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Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs

Inositol poly- and pyrophosphates (InsPs and PP-InsPs) are densely phosphorylated eukaryotic messengers, which are involved in numerous cellular processes. To elucidate their signaling functions at the molecular level, non-hydrolyzable bisphosphonate analogs of inositol pyrophosphates, PCP-InsPs, ha...

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Autores principales: Hostachy, Sarah, Utesch, Tillmann, Franke, Katy, Dornan, Gillian Leigh, Furkert, David, Türkaydin, Berke, Haucke, Volker, Sun, Han, Fiedler, Dorothea
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/PMC8372538/
https://www.ncbi.nlm.nih.gov/pubmed/34476054
http://dx.doi.org/10.1039/d1sc02975d
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author Hostachy, Sarah
Utesch, Tillmann
Franke, Katy
Dornan, Gillian Leigh
Furkert, David
Türkaydin, Berke
Haucke, Volker
Sun, Han
Fiedler, Dorothea
author_facet Hostachy, Sarah
Utesch, Tillmann
Franke, Katy
Dornan, Gillian Leigh
Furkert, David
Türkaydin, Berke
Haucke, Volker
Sun, Han
Fiedler, Dorothea
author_sort Hostachy, Sarah
collection PubMed
description Inositol poly- and pyrophosphates (InsPs and PP-InsPs) are densely phosphorylated eukaryotic messengers, which are involved in numerous cellular processes. To elucidate their signaling functions at the molecular level, non-hydrolyzable bisphosphonate analogs of inositol pyrophosphates, PCP-InsPs, have been instrumental. Here, an efficient synthetic strategy to obtain these analogs in unprecedented quantities is described – relying on the use of combined phosphate ester-phosphoramidite reagents. The PCP-analogs, alongside their natural counterparts, were applied to investigate their regulatory effect on insulin-degrading enzyme (IDE), using a range of biochemical, biophysical and computational methods. A unique interplay between IDE, its substrates and the PP-InsPs was uncovered, in which the PP-InsPs differentially modulated the activity of the enzyme towards short peptide substrates. Aided by molecular docking and molecular dynamics simulations, a flexible binding mode for the InsPs/PP-InsPs was identified at the anion binding site of IDE. Targeting IDE for therapeutic purposes should thus take regulation by endogenous PP-InsP metabolites into account.
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spelling pubmed-83725382021-09-01 Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs Hostachy, Sarah Utesch, Tillmann Franke, Katy Dornan, Gillian Leigh Furkert, David Türkaydin, Berke Haucke, Volker Sun, Han Fiedler, Dorothea Chem Sci Chemistry Inositol poly- and pyrophosphates (InsPs and PP-InsPs) are densely phosphorylated eukaryotic messengers, which are involved in numerous cellular processes. To elucidate their signaling functions at the molecular level, non-hydrolyzable bisphosphonate analogs of inositol pyrophosphates, PCP-InsPs, have been instrumental. Here, an efficient synthetic strategy to obtain these analogs in unprecedented quantities is described – relying on the use of combined phosphate ester-phosphoramidite reagents. The PCP-analogs, alongside their natural counterparts, were applied to investigate their regulatory effect on insulin-degrading enzyme (IDE), using a range of biochemical, biophysical and computational methods. A unique interplay between IDE, its substrates and the PP-InsPs was uncovered, in which the PP-InsPs differentially modulated the activity of the enzyme towards short peptide substrates. Aided by molecular docking and molecular dynamics simulations, a flexible binding mode for the InsPs/PP-InsPs was identified at the anion binding site of IDE. Targeting IDE for therapeutic purposes should thus take regulation by endogenous PP-InsP metabolites into account. The Royal Society of Chemistry 2021-07-08 /pmc/articles/PMC8372538/ /pubmed/34476054 http://dx.doi.org/10.1039/d1sc02975d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hostachy, Sarah
Utesch, Tillmann
Franke, Katy
Dornan, Gillian Leigh
Furkert, David
Türkaydin, Berke
Haucke, Volker
Sun, Han
Fiedler, Dorothea
Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
title Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
title_full Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
title_fullStr Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
title_full_unstemmed Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
title_short Dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
title_sort dissecting the activation of insulin degrading enzyme by inositol pyrophosphates and their bisphosphonate analogs
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8372538/
https://www.ncbi.nlm.nih.gov/pubmed/34476054
http://dx.doi.org/10.1039/d1sc02975d
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