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Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation

PP2A-serine/threonine protein phosphatases function as heterotrimeric holoenzymes, composed of a common scaffold (A-subunit encoded by PPP2R1A/PPP2R1B), a common catalytic (C-subunit encoded by PPP2CA/PPP2CB), and one of many variable regulatory (B) subunits. The site of phosphoprotein phosphatase (...

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Autores principales: Salter, E. Alan, Wierzbicki, Andrzej, Honkanen, Richard E., Swingle, Mark R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10291244/
https://www.ncbi.nlm.nih.gov/pubmed/37377738
http://dx.doi.org/10.3389/fcell.2023.1141804
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author Salter, E. Alan
Wierzbicki, Andrzej
Honkanen, Richard E.
Swingle, Mark R.
author_facet Salter, E. Alan
Wierzbicki, Andrzej
Honkanen, Richard E.
Swingle, Mark R.
author_sort Salter, E. Alan
collection PubMed
description PP2A-serine/threonine protein phosphatases function as heterotrimeric holoenzymes, composed of a common scaffold (A-subunit encoded by PPP2R1A/PPP2R1B), a common catalytic (C-subunit encoded by PPP2CA/PPP2CB), and one of many variable regulatory (B) subunits. The site of phosphoprotein phosphatase (PPP) hydrolysis features a bimetal system (M(1)/M(2)), an associated bridge hydroxide [W(1)(OH(−))], and a highly-conserved core sequence. In the presumptive common mechanism, the phosphoprotein’s seryl/threonyl phosphate coordinates the M(1)/M(2) system, W(1)(OH(−)) attacks the central P atom, rupturing the antipodal bond, and simultaneously, a histidine/aspartate tandem protonates the exiting seryl/threonyl alkoxide. Based on studies of PPP5C, a conserved arginine proximal to M(1) is also expected to bind the substrate’s phosphate group in a bidentate fashion. However, in PP2A isozymes, the role of the arginine (Arg(89)) in hydrolysis is not clear because two independent structures for PP2A(PPP2R5C) and PP2A(PPP2R5D) show that Arg(89) engages in a weak salt bridge at the B:C interface. These observations raise the question of whether hydrolysis proceeds with or without direct involvement of Arg(89). The interaction of Arg(89) with B:Glu(198) in PP2A(PPP2R5D) is significant because the pathogenic E198K variant of B56δ is associated with irregular protein phosphorylation levels and consequent developmental disorders (Jordan’s Syndrome; OMIM #616355). In this study, we perform quantum-based hybrid [ONIOM(UB3LYP/6-31G(d):UPM7)] calculations on 39-residue models of the PP2A(PPP2R5D)/pSer (phosphoserine) system to estimate activation barriers for hydrolysis in the presence of bidentate Arg(89)-substrate binding and when Arg(89) is otherwise engaged in the salt-bridge interaction. Our solvation-corrected results yield ΔH(‡) ≈ ΔE(‡) = +15.5 kcal/mol for the former case, versus +18.8 kcal/mol for the latter, indicating that bidentate Arg(89)-substrate binding is critical for optimal catalytic function of the enzyme. We speculate that PP2A(PPP2R5D) activity is suppressed by B:Glu(198) sequestration of C:Arg(89) under native conditions, whereas the PP2A(PPP2R5D)-holoenzyme containing the E198K variant has a positively-charged lysine in this position that alters normal function.
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spelling pubmed-102912442023-06-27 Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation Salter, E. Alan Wierzbicki, Andrzej Honkanen, Richard E. Swingle, Mark R. Front Cell Dev Biol Cell and Developmental Biology PP2A-serine/threonine protein phosphatases function as heterotrimeric holoenzymes, composed of a common scaffold (A-subunit encoded by PPP2R1A/PPP2R1B), a common catalytic (C-subunit encoded by PPP2CA/PPP2CB), and one of many variable regulatory (B) subunits. The site of phosphoprotein phosphatase (PPP) hydrolysis features a bimetal system (M(1)/M(2)), an associated bridge hydroxide [W(1)(OH(−))], and a highly-conserved core sequence. In the presumptive common mechanism, the phosphoprotein’s seryl/threonyl phosphate coordinates the M(1)/M(2) system, W(1)(OH(−)) attacks the central P atom, rupturing the antipodal bond, and simultaneously, a histidine/aspartate tandem protonates the exiting seryl/threonyl alkoxide. Based on studies of PPP5C, a conserved arginine proximal to M(1) is also expected to bind the substrate’s phosphate group in a bidentate fashion. However, in PP2A isozymes, the role of the arginine (Arg(89)) in hydrolysis is not clear because two independent structures for PP2A(PPP2R5C) and PP2A(PPP2R5D) show that Arg(89) engages in a weak salt bridge at the B:C interface. These observations raise the question of whether hydrolysis proceeds with or without direct involvement of Arg(89). The interaction of Arg(89) with B:Glu(198) in PP2A(PPP2R5D) is significant because the pathogenic E198K variant of B56δ is associated with irregular protein phosphorylation levels and consequent developmental disorders (Jordan’s Syndrome; OMIM #616355). In this study, we perform quantum-based hybrid [ONIOM(UB3LYP/6-31G(d):UPM7)] calculations on 39-residue models of the PP2A(PPP2R5D)/pSer (phosphoserine) system to estimate activation barriers for hydrolysis in the presence of bidentate Arg(89)-substrate binding and when Arg(89) is otherwise engaged in the salt-bridge interaction. Our solvation-corrected results yield ΔH(‡) ≈ ΔE(‡) = +15.5 kcal/mol for the former case, versus +18.8 kcal/mol for the latter, indicating that bidentate Arg(89)-substrate binding is critical for optimal catalytic function of the enzyme. We speculate that PP2A(PPP2R5D) activity is suppressed by B:Glu(198) sequestration of C:Arg(89) under native conditions, whereas the PP2A(PPP2R5D)-holoenzyme containing the E198K variant has a positively-charged lysine in this position that alters normal function. Frontiers Media S.A. 2023-06-12 /pmc/articles/PMC10291244/ /pubmed/37377738 http://dx.doi.org/10.3389/fcell.2023.1141804 Text en Copyright © 2023 Salter, Wierzbicki, Honkanen and Swingle. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Salter, E. Alan
Wierzbicki, Andrzej
Honkanen, Richard E.
Swingle, Mark R.
Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation
title Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation
title_full Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation
title_fullStr Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation
title_full_unstemmed Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation
title_short Quantum-based modeling implies that bidentate Arg(89)-substrate binding enhances serine/threonine protein phosphatase-2A(PPP2R5D/PPP2R1A/PPP2CA)-mediated dephosphorylation
title_sort quantum-based modeling implies that bidentate arg(89)-substrate binding enhances serine/threonine protein phosphatase-2a(ppp2r5d/ppp2r1a/ppp2ca)-mediated dephosphorylation
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10291244/
https://www.ncbi.nlm.nih.gov/pubmed/37377738
http://dx.doi.org/10.3389/fcell.2023.1141804
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