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Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms

Protein posttranslational modifications (PTMs) are often involved in the mediation or inhibition of protein–protein interactions (PPIs) within many cellular signaling pathways. Uncovering the molecular mechanism of PTM-induced multivalent PPIs is vital to understand the regulatory factors to promote...

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Autores principales: Hu, Jun, Sun, Xue-Meng, Su, Jing-Yun, Zhao, Yu-Fen, Chen, Yong-Xiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179448/
https://www.ncbi.nlm.nih.gov/pubmed/34163708
http://dx.doi.org/10.1039/d0sc05838f
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author Hu, Jun
Sun, Xue-Meng
Su, Jing-Yun
Zhao, Yu-Fen
Chen, Yong-Xiang
author_facet Hu, Jun
Sun, Xue-Meng
Su, Jing-Yun
Zhao, Yu-Fen
Chen, Yong-Xiang
author_sort Hu, Jun
collection PubMed
description Protein posttranslational modifications (PTMs) are often involved in the mediation or inhibition of protein–protein interactions (PPIs) within many cellular signaling pathways. Uncovering the molecular mechanism of PTM-induced multivalent PPIs is vital to understand the regulatory factors to promote inhibitor development. Herein, Rnd3 peptides with different PTM patterns as the binding epitopes and 14-3-3ζ protein were used as models to elucidate the influences of phosphorylation and farnesylation on binding thermodynamics and kinetics and their molecular mechanism. The quantitative thermodynamic results indicate that phosphorylated residues S210 and S218 (pS210 and pS218) and farnesylated C241 (fC241) enhance Rnd3–14-3-3ζ interactions in the presence of the essential pS240. However, distinct PTM patterns greatly affect the binding process. Initial association of pS240 with the phosphate-binding pocket of one monomer of the 14-3-3ζ dimer triggers the binding of pS210 or pS218 to another monomer, whereas the binding of fC241 to the hydrophobic groove on one 14-3-3ζ monomer induces the subsequent binding of pS240 to the adjacent pocket on the same monomer. Based on the experimental and molecular simulation results, we estimate that pS210/pS218 and pS240 mediate the multivalent interaction through an additive mechanism, whereas fC241 and pS240 follow an induced fit mechanism, in which the cooperativity of these two adjacent PTMs is reflected by the index ε described in our established thermodynamic binding model. Besides, these proposed binding models have been further used for describing the interaction between 14-3-3ζ and other substrates containing adjacent phosphorylation and lipidation groups, indicating their potential in general applications. These mechanistic insights are significant for understanding the regulatory factors and the design of PPI modulators.
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spelling pubmed-81794482021-06-22 Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms Hu, Jun Sun, Xue-Meng Su, Jing-Yun Zhao, Yu-Fen Chen, Yong-Xiang Chem Sci Chemistry Protein posttranslational modifications (PTMs) are often involved in the mediation or inhibition of protein–protein interactions (PPIs) within many cellular signaling pathways. Uncovering the molecular mechanism of PTM-induced multivalent PPIs is vital to understand the regulatory factors to promote inhibitor development. Herein, Rnd3 peptides with different PTM patterns as the binding epitopes and 14-3-3ζ protein were used as models to elucidate the influences of phosphorylation and farnesylation on binding thermodynamics and kinetics and their molecular mechanism. The quantitative thermodynamic results indicate that phosphorylated residues S210 and S218 (pS210 and pS218) and farnesylated C241 (fC241) enhance Rnd3–14-3-3ζ interactions in the presence of the essential pS240. However, distinct PTM patterns greatly affect the binding process. Initial association of pS240 with the phosphate-binding pocket of one monomer of the 14-3-3ζ dimer triggers the binding of pS210 or pS218 to another monomer, whereas the binding of fC241 to the hydrophobic groove on one 14-3-3ζ monomer induces the subsequent binding of pS240 to the adjacent pocket on the same monomer. Based on the experimental and molecular simulation results, we estimate that pS210/pS218 and pS240 mediate the multivalent interaction through an additive mechanism, whereas fC241 and pS240 follow an induced fit mechanism, in which the cooperativity of these two adjacent PTMs is reflected by the index ε described in our established thermodynamic binding model. Besides, these proposed binding models have been further used for describing the interaction between 14-3-3ζ and other substrates containing adjacent phosphorylation and lipidation groups, indicating their potential in general applications. These mechanistic insights are significant for understanding the regulatory factors and the design of PPI modulators. The Royal Society of Chemistry 2021-01-26 /pmc/articles/PMC8179448/ /pubmed/34163708 http://dx.doi.org/10.1039/d0sc05838f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hu, Jun
Sun, Xue-Meng
Su, Jing-Yun
Zhao, Yu-Fen
Chen, Yong-Xiang
Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms
title Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms
title_full Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms
title_fullStr Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms
title_full_unstemmed Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms
title_short Different phosphorylation and farnesylation patterns tune Rnd3–14-3-3 interaction in distinct mechanisms
title_sort different phosphorylation and farnesylation patterns tune rnd3–14-3-3 interaction in distinct mechanisms
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179448/
https://www.ncbi.nlm.nih.gov/pubmed/34163708
http://dx.doi.org/10.1039/d0sc05838f
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