Rem uncouples excitation–contraction coupling in adult skeletal muscle fibers
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Donald Beqollari | Christin F. Romberg | Dilyana Filipova | Ulises Meza | Symeon Papadopoulos | Roger A. Bannister | D. Filipova | R. Bannister | S. Papadopoulos | U. Meza | D. Beqollari | C. F. Romberg
[1] C. Franzini-armstrong,et al. Skeletal muscle excitation–contraction coupling is independent of a conserved heptad repeat motif in the C-terminus of the DHPRβ1a subunit , 2010, Cell calcium.
[2] Hanh T. Nguyen,et al. Enhanced dihydropyridine receptor channel activity in the presence of ryanodine receptor , 1996, Nature.
[3] J. Nakai,et al. Localization in the II-III Loop of the Dihydropyridine Receptor of a Sequence Critical for Excitation-Contraction Coupling* , 1998, The Journal of Biological Chemistry.
[4] K. Beam,et al. Rem inhibits skeletal muscle EC coupling by reducing the number of functional L-type Ca2+ channels. , 2008, Biophysical journal.
[5] Michel De Waard,et al. Maurocalcine and Peptide A Stabilize Distinct Subconductance States of Ryanodine Receptor Type 1, Revealing a Proportional Gating Mechanism* , 2003, The Journal of Biological Chemistry.
[6] C. Franzini-armstrong,et al. Domain cooperativity in the β1a subunit is essential for dihydropyridine receptor voltage sensing in skeletal muscle , 2013, Proceedings of the National Academy of Sciences.
[7] W. Hunziker,et al. Nuclear Localization of Endogenous RGK Proteins and Modulation of Cell Shape Remodeling by Regulated Nuclear Transport , 2007, Traffic.
[8] P. Brehm,et al. Acetylcholine Receptors Direct Rapsyn Clusters to the Neuromuscular Synapse in Zebrafish , 2004, The Journal of Neuroscience.
[9] Amy D. Hanna,et al. Ca2+ permeation and/or binding to CaV1.1 fine-tunes skeletal muscle Ca2+ signaling to sustain muscle function , 2015, Skeletal Muscle.
[10] P. Powers,et al. Reduced Ca2+ current, charge movement, and absence of Ca2+ transients in skeletal muscle deficient in dihydropyridine receptor beta 1 subunit. , 1996, Biophysical journal.
[11] Tingting Yang,et al. Distinct RGK GTPases Differentially Use α1- and Auxiliary β-Binding-Dependent Mechanisms to Inhibit CaV1.2/CaV2.2 Channels , 2012, PloS one.
[12] W. Chandler,et al. Voltage Dependent Charge Movement in Skeletal Muscle: a Possible Step in Excitation–Contraction Coupling , 1973, Nature.
[13] M. Quinonez,et al. Functional expression of transgenic α1sDHPR channels in adult mammalian skeletal muscle fibres , 2011, The Journal of physiology.
[14] Y. Suhail,et al. Genetically encoded molecules for inducibly inactivating CaV channels. , 2007, Nature chemical biology.
[15] K. Geering,et al. Regulation of Ca2+ channel expression at the cell surface by the small G-protein kir/Gem , 2001, Nature.
[16] D. Zimmer,et al. The Qγ component of intra‐membrane charge movement is present in mammalian muscle fibres, but suppressed in the absence of S100A1 , 2009, The Journal of physiology.
[17] K. Beam,et al. Relationship of calcium transients to calcium currents and charge movements in myotubes expressing skeletal and cardiac dihydropyridine receptors , 1994, The Journal of general physiology.
[18] N. Norris,et al. A dihydropyridine receptor alpha1s loop region critical for skeletal muscle contraction is intrinsically unstructured and binds to a SPRY domain of the type 1 ryanodine receptor. , 2009, The international journal of biochemistry & cell biology.
[19] K. Beam,et al. Looking for answers to EC coupling’s persistent questions , 2010, The Journal of general physiology.
[20] G. Zamponi,et al. Solution NMR and calorimetric analysis of Rem2 binding to the Ca2+ channel β4 subunit: a low affinity interaction is required for inhibition of Cav2.1 Ca2+ currents , 2015, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[21] E. Marbán,et al. Creation of a Genetic Calcium Channel Blocker by Targeted Gem Gene Transfer in the Heart , 2004, Circulation research.
[22] K. Beam,et al. Conformational activation of Ca2+ entry by depolarization of skeletal myotubes. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[23] R. Bannister,et al. RGK protein-mediated impairment of slow depolarization- dependent Ca2+ entry into developing myotubes , 2014, Channels.
[24] M. Casarotto,et al. Skeletal muscle excitation-contraction coupling: who are the dancing partners? , 2014, The international journal of biochemistry & cell biology.
[25] N. Ikemoto,et al. Identification of the minimum essential region in the II-III loop of the dihydropyridine receptor alpha 1 subunit required for activation of skeletal muscle-type excitation-contraction coupling. , 1998, Biochemistry.
[26] V. Sorrentino,et al. Imperatoxin a enhances Ca(2+) release in developing skeletal muscle containing ryanodine receptor type 3. , 2002, Biophysical journal.
[27] C. Franzini-armstrong,et al. Amino Acid Residues 489–503 of Dihydropyridine Receptor (DHPR) β1a Subunit Are Critical for Structural Communication between the Skeletal Muscle DHPR Complex and Type 1 Ryanodine Receptor* , 2014, The Journal of Biological Chemistry.
[28] Tingting Yang,et al. Regulation of voltage-dependent calcium channels by RGK proteins. , 2013, Biochimica et biophysica acta.
[29] Tingting Yang,et al. Rem, a member of the RGK GTPases, inhibits recombinant CaV1.2 channels using multiple mechanisms that require distinct conformations of the GTPase , 2010, The Journal of physiology.
[30] K. Beam,et al. Ca(V)1.1: The atypical prototypical voltage-gated Ca²⁺ channel. , 2013, Biochimica et biophysica acta.
[31] R. Bannister,et al. Potent inhibition of L-type Ca2+ currents by a Rad variant associated with congestive heart failure. , 2013, Biochemical and biophysical research communications.
[32] Functional assessment of three Rem residues identified as critical for interactions with Ca2+ channel β subunits , 2015, Pflügers Archiv - European Journal of Physiology.
[33] K. Beam,et al. Excitation–contraction coupling is unaffected by drastic alteration of the sequence surrounding residues L720–L764 of the α1S II-III loop , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[34] Ji Young Kim,et al. Adrenergic Signaling Controls RGK-Dependent Trafficking of Cardiac Voltage-Gated L-Type Ca2+ Channels Through PKD1 , 2012, Circulation research.
[35] P. Allen,et al. Chemical synthesis and characterization of maurocalcine, a scorpion toxin that activates Ca2+ release channel/ryanodine receptors , 2000, FEBS letters.
[36] B. Adams,et al. Regions of the skeletal muscle dihydropyridine receptor critical for excitation–contraction coupling , 1990, Nature.
[37] C. Franzini-armstrong,et al. The beta 1a subunit is essential for the assembly of dihydropyridine-receptor arrays in skeletal muscle. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[38] Jeffery W. Walker,et al. Activation of Ryanodine Receptors by Imperatoxin A and a Peptide Segment of the II-III Loop of the Dihydropyridine Receptor* , 1999, The Journal of Biological Chemistry.
[39] M. Ronjat,et al. Interaction between the dihydropyridine receptor Ca2+ channel beta-subunit and ryanodine receptor type 1 strengthens excitation-contraction coupling. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[40] D. Andres,et al. Regulation of voltage-gated calcium channel activity by the Rem and Rad GTPases , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[41] S. Ikeda,et al. Ancient Origins of RGK Protein Function: Modulation of Voltage-Gated Calcium Channels Preceded the Protostome and Deuterostome Split , 2014, PloS one.
[42] M. Casarotto,et al. The β(1a) subunit of the skeletal DHPR binds to skeletal RyR1 and activates the channel via its 35-residue C-terminal tail. , 2011, Biophysical journal.
[43] K. Beam,et al. Restoration of excitation—contraction coupling and slow calcium current in dysgenic muscle by dihydropyridine receptor complementary DNA , 1988, Nature.
[44] L. Weaver,et al. An α‐helical C‐terminal tail segment of the skeletal L‐type Ca2+ channel β1a subunit activates ryanodine receptor type 1 via a hydrophobic surface , 2012, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[45] E. Ríos,et al. Involvement of dihydropyridine receptors in excitation–contraction coupling in skeletal muscle , 1987, Nature.
[46] M. Messi,et al. Patch-clamp recording of charge movement, Ca2+ current, and Ca2+ transients in adult skeletal muscle fibers. , 1999, Biophysical journal.
[47] K. Beam,et al. Mapping Sites of Potential Proximity between the Dihydropyridine Receptor and RyR1 in Muscle Using a Cyan Fluorescent Protein-Yellow Fluorescent Protein Tandem as a Fluorescence Resonance Energy Transfer Probe*[boxs] , 2004, Journal of Biological Chemistry.
[48] A. Dulhunty,et al. β1a490-508, a 19-residue peptide from C-terminal tail of Cav1.1 β1a subunit, potentiates voltage-dependent calcium release in adult skeletal muscle fibers. , 2014, Biophysical journal.
[49] K. Beam,et al. Organization of Calcium Channel β1a Subunits in Triad Junctions in Skeletal Muscle* , 2006, Journal of Biological Chemistry.
[50] W. Hunziker,et al. RGK Small GTP-binding Proteins Interact with the Nucleotide Kinase Domain of Ca2+-channel β-Subunits via an Uncommon Effector Binding Domain* , 2007, Journal of Biological Chemistry.
[51] D. Andres,et al. Analysis of the Complex between Ca2+ Channel β-Subunit and the Rem GTPase* , 2006, Journal of Biological Chemistry.
[52] C. Franzini-armstrong,et al. Proper Restoration of Excitation-Contraction Coupling in the Dihydropyridine Receptor β1-null Zebrafish Relaxed Is an Exclusive Function of the β1a Subunit* , 2009, Journal of Biological Chemistry.
[53] P. Powers,et al. Absence of the β subunit (cchb1) of the skeletal muscle dihydropyridine receptor alters expression of the α1 subunit and eliminates excitation-contraction coupling , 1996 .
[54] K. Beam,et al. Bimolecular fluorescence complementation and targeted biotinylation provide insight into the topology of the skeletal muscle Ca2+ channel β1a subunit , 2012, Channels.
[55] S. Cannon,et al. A calcium channel mutant mouse model of hypokalemic periodic paralysis. , 2012, The Journal of clinical investigation.
[56] Julio L. Vergara,et al. Voltage-dependent Dynamic FRET Signals from the Transverse Tubules in Mammalian Skeletal Muscle Fibers , 2007, The Journal of general physiology.
[57] John Szpyt,et al. Three-Dimensional Localization of the α and β Subunits and of the II-III Loop in the Skeletal Muscle L-type Ca2+ Channel* , 2012, The Journal of Biological Chemistry.
[58] R. Bannister,et al. Differential effects of RGK proteins on L-type channel function in adult mouse skeletal muscle. , 2014, Biophysical journal.
[59] L. Xu,et al. Activation of the skeletal muscle calcium release channel by a cytoplasmic loop of the dihydropyridine receptor. , 1994, The Journal of biological chemistry.