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Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1

Calmodulin (CaM) and S100A1 fine‐tune skeletal muscle Ca(2+) release via opposite modulation of the ryanodine receptor type 1 (RyR1). Binding to and modulation of RyR1 by CaM and S100A1 occurs predominantly at the region ranging from amino acid residue 3614‐3640 of RyR1 (here referred to as CaMBD2)....

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Autores principales: Hernández‐Ochoa, Erick O., Melville, Zephan, Vanegas, Camilo, Varney, Kristen M., Wilder, Paul T., Melzer, Werner, Weber, David J., Schneider, Martin F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6087734/
https://www.ncbi.nlm.nih.gov/pubmed/30101473
http://dx.doi.org/10.14814/phy2.13822
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author Hernández‐Ochoa, Erick O.
Melville, Zephan
Vanegas, Camilo
Varney, Kristen M.
Wilder, Paul T.
Melzer, Werner
Weber, David J.
Schneider, Martin F.
author_facet Hernández‐Ochoa, Erick O.
Melville, Zephan
Vanegas, Camilo
Varney, Kristen M.
Wilder, Paul T.
Melzer, Werner
Weber, David J.
Schneider, Martin F.
author_sort Hernández‐Ochoa, Erick O.
collection PubMed
description Calmodulin (CaM) and S100A1 fine‐tune skeletal muscle Ca(2+) release via opposite modulation of the ryanodine receptor type 1 (RyR1). Binding to and modulation of RyR1 by CaM and S100A1 occurs predominantly at the region ranging from amino acid residue 3614‐3640 of RyR1 (here referred to as CaMBD2). Using synthetic peptides, it has been shown that CaM binds to two additional regions within the RyR1, specifically residues 1975‐1999 and 4295‐4325 (CaMBD1 and CaMBD3, respectively). Because S100A1 typically binds to similar motifs as CaM, we hypothesized that S100A1 could also bind to CaMBD1 and CaMBD3. Our goals were: (1) to establish whether S100A1 binds to synthetic peptides containing CaMBD1 and CaMBD3 using isothermal calorimetry (ITC), and (2) to identify whether S100A1 and CaM modulate RyR1 Ca(2+) release activation via sites other than CaMBD2 in RyR1 in its native cellular context. We developed the mouse model (RyR1D‐S100A1KO), which expresses point mutation RyR1‐L3625D (RyR1D) that disrupts the modulation of RyR1 by CaM and S100A1 at CaMBD2 and also lacks S100A1 (S100A1KO). ITC assays revealed that S100A1 binds with different affinities to CaMBD1 and CaMBD3. Using high‐speed Ca(2+) imaging and a model for Ca(2+) binding and transport, we show that the RyR1D‐S100A1KO muscle fibers exhibit a modest but significant increase in myoplasmic Ca(2+) transients and enhanced Ca(2+) release flux following field stimulation when compared to fibers from RyR1D mice, which were used as controls to eliminate any effect of binding at CaMBD2, but with preserved S100A1 expression. Our results suggest that S100A1, similar to CaM, binds to CaMBD1 and CaMBD3 within the RyR1, but that CaMBD2 appears to be the primary site of RyR1 regulation by CaM and S100A1.
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spelling pubmed-60877342018-08-17 Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1 Hernández‐Ochoa, Erick O. Melville, Zephan Vanegas, Camilo Varney, Kristen M. Wilder, Paul T. Melzer, Werner Weber, David J. Schneider, Martin F. Physiol Rep Original Research Calmodulin (CaM) and S100A1 fine‐tune skeletal muscle Ca(2+) release via opposite modulation of the ryanodine receptor type 1 (RyR1). Binding to and modulation of RyR1 by CaM and S100A1 occurs predominantly at the region ranging from amino acid residue 3614‐3640 of RyR1 (here referred to as CaMBD2). Using synthetic peptides, it has been shown that CaM binds to two additional regions within the RyR1, specifically residues 1975‐1999 and 4295‐4325 (CaMBD1 and CaMBD3, respectively). Because S100A1 typically binds to similar motifs as CaM, we hypothesized that S100A1 could also bind to CaMBD1 and CaMBD3. Our goals were: (1) to establish whether S100A1 binds to synthetic peptides containing CaMBD1 and CaMBD3 using isothermal calorimetry (ITC), and (2) to identify whether S100A1 and CaM modulate RyR1 Ca(2+) release activation via sites other than CaMBD2 in RyR1 in its native cellular context. We developed the mouse model (RyR1D‐S100A1KO), which expresses point mutation RyR1‐L3625D (RyR1D) that disrupts the modulation of RyR1 by CaM and S100A1 at CaMBD2 and also lacks S100A1 (S100A1KO). ITC assays revealed that S100A1 binds with different affinities to CaMBD1 and CaMBD3. Using high‐speed Ca(2+) imaging and a model for Ca(2+) binding and transport, we show that the RyR1D‐S100A1KO muscle fibers exhibit a modest but significant increase in myoplasmic Ca(2+) transients and enhanced Ca(2+) release flux following field stimulation when compared to fibers from RyR1D mice, which were used as controls to eliminate any effect of binding at CaMBD2, but with preserved S100A1 expression. Our results suggest that S100A1, similar to CaM, binds to CaMBD1 and CaMBD3 within the RyR1, but that CaMBD2 appears to be the primary site of RyR1 regulation by CaM and S100A1. John Wiley and Sons Inc. 2018-08-12 /pmc/articles/PMC6087734/ /pubmed/30101473 http://dx.doi.org/10.14814/phy2.13822 Text en © 2018 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Hernández‐Ochoa, Erick O.
Melville, Zephan
Vanegas, Camilo
Varney, Kristen M.
Wilder, Paul T.
Melzer, Werner
Weber, David J.
Schneider, Martin F.
Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1
title Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1
title_full Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1
title_fullStr Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1
title_full_unstemmed Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1
title_short Loss of S100A1 expression leads to Ca(2+) release potentiation in mutant mice with disrupted CaM and S100A1 binding to CaMBD2 of RyR1
title_sort loss of s100a1 expression leads to ca(2+) release potentiation in mutant mice with disrupted cam and s100a1 binding to cambd2 of ryr1
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6087734/
https://www.ncbi.nlm.nih.gov/pubmed/30101473
http://dx.doi.org/10.14814/phy2.13822
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