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Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation

A recently-discovered protein post-translational modification, lysine polyphosphorylation (K-PPn), consists of the covalent attachment of inorganic polyphosphate (polyP) to lysine residues. The nonenzymatic nature of K-PPn means that the degree of this modification depends on both polyP abundance an...

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Autores principales: Azevedo, Cristina, Desfougères, Yann, Jiramongkol, Yannasittha, Partington, Hamish, Trakansuebkul, Sasanan, Singh, Jyoti, Steck, Nicole, Jessen, Henning J., Saiardi, Adolfo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7008358/
https://www.ncbi.nlm.nih.gov/pubmed/31844018
http://dx.doi.org/10.1074/jbc.RA119.011680
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author Azevedo, Cristina
Desfougères, Yann
Jiramongkol, Yannasittha
Partington, Hamish
Trakansuebkul, Sasanan
Singh, Jyoti
Steck, Nicole
Jessen, Henning J.
Saiardi, Adolfo
author_facet Azevedo, Cristina
Desfougères, Yann
Jiramongkol, Yannasittha
Partington, Hamish
Trakansuebkul, Sasanan
Singh, Jyoti
Steck, Nicole
Jessen, Henning J.
Saiardi, Adolfo
author_sort Azevedo, Cristina
collection PubMed
description A recently-discovered protein post-translational modification, lysine polyphosphorylation (K-PPn), consists of the covalent attachment of inorganic polyphosphate (polyP) to lysine residues. The nonenzymatic nature of K-PPn means that the degree of this modification depends on both polyP abundance and the amino acids surrounding the modified lysine. K-PPn was originally discovered in budding yeast (Saccharomyces cerevisiae), in which polyP anabolism and catabolism are well-characterized. However, yeast vacuoles accumulate large amounts of polyP, and upon cell lysis, the release of the vacuolar polyP could nonphysiologically cause K-PPn of nuclear and cytosolic targets. Moreover, yeast vacuoles possess two very active endopolyphosphatases, Ppn1 and Ppn2, that could have opposing effects on the extent of K-PPn. Here, we characterized the contribution of vacuolar polyP metabolism to K-PPn of two yeast proteins, Top1 (DNA topoisomerase 1) and Nsr1 (nuclear signal recognition 1). We discovered that whereas Top1-targeting K-PPn is only marginally affected by vacuolar polyP metabolism, Nsr1-targeting K-PPn is highly sensitive to the release of polyP and of endopolyphosphatases from the vacuole. Therefore, to better study K-PPn of cytosolic and nuclear targets, we constructed a yeast strain devoid of vacuolar polyP by targeting the exopolyphosphatase Ppx1 to the vacuole and concomitantly depleting the two endopolyphosphatases (ppn1Δppn2Δ, vt-Ppx1). This strain enabled us to study K-PPn of cytosolic and nuclear targets without the interfering effects of cell lysis on vacuole polyP and of endopolyphosphatases. Furthermore, we also define the fundamental nature of the acidic amino acid residues to the K-PPn target domain.
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spelling pubmed-70083582020-02-11 Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation Azevedo, Cristina Desfougères, Yann Jiramongkol, Yannasittha Partington, Hamish Trakansuebkul, Sasanan Singh, Jyoti Steck, Nicole Jessen, Henning J. Saiardi, Adolfo J Biol Chem Editors' Picks A recently-discovered protein post-translational modification, lysine polyphosphorylation (K-PPn), consists of the covalent attachment of inorganic polyphosphate (polyP) to lysine residues. The nonenzymatic nature of K-PPn means that the degree of this modification depends on both polyP abundance and the amino acids surrounding the modified lysine. K-PPn was originally discovered in budding yeast (Saccharomyces cerevisiae), in which polyP anabolism and catabolism are well-characterized. However, yeast vacuoles accumulate large amounts of polyP, and upon cell lysis, the release of the vacuolar polyP could nonphysiologically cause K-PPn of nuclear and cytosolic targets. Moreover, yeast vacuoles possess two very active endopolyphosphatases, Ppn1 and Ppn2, that could have opposing effects on the extent of K-PPn. Here, we characterized the contribution of vacuolar polyP metabolism to K-PPn of two yeast proteins, Top1 (DNA topoisomerase 1) and Nsr1 (nuclear signal recognition 1). We discovered that whereas Top1-targeting K-PPn is only marginally affected by vacuolar polyP metabolism, Nsr1-targeting K-PPn is highly sensitive to the release of polyP and of endopolyphosphatases from the vacuole. Therefore, to better study K-PPn of cytosolic and nuclear targets, we constructed a yeast strain devoid of vacuolar polyP by targeting the exopolyphosphatase Ppx1 to the vacuole and concomitantly depleting the two endopolyphosphatases (ppn1Δppn2Δ, vt-Ppx1). This strain enabled us to study K-PPn of cytosolic and nuclear targets without the interfering effects of cell lysis on vacuole polyP and of endopolyphosphatases. Furthermore, we also define the fundamental nature of the acidic amino acid residues to the K-PPn target domain. American Society for Biochemistry and Molecular Biology 2020-02-07 2019-12-16 /pmc/articles/PMC7008358/ /pubmed/31844018 http://dx.doi.org/10.1074/jbc.RA119.011680 Text en © 2020 Azevedo et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Editors' Picks
Azevedo, Cristina
Desfougères, Yann
Jiramongkol, Yannasittha
Partington, Hamish
Trakansuebkul, Sasanan
Singh, Jyoti
Steck, Nicole
Jessen, Henning J.
Saiardi, Adolfo
Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
title Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
title_full Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
title_fullStr Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
title_full_unstemmed Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
title_short Development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
title_sort development of a yeast model to study the contribution of vacuolar polyphosphate metabolism to lysine polyphosphorylation
topic Editors' Picks
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7008358/
https://www.ncbi.nlm.nih.gov/pubmed/31844018
http://dx.doi.org/10.1074/jbc.RA119.011680
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