as Ras oncogene inhibitors and the failure of using prenyltransferase inhibitors in cancer treatment. American Society for Biochemistry and Molecular Biology 2023-09-20 /pmc/articles/PMC10590752/ /pubmed/37739036 http://dx.doi.org/10.1016/j.jbc.2023.105269 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Tennakoon, Mithila
Thotamune, Waruna
Payton, John L.
Karunarathne, Ajith
CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions
title CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions
title_full CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions
title_fullStr CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions
title_full_unstemmed CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions
title_short CaaX-motif-adjacent residues influence G protein gamma (Gγ) prenylation under suboptimal conditions
title_sort caax-motif-adjacent residues influence g protein gamma (gγ) prenylation under suboptimal conditions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10590752/
https://www.ncbi.nlm.nih.gov/pubmed/37739036
http://dx.doi.org/10.1016/j.jbc.2023.105269
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