The structural basis of ryanodine receptor ion channel function

被引:161
作者
Meissner, Gerhard [1 ]
机构
[1] Univ N Carolina, Sch Med, Dept Biochem & Biophys, Chapel Hill, NC 27599 USA
关键词
CALCIUM-RELEASE CHANNEL; MUSCLE SARCOPLASMIC-RETICULUM; RABBIT SKELETAL-MUSCLE; JUNCTIONAL TERMINAL CISTERNAE; CALMODULIN-BINDING SITES; SR CA2+ RELEASE; CARDIAC-MUSCLE; CA-2+ RELEASE; DIHYDROPYRIDINE RECEPTORS; SINGLE-CHANNEL;
D O I
10.1085/jgp.201711878
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Large-conductance Ca2+ release channels known as ryanodine receptors (RyRs) mediate the release of Ca2+ from an intracellular membrane compartment, the endo/sarcoplasmic reticulum. There are three mammalian RyR iso-forms: RyR1 is present in skeletal muscle; RyR2 is in heart muscle; and RyR3 is expressed at low levels in many tissues including brain, smooth muscle, and slow-twitch skeletal muscle. RyRs form large protein complexes comprising four 560-kD RyR subunits, four similar to 12-kD FK506-binding proteins, and various accessory proteins including calmodulin, protein kinases, and protein phosphatases. RyRs share similar to 70% sequence identity, with the greatest sequence similarity in the C-terminal region that forms the transmembrane, ion-conducting domain comprising similar to 500 amino acids. The remaining similar to 4,500 amino acids form the large regulatory cytoplasmic "foot" structure. Experimental evidence for Ca2+, ATP, phosphorylation, and redox-sensitive sites in the cytoplasmic structure have been described. Exogenous effectors include the two Ca2+ releasing agents caffeine and ryanodine. Recent work describing the near atomic structures of mammalian skeletal and cardiac muscle RyRs provides a structural basis for the regulation of the RyRs by their multiple effectors.
引用
收藏
页码:1065 / 1089
页数:25
相关论文
共 50 条
  • [21] Ryanodine Receptor as Insecticide Target
    Samurkas, Arthur
    Yao, Li
    Hadiatullah, Hadiatullah
    Ma, Ruifang
    Xie, Yunxuan
    Sundarraj, Rajamanikandan
    Zuilhof, Han
    Yuchi, Zhiguang
    CURRENT PHARMACEUTICAL DESIGN, 2022, 28 (01) : 26 - 35
  • [22] Developing new anti-arrhythmics:: Clues from the molecular basis of cardiac ryanodine receptor (RyR2) Ca2+-release channel dysfunction
    George, Christopher H.
    Lai, F. Anthony
    CURRENT PHARMACEUTICAL DESIGN, 2007, 13 (31) : 3195 - 3211
  • [23] Ryanodine Receptors: Structure and Function
    Van Petegem, Filip
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (38) : 31624 - 31632
  • [24] The N-Terminal Region of the Ryanodine Receptor Affects Channel Activation
    Faltinova, Andrea
    Tomaskova, Natasa
    Antalik, Marian
    Sevcik, Jozef
    Zahradnikova, Alexandra
    FRONTIERS IN PHYSIOLOGY, 2017, 8
  • [25] Modification of ryanodine receptor/Ca2+ release channel with dinitrofluorobenzene
    Hadad, N
    Feng, W
    Shoshan-Barmatz, V
    BIOCHEMICAL JOURNAL, 1999, 342 : 239 - 248
  • [26] Effect of sphingosylphosphorylcholine on the single channel gating properties of the cardiac ryanodine receptor
    Uehara, A
    Yasukochi, M
    Imanaga, I
    Berlin, JR
    FEBS LETTERS, 1999, 460 (03) : 467 - 471
  • [27] Ryanodine receptor mutations in arrhythmias: advances in understanding the mechanisms of channel dysfunction
    Thomas, N. L.
    George, C. H.
    Williams, A. J.
    Lai, F. A.
    BIOCHEMICAL SOCIETY TRANSACTIONS, 2007, 35 : 946 - 951
  • [28] Physiological and pathological modulation of ryanodine receptor function in cardiac muscle
    Eisner, DA
    Díaz, ME
    O'Neill, SC
    Trafford, AW
    CELL CALCIUM, 2004, 35 (06) : 583 - 589
  • [29] Isolated Cardiac Ryanodine Receptor Function Varies Between Mammals
    Catherine Carvajal
    Jiajie Yan
    Alma Nani
    Jaime DeSantiago
    Xiaoping Wan
    Isabelle Deschenes
    Xun Ai
    Michael Fill
    The Journal of Membrane Biology, 2024, 257 : 25 - 36
  • [30] Isolated Cardiac Ryanodine Receptor Function Varies Between Mammals
    Carvajal, Catherine
    Yan, Jiajie
    Nani, Alma
    DeSantiago, Jaime
    Wan, Xiaoping
    Deschenes, Isabelle
    Ai, Xun
    Fill, Michael
    JOURNAL OF MEMBRANE BIOLOGY, 2024, 257 (1-2) : 25 - 36