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Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme

To provide tight spatiotemporal signaling control, the cyclic adenosine monophosphate (cAMP)-dependent protein kinase (PKA) holoenzyme typically nucleates a macromolecular complex or a “PKA signalosome.” Using the RIIβ holoenzyme as a prototype, we show how autophosphorylation/dephosphorylation of t...

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Autores principales: Zhang, Ping, Knape, Matthias J., Ahuja, Lalima G., Keshwani, Malik M., King, Charles C., Sastri, Mira, Herberg, Friedrich W., Taylor, Susan S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4497662/
https://www.ncbi.nlm.nih.gov/pubmed/26158466
http://dx.doi.org/10.1371/journal.pbio.1002192
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author Zhang, Ping
Knape, Matthias J.
Ahuja, Lalima G.
Keshwani, Malik M.
King, Charles C.
Sastri, Mira
Herberg, Friedrich W.
Taylor, Susan S.
author_facet Zhang, Ping
Knape, Matthias J.
Ahuja, Lalima G.
Keshwani, Malik M.
King, Charles C.
Sastri, Mira
Herberg, Friedrich W.
Taylor, Susan S.
author_sort Zhang, Ping
collection PubMed
description To provide tight spatiotemporal signaling control, the cyclic adenosine monophosphate (cAMP)-dependent protein kinase (PKA) holoenzyme typically nucleates a macromolecular complex or a “PKA signalosome.” Using the RIIβ holoenzyme as a prototype, we show how autophosphorylation/dephosphorylation of the RIIβ subunit, as well as cAMP and metal ions, contribute to the dynamics of PKA signaling. While we showed previously that the RIIβ holoenzyme could undergo a single turnover autophosphorylation with adenosine triphosphate and magnesium (MgATP) and trap both products in the crystal lattice, we asked here whether calcium could trap an ATP:RIIβ holoenzyme since the RIIβ holoenzyme is located close to ion channels. The 2.8Å structure of an RIIβ(p) (2):C(2):(Ca(2)ADP)(2) holoenzyme, supported by biochemical and biophysical data, reveals a trapped single phosphorylation event similar to MgATP. Thus, calcium can mediate a single turnover event with either ATP or adenosine-5'-(β,γ-imido)triphosphate (AMP-PNP), even though it cannot support steady-state catalysis efficiently. The holoenzyme serves as a “product trap” because of the slow off-rate of the pRIIβ subunit, which is controlled by cAMP, not by phosphorylation of the inhibitor site. By quantitatively defining the RIIβ signaling cycle, we show that release of pRIIβ in the presence of cAMP is reduced by calcium, whereas autophosphorylation at the phosphorylation site (P-site) inhibits holoenzyme reassociation with the catalytic subunit. Adding a single phosphoryl group to the preformed RIIβ holoenzyme thus creates a signaling cycle in which phosphatases become an essential partner. This previously unappreciated molecular mechanism is an integral part of PKA signaling for type II holoenzymes.
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spelling pubmed-44976622015-07-14 Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme Zhang, Ping Knape, Matthias J. Ahuja, Lalima G. Keshwani, Malik M. King, Charles C. Sastri, Mira Herberg, Friedrich W. Taylor, Susan S. PLoS Biol Research Article To provide tight spatiotemporal signaling control, the cyclic adenosine monophosphate (cAMP)-dependent protein kinase (PKA) holoenzyme typically nucleates a macromolecular complex or a “PKA signalosome.” Using the RIIβ holoenzyme as a prototype, we show how autophosphorylation/dephosphorylation of the RIIβ subunit, as well as cAMP and metal ions, contribute to the dynamics of PKA signaling. While we showed previously that the RIIβ holoenzyme could undergo a single turnover autophosphorylation with adenosine triphosphate and magnesium (MgATP) and trap both products in the crystal lattice, we asked here whether calcium could trap an ATP:RIIβ holoenzyme since the RIIβ holoenzyme is located close to ion channels. The 2.8Å structure of an RIIβ(p) (2):C(2):(Ca(2)ADP)(2) holoenzyme, supported by biochemical and biophysical data, reveals a trapped single phosphorylation event similar to MgATP. Thus, calcium can mediate a single turnover event with either ATP or adenosine-5'-(β,γ-imido)triphosphate (AMP-PNP), even though it cannot support steady-state catalysis efficiently. The holoenzyme serves as a “product trap” because of the slow off-rate of the pRIIβ subunit, which is controlled by cAMP, not by phosphorylation of the inhibitor site. By quantitatively defining the RIIβ signaling cycle, we show that release of pRIIβ in the presence of cAMP is reduced by calcium, whereas autophosphorylation at the phosphorylation site (P-site) inhibits holoenzyme reassociation with the catalytic subunit. Adding a single phosphoryl group to the preformed RIIβ holoenzyme thus creates a signaling cycle in which phosphatases become an essential partner. This previously unappreciated molecular mechanism is an integral part of PKA signaling for type II holoenzymes. Public Library of Science 2015-07-09 /pmc/articles/PMC4497662/ /pubmed/26158466 http://dx.doi.org/10.1371/journal.pbio.1002192 Text en © 2015 Zhang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Zhang, Ping
Knape, Matthias J.
Ahuja, Lalima G.
Keshwani, Malik M.
King, Charles C.
Sastri, Mira
Herberg, Friedrich W.
Taylor, Susan S.
Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme
title Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme
title_full Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme
title_fullStr Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme
title_full_unstemmed Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme
title_short Single Turnover Autophosphorylation Cycle of the PKA RIIβ Holoenzyme
title_sort single turnover autophosphorylation cycle of the pka riiβ holoenzyme
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4497662/
https://www.ncbi.nlm.nih.gov/pubmed/26158466
http://dx.doi.org/10.1371/journal.pbio.1002192
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