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Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING

Calcium-binding protein 7 (CaBP7) is a member of the calmodulin (CaM) superfamily that harbors two high affinity EF-hand motifs and a C-terminal transmembrane domain. CaBP7 has been previously shown to interact with and modulate phosphatidylinositol 4-kinase III-β (PI4KIIIβ) activity in in vitro ass...

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Autores principales: McCue, Hannah V., Patel, Pryank, Herbert, Andrew P., Lian, Lu-Yun, Burgoyne, Robert D., Haynes, Lee P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3488092/
https://www.ncbi.nlm.nih.gov/pubmed/22989873
http://dx.doi.org/10.1074/jbc.M112.402289
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author McCue, Hannah V.
Patel, Pryank
Herbert, Andrew P.
Lian, Lu-Yun
Burgoyne, Robert D.
Haynes, Lee P.
author_facet McCue, Hannah V.
Patel, Pryank
Herbert, Andrew P.
Lian, Lu-Yun
Burgoyne, Robert D.
Haynes, Lee P.
author_sort McCue, Hannah V.
collection PubMed
description Calcium-binding protein 7 (CaBP7) is a member of the calmodulin (CaM) superfamily that harbors two high affinity EF-hand motifs and a C-terminal transmembrane domain. CaBP7 has been previously shown to interact with and modulate phosphatidylinositol 4-kinase III-β (PI4KIIIβ) activity in in vitro assays and affects vesicle transport in neurons when overexpressed. Here we show that the N-terminal domain (NTD) of CaBP7 is sufficient to mediate the interaction of CaBP7 with PI4KIIIβ. CaBP7 NTD encompasses the two high affinity Ca(2+) binding sites, and structural characterization through multiangle light scattering, circular dichroism, and NMR reveals unique properties for this domain. CaBP7 NTD binds specifically to Ca(2+) but not Mg(2+) and undergoes significant conformational changes in both secondary and tertiary structure upon Ca(2+) binding. The Ca(2+)-bound form of CaBP7 NTD is monomeric and exhibits an open conformation similar to that of CaM. Ca(2+)-bound CaBP7 NTD has a solvent-exposed hydrophobic surface that is more expansive than observed in CaM or CaBP1. Within this hydrophobic pocket, there is a significant reduction in the number of methionine residues that are conserved in CaM and CaBP1 and shown to be important for target recognition. In CaBP7 NTD, these residues are replaced with isoleucine and leucine residues with branched side chains that are intrinsically more rigid than the flexible methionine side chain. We propose that these differences in surface hydrophobicity, charge, and methionine content may be important in determining highly specific interactions of CaBP7 with target proteins, such as PI4KIIIβ.
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spelling pubmed-34880922012-11-08 Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING McCue, Hannah V. Patel, Pryank Herbert, Andrew P. Lian, Lu-Yun Burgoyne, Robert D. Haynes, Lee P. J Biol Chem Protein Structure and Folding Calcium-binding protein 7 (CaBP7) is a member of the calmodulin (CaM) superfamily that harbors two high affinity EF-hand motifs and a C-terminal transmembrane domain. CaBP7 has been previously shown to interact with and modulate phosphatidylinositol 4-kinase III-β (PI4KIIIβ) activity in in vitro assays and affects vesicle transport in neurons when overexpressed. Here we show that the N-terminal domain (NTD) of CaBP7 is sufficient to mediate the interaction of CaBP7 with PI4KIIIβ. CaBP7 NTD encompasses the two high affinity Ca(2+) binding sites, and structural characterization through multiangle light scattering, circular dichroism, and NMR reveals unique properties for this domain. CaBP7 NTD binds specifically to Ca(2+) but not Mg(2+) and undergoes significant conformational changes in both secondary and tertiary structure upon Ca(2+) binding. The Ca(2+)-bound form of CaBP7 NTD is monomeric and exhibits an open conformation similar to that of CaM. Ca(2+)-bound CaBP7 NTD has a solvent-exposed hydrophobic surface that is more expansive than observed in CaM or CaBP1. Within this hydrophobic pocket, there is a significant reduction in the number of methionine residues that are conserved in CaM and CaBP1 and shown to be important for target recognition. In CaBP7 NTD, these residues are replaced with isoleucine and leucine residues with branched side chains that are intrinsically more rigid than the flexible methionine side chain. We propose that these differences in surface hydrophobicity, charge, and methionine content may be important in determining highly specific interactions of CaBP7 with target proteins, such as PI4KIIIβ. American Society for Biochemistry and Molecular Biology 2012-11-02 2012-09-18 /pmc/articles/PMC3488092/ /pubmed/22989873 http://dx.doi.org/10.1074/jbc.M112.402289 Text en © 2012 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Protein Structure and Folding
McCue, Hannah V.
Patel, Pryank
Herbert, Andrew P.
Lian, Lu-Yun
Burgoyne, Robert D.
Haynes, Lee P.
Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING
title Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING
title_full Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING
title_fullStr Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING
title_full_unstemmed Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING
title_short Solution NMR Structure of the Ca(2+)-bound N-terminal Domain of CaBP7: A REGULATOR OF GOLGI TRAFFICKING
title_sort solution nmr structure of the ca(2+)-bound n-terminal domain of cabp7: a regulator of golgi trafficking
topic Protein Structure and Folding
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3488092/
https://www.ncbi.nlm.nih.gov/pubmed/22989873
http://dx.doi.org/10.1074/jbc.M112.402289
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