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Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1

The NCS protein Visinin-like Protein 1 (VILIP-1) transduces calcium signals in the brain and serves as an effector of the non-retinal receptor guanylyl cyclases (GCs) GC-A and GC-B, and nicotinic acetyl choline receptors (nAchR). Analysis of the quaternary structure of VILIP-1 in solution reveals th...

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Autores principales: Wang, Conan K., Simon, Anne, Jessen, Christian M., Oliveira, Cristiano L. P., Mack, Lynsey, Braunewell, Karl-Heinz, Ames, James B., Pedersen, Jan Skov, Hofmann, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3206844/
https://www.ncbi.nlm.nih.gov/pubmed/22073194
http://dx.doi.org/10.1371/journal.pone.0026793
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author Wang, Conan K.
Simon, Anne
Jessen, Christian M.
Oliveira, Cristiano L. P.
Mack, Lynsey
Braunewell, Karl-Heinz
Ames, James B.
Pedersen, Jan Skov
Hofmann, Andreas
author_facet Wang, Conan K.
Simon, Anne
Jessen, Christian M.
Oliveira, Cristiano L. P.
Mack, Lynsey
Braunewell, Karl-Heinz
Ames, James B.
Pedersen, Jan Skov
Hofmann, Andreas
author_sort Wang, Conan K.
collection PubMed
description The NCS protein Visinin-like Protein 1 (VILIP-1) transduces calcium signals in the brain and serves as an effector of the non-retinal receptor guanylyl cyclases (GCs) GC-A and GC-B, and nicotinic acetyl choline receptors (nAchR). Analysis of the quaternary structure of VILIP-1 in solution reveals the existence of monomeric and dimeric species, the relative contents of which are affected but not exclusively regulated by divalent metal ions and Redox conditions. Using small-angle X-ray scattering, we have investigated the low resolution structure of the calcium-bound VILIP-1 dimer under reducing conditions. Scattering profiles for samples with high monomeric and dimeric contents have been obtained. The dimerization interface involves residues from EF-hand regions EF3 and EF4. Using monolayer adsorption experiments, we show that myristoylated and unmyristoylated VILIP-1 can bind lipid membranes. The presence of calcium only marginally improves binding of the protein to the monolayer, suggesting that charged residues at the protein surface may play a role in the binding process. In the presence of calcium, VILIP-1 undergoes a conformational re-arrangement, exposing previously hidden surfaces for interaction with protein partners. We hypothesise a working model where dimeric VILIP-1 interacts with the membrane where it binds membrane-bound receptors in a calcium-dependent manner.
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spelling pubmed-32068442011-11-09 Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1 Wang, Conan K. Simon, Anne Jessen, Christian M. Oliveira, Cristiano L. P. Mack, Lynsey Braunewell, Karl-Heinz Ames, James B. Pedersen, Jan Skov Hofmann, Andreas PLoS One Research Article The NCS protein Visinin-like Protein 1 (VILIP-1) transduces calcium signals in the brain and serves as an effector of the non-retinal receptor guanylyl cyclases (GCs) GC-A and GC-B, and nicotinic acetyl choline receptors (nAchR). Analysis of the quaternary structure of VILIP-1 in solution reveals the existence of monomeric and dimeric species, the relative contents of which are affected but not exclusively regulated by divalent metal ions and Redox conditions. Using small-angle X-ray scattering, we have investigated the low resolution structure of the calcium-bound VILIP-1 dimer under reducing conditions. Scattering profiles for samples with high monomeric and dimeric contents have been obtained. The dimerization interface involves residues from EF-hand regions EF3 and EF4. Using monolayer adsorption experiments, we show that myristoylated and unmyristoylated VILIP-1 can bind lipid membranes. The presence of calcium only marginally improves binding of the protein to the monolayer, suggesting that charged residues at the protein surface may play a role in the binding process. In the presence of calcium, VILIP-1 undergoes a conformational re-arrangement, exposing previously hidden surfaces for interaction with protein partners. We hypothesise a working model where dimeric VILIP-1 interacts with the membrane where it binds membrane-bound receptors in a calcium-dependent manner. Public Library of Science 2011-11-02 /pmc/articles/PMC3206844/ /pubmed/22073194 http://dx.doi.org/10.1371/journal.pone.0026793 Text en Wang 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
Wang, Conan K.
Simon, Anne
Jessen, Christian M.
Oliveira, Cristiano L. P.
Mack, Lynsey
Braunewell, Karl-Heinz
Ames, James B.
Pedersen, Jan Skov
Hofmann, Andreas
Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1
title Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1
title_full Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1
title_fullStr Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1
title_full_unstemmed Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1
title_short Divalent Cations and Redox Conditions Regulate the Molecular Structure and Function of Visinin-Like Protein-1
title_sort divalent cations and redox conditions regulate the molecular structure and function of visinin-like protein-1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3206844/
https://www.ncbi.nlm.nih.gov/pubmed/22073194
http://dx.doi.org/10.1371/journal.pone.0026793
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