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Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein

Finding pleiomorphic targets for drugs allows new indications or warnings for treatment to be identified. As test of concept, we applied a new chemical genomics approach to uncover additional targets for the widely prescribed lipid-lowering pro-drug simvastatin. We used mRNA extracted from internal...

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Autores principales: Marsh, Andrew, Casey-Green, Katherine, Probert, Fay, Withall, David, Mitchell, Daniel A., Dilly, Suzanne J., James, Sean, Dimitri, Wade, Ladwa, Sweta R., Taylor, Paul C., Singer, Donald R. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4749215/
https://www.ncbi.nlm.nih.gov/pubmed/26863535
http://dx.doi.org/10.1371/journal.pone.0148266
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author Marsh, Andrew
Casey-Green, Katherine
Probert, Fay
Withall, David
Mitchell, Daniel A.
Dilly, Suzanne J.
James, Sean
Dimitri, Wade
Ladwa, Sweta R.
Taylor, Paul C.
Singer, Donald R. J.
author_facet Marsh, Andrew
Casey-Green, Katherine
Probert, Fay
Withall, David
Mitchell, Daniel A.
Dilly, Suzanne J.
James, Sean
Dimitri, Wade
Ladwa, Sweta R.
Taylor, Paul C.
Singer, Donald R. J.
author_sort Marsh, Andrew
collection PubMed
description Finding pleiomorphic targets for drugs allows new indications or warnings for treatment to be identified. As test of concept, we applied a new chemical genomics approach to uncover additional targets for the widely prescribed lipid-lowering pro-drug simvastatin. We used mRNA extracted from internal mammary artery from patients undergoing coronary artery surgery to prepare a viral cardiovascular protein library, using T7 bacteriophage. We then studied interactions of clones of the bacteriophage, each expressing a different cardiovascular polypeptide, with surface-bound simvastatin in 96-well plates. To maximise likelihood of identifying meaningful interactions between simvastatin and vascular peptides, we used a validated photo-immobilisation method to apply a series of different chemical linkers to bind simvastatin so as to present multiple orientations of its constituent components to potential targets. Three rounds of biopanning identified consistent interaction with the clone expressing part of the gene GJC3, which maps to Homo sapiens chromosome 7, and codes for gap junction gamma-3 protein, also known as connexin 30.2/31.3 (mouse connexin Cx29). Further analysis indicated the binding site to be for the N-terminal domain putatively ‘regulating’ connexin hemichannel and gap junction pores. Using immunohistochemistry we found connexin 30.2/31.3 to be present in samples of artery similar to those used to prepare the bacteriophage library. Surface plasmon resonance revealed that a 25 amino acid synthetic peptide representing the discovered N-terminus did not interact with simvastatin lactone, but did bind to the hydrolysed HMG CoA inhibitor, simvastatin acid. This interaction was also seen for fluvastatin. The gap junction blockers carbenoxolone and flufenamic acid also interacted with the same peptide providing insight into potential site of binding. These findings raise key questions about the functional significance of GJC3 transcripts in the vasculature and other tissues, and this connexin’s role in therapeutic and adverse effects of statins in a range of disease states.
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spelling pubmed-47492152016-02-26 Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein Marsh, Andrew Casey-Green, Katherine Probert, Fay Withall, David Mitchell, Daniel A. Dilly, Suzanne J. James, Sean Dimitri, Wade Ladwa, Sweta R. Taylor, Paul C. Singer, Donald R. J. PLoS One Research Article Finding pleiomorphic targets for drugs allows new indications or warnings for treatment to be identified. As test of concept, we applied a new chemical genomics approach to uncover additional targets for the widely prescribed lipid-lowering pro-drug simvastatin. We used mRNA extracted from internal mammary artery from patients undergoing coronary artery surgery to prepare a viral cardiovascular protein library, using T7 bacteriophage. We then studied interactions of clones of the bacteriophage, each expressing a different cardiovascular polypeptide, with surface-bound simvastatin in 96-well plates. To maximise likelihood of identifying meaningful interactions between simvastatin and vascular peptides, we used a validated photo-immobilisation method to apply a series of different chemical linkers to bind simvastatin so as to present multiple orientations of its constituent components to potential targets. Three rounds of biopanning identified consistent interaction with the clone expressing part of the gene GJC3, which maps to Homo sapiens chromosome 7, and codes for gap junction gamma-3 protein, also known as connexin 30.2/31.3 (mouse connexin Cx29). Further analysis indicated the binding site to be for the N-terminal domain putatively ‘regulating’ connexin hemichannel and gap junction pores. Using immunohistochemistry we found connexin 30.2/31.3 to be present in samples of artery similar to those used to prepare the bacteriophage library. Surface plasmon resonance revealed that a 25 amino acid synthetic peptide representing the discovered N-terminus did not interact with simvastatin lactone, but did bind to the hydrolysed HMG CoA inhibitor, simvastatin acid. This interaction was also seen for fluvastatin. The gap junction blockers carbenoxolone and flufenamic acid also interacted with the same peptide providing insight into potential site of binding. These findings raise key questions about the functional significance of GJC3 transcripts in the vasculature and other tissues, and this connexin’s role in therapeutic and adverse effects of statins in a range of disease states. Public Library of Science 2016-02-10 /pmc/articles/PMC4749215/ /pubmed/26863535 http://dx.doi.org/10.1371/journal.pone.0148266 Text en © 2016 Marsh 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, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Marsh, Andrew
Casey-Green, Katherine
Probert, Fay
Withall, David
Mitchell, Daniel A.
Dilly, Suzanne J.
James, Sean
Dimitri, Wade
Ladwa, Sweta R.
Taylor, Paul C.
Singer, Donald R. J.
Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein
title Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein
title_full Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein
title_fullStr Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein
title_full_unstemmed Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein
title_short Simvastatin Sodium Salt and Fluvastatin Interact with Human Gap Junction Gamma-3 Protein
title_sort simvastatin sodium salt and fluvastatin interact with human gap junction gamma-3 protein
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4749215/
https://www.ncbi.nlm.nih.gov/pubmed/26863535
http://dx.doi.org/10.1371/journal.pone.0148266
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