[1] Gill S S,Pulido O M,Mueller R W,et al.Molecular and immunochemical characterization of the ionotropic glutamate receptors in the rat heart[J].Brain Res Bull,1998,46(5):429-434. [2] Gill S S,Pulido O M,Mueller R W,et al.Immunochemical localization of the metabotropic glutamate receptors in the rat heart[J].Brain Res Bull,1999,48(2):143-146. [3] Moshal K S,Tipparaju S M,Vacek T P,et al.Mitochondrial matrix metalloproteinase activation decreases myocyte contractility in hyperhomocysteinemia[J].Am J Physiol Heart Circ Physiol,2008,295(2):H890-H897. [4] Xie D,Xiong K,Su X,et al.Identification of an endogenous glutamatergic transmitter system controlling excitability and conductivity of atrial cardiomyocytes[J].Cell Res,2021,31(9):951-964. [5] Xie D,Xiong K,Su X,et al.Memantine targets glutamate receptors in atrial cardiomyocytes to prevent and treat atrial fibrillation[J].Cell Discov,2022,8(1):76. [6] Mangoni M E,Nargeot J.Genesis and regulation of the heart automaticity[J].Physiol Rev,2008,88(3):919-982. [7] Chandler N J,Greener I D,Tellez J O,et al.Molecular architecture of the human sinus node:Insights into the function of the cardiac pacemaker[J].Circulation,2009,119(12):1562-1575. [8] Lakatta E G,Maltsev V A,Vinogradova T M.A coupled SYSTEM of intracellular Ca2+ clocks and surface membrane voltage clocks controls the timekeeping mechanism of the heart’s pacemaker[J].Circ Res,2010,106(4):659-673. [9] Vinogradova T M,Sirenko S,Lyashkov A E,et al.Constitutive phosphodiesterase activity restricts spontaneous beating rate of cardiac pacemaker cells by suppressing local Ca2+ releases[J].Circ Res,2008,102(7):761-769. [10] Vinogradova T M,Brochet D X P,Sirenko S,et al.Sarcoplasmic reticulum Ca2+ pumping kinetics regulates timing of local Ca2+ releases and spontaneous beating rate of rabbit sinoatrial node pacemaker cells[J].Circ Res,2010,107(6):767-775. [11] Zhu W,Wang C,Hu J,et al.Ankyrin-B Q1283H variant li-nked to arrhythmias via loss of local protein phosphatase 2A activity causes ryanodine receptor hyperphosphorylation[J].Circulation,2018,138(23):2682-2697. [12] Peyronnet R,Nerbonne J M,Kohl P.Cardiac mechano-gated ion channels and arrhythmias[J].Circ Res,2016,118(2):311-329. [13] Pulver S R,Griffith L C.Spike integration and cellular memory in a rhythmic network from Na+/K+ pump current dynamics[J].Nat Neurosci,2010,13(1):53-59. [14] O’Leary T,Williams A H,Franci A,et al.Cell types,network homeostasis,and pathological compensation from a biologically plausible ion channel expression model[J].Neuron,2014,82(4):809-821. [15] Morquette P,Verdier D,Kadala A,et al.An astrocyte-depe-ndent mechanism for neuronal rhythmogenesis[J].Nat Neurosci,2015,18(6):844-854. [16] Liang D,Xue Z,Xue J,et al.Sinoatrial node pacemaker cells share dominant biological properties with glutamatergic neurons[J].Protein Cell,2021,12(7):545-556. [17] Xie D,Xiong K,Su X,et al.Glutamate drives“local Ca2+ release”in cardiac pacemaker cells[J].Cell Res,2022,32(9):843-854. [18] Shen M J,Zipes D P.Role of the autonomic nervous system in modulating cardiac arrhythmias[J].Circ Res,2014,114(6):1004-1021. [19] Finlay M,Harmer S C,Tinker A.The control of cardiac ventricular excitability by autonomic pathways[J].Pharmacol Ther,2017,174:97-111. [20] Herring N,Kalla M,Paterson D J.The autonomic nervous sy-stem and cardiac arrhythmias:Current concepts and emerging therapies[J].Nat Rev Cardiol,2019,16(12):707-726. [21] Liang D,Zhou L,Zhou H,et al.A GABAergic system in atrioventricular node pacemaker cells controls electrical conduction between the atria and ventricles[J].Cell Res,2024,34(8):556-571. |