Abstract
Calsequestrin, the major calcium storage protein in both cardiac and skeletal muscle, binds large amounts of Ca 2+ in the sarcoplasmic reticulum and releases them during muscle contraction. For the first time, the crystal structures of Ca 2+ complexes for both human (hCASQ1) and rabbit (rCASQ1) skeletal calsequestrin were determined, clearly defining their Ca 2+sequestration capabilities through resolution of high- and low-affinity Ca 2+-binding sites. rCASQ1 crystallized in low CaCl 2buffer reveals three high-affinity Ca 2+ sites with trigonal bipyramidal, octahedral, and pentagonal bipyramidal coordination geometries, along with three low-affinity Ca 2+ sites. hCASQ1 crystallized in high CaCl 2 shows 15 Ca 2+ ions, including the six Ca 2+ ions in rCASQ1. Most of the low-affinity sites, some of which are μ-carboxylate-bridged, are established by the rotation of dimer interfaces, indicating cooperative Ca 2+ binding that is consistent with our atomic absorption spectroscopic data. On the basis of these findings, we propose a mechanism for the observed in vitro and in vivo dynamic high-capacity and low-affinity Ca 2+-binding activity of calsequestrin. © 2012 by The American Society for Biochemistry and Molecular Biology, Inc.
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CITATION STYLE
Sanchez, E. J., Lewis, K. M., Danna, B. R., & Kang, C. H. (2012). High-capacity Ca 2+ binding of human skeletal calsequestrin. Journal of Biological Chemistry, 287(14), 11592–11601. https://doi.org/10.1074/jbc.M111.335075
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