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From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel

BACKGROUND: ATP-sensitive inward rectifier potassium channels (Kir), are a potassium channel family involved in many physiological processes. K(ATP) dysfunctions are observed in several diseases such as hypoglycaemia, hyperinsulinemia, Prinzmetal angina–like symptoms, cardiovascular diseases. METHOD...

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Autores principales: Trezza, Alfonso, Cicaloni, Vittoria, Porciatti, Piera, Langella, Andrea, Fusi, Fabio, Saponara, Simona, Spiga, Ottavia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5936070/
https://www.ncbi.nlm.nih.gov/pubmed/29736333
http://dx.doi.org/10.7717/peerj.4680
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author Trezza, Alfonso
Cicaloni, Vittoria
Porciatti, Piera
Langella, Andrea
Fusi, Fabio
Saponara, Simona
Spiga, Ottavia
author_facet Trezza, Alfonso
Cicaloni, Vittoria
Porciatti, Piera
Langella, Andrea
Fusi, Fabio
Saponara, Simona
Spiga, Ottavia
author_sort Trezza, Alfonso
collection PubMed
description BACKGROUND: ATP-sensitive inward rectifier potassium channels (Kir), are a potassium channel family involved in many physiological processes. K(ATP) dysfunctions are observed in several diseases such as hypoglycaemia, hyperinsulinemia, Prinzmetal angina–like symptoms, cardiovascular diseases. METHODS: A broader view of the K(ATP) mechanism is needed in order to operate on their regulation, and in this work we clarify the structure of the Rattus norvegicus ATP-sensitive inward rectifier potassium channel 8 (Kir6.1), which has been obtained through a homology modelling procedure. Due to the medical use of flavonoids, a considerable increase in studies on their influence on human health has recently been observed, therefore our aim is to study, through computational methods, the three-dimensional (3D) conformation together with mechanism of action of Kir6.1 with three flavonoids. RESULTS: Computational analysis by performing molecular dynamics (MD) and docking simulation on rat 3D modelled structure have been completed, in its closed and open conformation state and in complex with Quercetin, 5-Hydroxyflavone and Rutin flavonoids. Our study showed that only Quercetin and 5-Hydroxyflavone were responsible for a significant down-regulation of the Kir6.1 activity, stabilising it in a closed conformation. This hypothesis was supported by in vitro experiments demonstrating that Quercetin and 5-Hydroxyflavone were capable to inhibit K(ATP) currents of rat tail main artery myocytes recorded by the patch-clamp technique. CONCLUSION: Combined methodological approaches, such as molecular modelling, docking and MD simulations of Kir6.1 channel, used to elucidate flavonoids intrinsic mechanism of action, are introduced, revealing a new potential druggable protein site.
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spelling pubmed-59360702018-05-07 From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel Trezza, Alfonso Cicaloni, Vittoria Porciatti, Piera Langella, Andrea Fusi, Fabio Saponara, Simona Spiga, Ottavia PeerJ Biochemistry BACKGROUND: ATP-sensitive inward rectifier potassium channels (Kir), are a potassium channel family involved in many physiological processes. K(ATP) dysfunctions are observed in several diseases such as hypoglycaemia, hyperinsulinemia, Prinzmetal angina–like symptoms, cardiovascular diseases. METHODS: A broader view of the K(ATP) mechanism is needed in order to operate on their regulation, and in this work we clarify the structure of the Rattus norvegicus ATP-sensitive inward rectifier potassium channel 8 (Kir6.1), which has been obtained through a homology modelling procedure. Due to the medical use of flavonoids, a considerable increase in studies on their influence on human health has recently been observed, therefore our aim is to study, through computational methods, the three-dimensional (3D) conformation together with mechanism of action of Kir6.1 with three flavonoids. RESULTS: Computational analysis by performing molecular dynamics (MD) and docking simulation on rat 3D modelled structure have been completed, in its closed and open conformation state and in complex with Quercetin, 5-Hydroxyflavone and Rutin flavonoids. Our study showed that only Quercetin and 5-Hydroxyflavone were responsible for a significant down-regulation of the Kir6.1 activity, stabilising it in a closed conformation. This hypothesis was supported by in vitro experiments demonstrating that Quercetin and 5-Hydroxyflavone were capable to inhibit K(ATP) currents of rat tail main artery myocytes recorded by the patch-clamp technique. CONCLUSION: Combined methodological approaches, such as molecular modelling, docking and MD simulations of Kir6.1 channel, used to elucidate flavonoids intrinsic mechanism of action, are introduced, revealing a new potential druggable protein site. PeerJ Inc. 2018-05-02 /pmc/articles/PMC5936070/ /pubmed/29736333 http://dx.doi.org/10.7717/peerj.4680 Text en © 2018 Trezza 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Biochemistry
Trezza, Alfonso
Cicaloni, Vittoria
Porciatti, Piera
Langella, Andrea
Fusi, Fabio
Saponara, Simona
Spiga, Ottavia
From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel
title From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel
title_full From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel
title_fullStr From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel
title_full_unstemmed From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel
title_short From in silico to in vitro: a trip to reveal flavonoid binding on the Rattus norvegicus Kir6.1 ATP-sensitive inward rectifier potassium channel
title_sort from in silico to in vitro: a trip to reveal flavonoid binding on the rattus norvegicus kir6.1 atp-sensitive inward rectifier potassium channel
topic Biochemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5936070/
https://www.ncbi.nlm.nih.gov/pubmed/29736333
http://dx.doi.org/10.7717/peerj.4680
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