Calcium, neuronal hyperexcitability and ischemic injury

[1]  R. Gross,et al.  Barbiturates and nifedipine have different and selective effects on calcium currents of mouse DRG neurons in culture , 1988, Neurology.

[2]  A. Krumholz,et al.  Outcome from coma after cardiopulmonary resuscitation , 1988, Neurology.

[3]  J. Liebman,et al.  The N-methyl-d-aspartate antagonists CGS 19755 and CPP reduce ischemic brain damage in gerbils , 1988, Brain Research.

[4]  R. Gill,et al.  Systemic administration of MK-801 protects against ischemia-induced hippocampal neurodegeneration in the gerbil , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[5]  D. Prince,et al.  Effect of D890 on membrane properties of neocortical neurons , 1987, Brain Research.

[6]  Robert E. Anderson,et al.  Suppression of Pentylenetetrazole Seizures by Oral Administration of a Dihydropyridine Ca2+ Antagonist , 1987, Epilepsia.

[7]  D. A. Greenberg Calcium channels and calcium channel antagonists , 1987, Annals of neurology.

[8]  R. Shelton,et al.  Induction of seizures in mice by intracerebroventricular administration of the calcium channel agonist BAY k 8644 , 1987, Brain Research.

[9]  R. J. Miller,et al.  Multiple calcium channels and neuronal function. , 1987, Science.

[10]  G. Lnenicka,et al.  Structure and function in synapses: emerging correlations , 1986, Trends in Neurosciences.

[11]  R. Miller,et al.  Widespread distribution of dihydropyridine-sensitive calcium channels in the central nervous system. , 1986, Molecular pharmacology.

[12]  J. Barrett,et al.  Effects of ischemia-like conditions on cultured neurons: protection by low Na+, low Ca2+ solutions , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[13]  Robert E. Anderson,et al.  Inhibition of electrically induced seizures by a dihydropyridine calcium channel blocker , 1986, Brain Research.

[14]  F. Pierelli,et al.  Antiepileptic Effects of a Calcium Antagonist (Nimodipine) on Cefazolin‐Induced Epileptogenic Foci in Rabbits , 1986, Epilepsia.

[15]  D. Kendall,et al.  Receptors and phosphoinositide metabolism in the central nervous system. , 1986, Biochemical pharmacology.

[16]  R. Allan,et al.  Isothiouronium compounds as γ‐aminobutyric acid agonists , 1986 .

[17]  R. Anderson,et al.  Selective central nervous system calcium channel blockers--a new class of anticonvulsant agents. , 1986, Mayo Clinic proceedings.

[18]  P. Gean,et al.  Calcitonin and calcitonin gene-related peptide enhance calcium-dependent potentials , 1986, Brain Research.

[19]  G. Holz,et al.  GTP-binding proteins mediate transmitter inhibition of voltage-dependent calcium channels , 1986, Nature.

[20]  K. Murase,et al.  Substance P augments a persistent slow inward calcium-sensitive current in voltage-clamped spinal dorsal horn neurons of the rat , 1986, Brain Research.

[21]  R. Zucker,et al.  Mechanism of transmitter release: voltage hypothesis and calcium hypothesis. , 1986, Science.

[22]  J. Olney,et al.  Glutamate and the pathophysiology of hypoxic–ischemic brain damage , 1986, Annals of neurology.

[23]  J. Putney,et al.  A model for receptor-regulated calcium entry. , 1986, Cell calcium.

[24]  D. Greenberg,et al.  Inactivation of 45Ca2+ uptake by prior depolarization of PC12 cells , 1985, Neuroscience Letters.

[25]  T. Wieloch Hypoglycemia-induced neuronal damage prevented by an N-methyl-D-aspartate antagonist. , 1985, Science.

[26]  C. Binnie,et al.  Open Dose‐Ranging Trial of Flunarizine as Add‐On Therapy in Epilepsy , 1985, Epilepsia.

[27]  O. Witte,et al.  Suppression of focal epileptiform discharges by intraventricular perfusion of a calcium antagonist. , 1985, Electroencephalography and clinical neurophysiology.

[28]  T. Wieloch,et al.  Ischemic Brain Damage in Rats following Cardiac Arrest Using a Long-Term Recovery Model , 1985, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.

[29]  N. Green,et al.  Amino-acid sequence of a Ca2+ + Mg2+ -dependent ATPase from rabbit muscle sarcoplasmic reticulum, deduced from its complementary DNA sequence , 1985, Nature.

[30]  D. Choi,et al.  Glutamate neurotoxicity in cortical cell culture is calcium dependent , 1985, Neuroscience Letters.

[31]  S. Joseph Receptor-stimulated phosphoinositide metabolism: a role for GTP-binding proteins? , 1985 .

[32]  T. Yanagihara,et al.  Repetitive involuntary movement associated with episodic cerebral ischemia , 1985, Annals of neurology.

[33]  R. Tsien,et al.  Three types of neuronal calcium channel with different calcium agonist sensitivity , 1985, Nature.

[34]  P. Greengard,et al.  Protein Phosphorylation and Neuronal Function , 1985, Journal of neurochemistry.

[35]  D. Prince Physiological Mechanisms of Focal Epileptogenesis , 1985, Epilepsia.

[36]  S. Rothman The neurotoxicity of excitatory amino acids is produced by passive chloride influx , 1985, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[37]  N. Dun,et al.  Prostaglandin E1 inhibits calcium-dependent potentials in mammalian sympathetic neurons , 1985, Brain Research.

[38]  R Llinás,et al.  Intraterminal injection of synapsin I or calcium/calmodulin-dependent protein kinase II alters neurotransmitter release at the squid giant synapse. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[39]  R. Tsien,et al.  Long-opening mode of gating of neuronal calcium channels and its promotion by the dihydropyridine calcium agonist Bay K 8644. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[40]  W. Catterall,et al.  Phosphorylation of the calcium antagonist receptor of the voltage-sensitive calcium channel by cAMP-dependent protein kinase. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[41]  S. Snyder,et al.  Protein kinase C regulates ionic conductance in hippocampal pyramidal neurons: electrophysiological effects of phorbol esters. , 1985, Proceedings of the National Academy of Sciences of the United States of America.

[42]  M. Ingvar,et al.  Extra- and Intracellular pH in the Brain during Seizures and in the Recovery Period following the Arrest of Seizure Activity , 1985, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.

[43]  P. Greengard,et al.  Enhancement of calcium current in Aplysia neurones by phorbol ester and protein kinase C , 1985, Nature.

[44]  A. G. Filoteo,et al.  Regulation of plasma membrane Ca2+ ATPases by lipids of the phosphatidylinositol cycle. , 1984, Biochemical and biophysical research communications.

[45]  Michael J. Berridge,et al.  Inositol trisphosphate, a novel second messenger in cellular signal transduction , 1984, Nature.

[46]  B. Meldrum,et al.  Blockade of N-methyl-D-aspartate receptors may protect against ischemic damage in the brain. , 1984, Science.

[47]  D. Greenberg,et al.  Phenytoin interacts with calcium channels in brain membrances , 1984 .

[48]  M. Segal,et al.  A Ca-dependent Cl− conductance in cultured mouse spinal neurones , 1984, Nature.

[49]  A. Martonosi Mechanisms of Ca2+ release from sarcoplasmic reticulum of skeletal muscle. , 1984, Physiological reviews.

[50]  J. Korf,et al.  Regional Calcium Accumulation and Cation Shifts in Rat Brain by Kainate , 1984, Journal of neurochemistry.

[51]  S. Rothman Synaptic release of excitatory amino acid neurotransmitter mediates anoxic neuronal death , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.

[52]  B. Meldrum,et al.  KAINIC ACID SEIZURES AND THE REVERSIBILITY OF CALCIUM LOADING IN VULNERABLE NEURONS IN THE HIPPOCAMPUS , 1984, Neuropathology and applied neurobiology.

[53]  H. Rasmussen,et al.  Calcium messenger system: an integrated view. , 1984, Physiological reviews.

[54]  C. C. Hale,et al.  The stoichiometry of the cardiac sodium-calcium exchange system. , 1984, The Journal of biological chemistry.

[55]  M. Mayer,et al.  Voltage-dependent block by Mg2+ of NMDA responses in spinal cord neurones , 1984, Nature.

[56]  G. Fagg,et al.  Acidic amino acid binding sites in mammalian neuronal membranes: their characteristics and relationship to synaptic receptors , 1984, Brain Research Reviews.

[57]  P. Kostyuk,et al.  Intracellular protein kinase and calcium inward currents in perfused neurones of the snail helix pomatia , 1984, Neuroscience.

[58]  J. Louvel,et al.  Fast extracellular calcium transients: involvement in epileptic processes. , 1983, Science.

[59]  B. Meldrum,et al.  Intracellular calcium accumulation in rat hippocampus during seizures induced by bicuculline orl-allylglycine , 1983, Neuroscience.

[60]  S. Alemany,et al.  What is the function of phospholipid N-methylation? , 1983, The Biochemical journal.

[61]  R. S. Sloviter “Epileptic” brain damage in rats induced by sustained electrical stimulation of the perforant path. I. Acute electrophysiological and light microscopic studies , 1983, Brain Research Bulletin.

[62]  S. Rothman Synaptic activity mediates death of hypoxic neurons. , 1983, Science.

[63]  D. A. Brown,et al.  Persistent slow inward calcium current in voltage‐clamped hippocampal neurones of the guinea‐pig. , 1983, The Journal of physiology.

[64]  D. A. Brown,et al.  Calcium‐activated outward current in voltage‐clamped hippocampal neurones of the guinea‐pig. , 1983, The Journal of physiology.

[65]  H. Reuter Calcium channel modulation by neurotransmitters, enzymes and drugs , 1983, Nature.

[66]  J. Olney,et al.  Seizure-related brain damage induced by cholinergic agents , 1983, Nature.

[67]  U. Heinemann,et al.  Aspartate and glutamate induced reductions in extracellular free calcium and sodium concentration in area CA1 of ‘in vitro’ hippocampal slices of rats , 1983, Neuroscience Letters.

[68]  J. T. Penniston PLASMA MEMBRANE Ca2+‐PUMPING ATPases * , 1982, Annals of the New York Academy of Sciences.

[69]  D. Mcintyre,et al.  A new model of partial status epilepticus based on kindling , 1982, Brain Research.

[70]  R. C. Collins,et al.  Focal cortical seizures cause distant thalamic lesions. , 1982, Science.

[71]  J. Miller,et al.  Immunohistochemical localization of calcium-binding protein in the cerebellum, hippocampal formation and olfactory bulb of the rat , 1982, Brain Research.

[72]  F. Hofmann,et al.  Injection of subunits of cyclic AMP-dependent protein kinase into cardiac myocytes modulates Ca2+ current , 1982, Nature.

[73]  W. Pulsinelli,et al.  The response of GABAergic and cholinergic neurons to transient cerebral ischemia , 1982, Brain Research.

[74]  B. Meldrum,et al.  Intracelular sites of early calcium accumulation in the rat hippocampus during status epilepticus , 1982, Neuroscience Letters.

[75]  T. Yanagihara,et al.  Ionic shift in cerebral ischemia. , 1982, Life sciences.

[76]  B. Meldrum,et al.  Anticonvulsant action of excitatory amino acid antagonists. , 1982, Science.

[77]  Delorenzo Rj Calmodulin in neurotransmitter release and synaptic function. , 1982, Federation proceedings.

[78]  Fred Plum,et al.  Temporal profile of neuronal damage in a model of transient forebrain ischemia , 1982, Annals of neurology.

[79]  R. Traub Simulation of intrinsic bursting in CA3 hippocampal neurons , 1982, Neuroscience.

[80]  L Cocito,et al.  Epileptic seizures in cerebral arterial occlusive disease. , 1982, Stroke.

[81]  J. Hoek,et al.  Role of calcium in the hormonal regulation of liver metabolism. , 1981, Biochimica et biophysica acta.

[82]  M Ingvar,et al.  Metabolic Changes in Cerebral Cortex, Hippocampus, and Cerebellum During Sustained Bicuculline‐Induced Seizures , 1981, Journal of neurochemistry.

[83]  R. Llinás,et al.  Are the presynaptic membrane particles the calcium channels? , 1981, Proceedings of the National Academy of Sciences of the United States of America.

[84]  F. Crews,et al.  Rat basophilic leukemia cell lines defective in phospholipid methyltransferase enzymes, Ca2+ influx, and histamine release: reconstitution by hybridization. , 1981, Proceedings of the National Academy of Sciences of the United States of America.

[85]  A. Ngai,et al.  The Role of Adenosine in the Regulation of Cerebral Blood Flow , 1981, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.

[86]  G. Fischbach,et al.  Neurotransmitters decrease the calcium conductance activated by depolarization of embryonic chick sensory neurones. , 1981, The Journal of physiology.

[87]  J. Pincus,et al.  Calcium uptake mechanisms affected by some convulsant and anticonvulsant drugs , 1981, Brain Research.

[88]  R. Llinás,et al.  Electrophysiology of mammalian inferior olivary neurones in vitro. Different types of voltage‐dependent ionic conductances. , 1981, The Journal of physiology.

[89]  B. Siesjö Cell Damage in the Brain: A Speculative Synthesis , 1981, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.

[90]  A. Artru,et al.  Anoxic Cerebral Potassium Accumulation Reduced by Phenytoin: Mechanism of Cerebral Protection? , 1981, Anesthesia and analgesia.

[91]  T. Sundt,et al.  Correlation of intracellular redox states and pH with blood flow in primary and secondary seizure foci , 1980, Annals of neurology.

[92]  T. Powell,et al.  Selective degeneration of interneurons in the motor cortex of infant monkeys following controlled hypoxia: a possible cause of epilepsy , 1980, Brain Research.

[93]  D. Johnston,et al.  Voltage clamp discloses slow inward current in hippocampal burst-firing neurones , 1980, Nature.

[94]  A. Artru,et al.  Cerebral Protective, Metabolic, and Vascular Effects of Phenytoin , 1980, Stroke.

[95]  F. Domer,et al.  A Gerbil Model of Cerebral Ischemia Suitable for Drug Evaluation , 1980, Stroke.

[96]  K. Yamada,et al.  Ischemic cerebral edema in primates: effects of acetazolamide, phenytoin, sorbitol, dexamethasone, and methylprednisolone on brain water and electrolytes. , 1980, Neurosurgery.

[97]  W. Y. Cheung,et al.  Calmodulin plays a pivotal role in cellular regulation. , 1980, Science.

[98]  J. Tallman,et al.  Benzodiazepine and β-adrenergic receptor ligands independently stimulate phospholipid methylation , 1979, Nature.

[99]  J. Farber,et al.  Calcium dependence of toxic cell death: a final common pathway. , 1979, Science.

[100]  Y. Ben‐Ari,et al.  A new model of focal status epilepticus: intra-amygdaloid application of kainic acid elicits repetitive secondarily generalized convulsive seizures , 1979, Brain Research.

[101]  F. Plum,et al.  Selective chromatolysis of neurons in the gerbil brain: A possible consequence of “epileptic” activity produced by common carotid artery occlusion , 1979, Annals of neurology.

[102]  D. Prince,et al.  Participation of calcium spikes during intrinsic burst firing in hippocampal neurons , 1978, Brain Research.

[103]  B. Siesjö,et al.  Epileptic brain damage: the role of systemic factors that modify cerebral energy metabolism. , 1978, Brain : a journal of neurology.

[104]  J. Michenfelder,et al.  Cerebral Protection with Barbiturates Relation to Anesthetic Effect , 1978, Stroke.

[105]  D. Heuser The significance of cortical extracellular H+, K+ and Ca2+ activities for regulation of local cerebral blood flow under conditions of enhanced neuronal activity. , 1978, Ciba Foundation symposium.

[106]  P. Schwartzkroin,et al.  Probable calcium spikes in hippocampal neurons , 1977, Brain Research.

[107]  T. Duffy,et al.  CEREBRAL ENERGY METABOLISM DURING TRANSIENT ISCHEMIA AND RECOVERY IN THE GERBIL 1 , 1977, Journal of neurochemistry.

[108]  B. Meldrum,et al.  Cerebral blood flow and metabolic rate early and late in prolonged epileptic seizures induced in rats by bicuculline. , 1976, Brain : a journal of neurology.

[109]  T. Sundt,et al.  Cerebral protection by barbiturate anesthesia. Use after middle cerebral artery occlusion in Java monkeys. , 1976, Archives of neurology.

[110]  F. Plum,et al.  CEREBRAL ENERGY METABOLISM DURING EXPERIMENTAL STATUS EPILEPTICUS 1 , 1975, Advances in neurology.

[111]  J. Hoff,et al.  Barbiturate Protection From Cerebral Infarction in Primates , 1975, Stroke.

[112]  F Plum,et al.  Cerebral energy metabolism, pH, and blood flow during seizures in the cat. , 1974, The American journal of physiology.

[113]  J. Robinson,et al.  Factors influencing calcium movements in rat brain slices. , 1971, The American journal of physiology.

[114]  J. Pincus,et al.  Studies on the mechanism of action of diphenylhydantoin. , 1970, Archives of neurology.

[115]  B. Katz,et al.  Further study of the role of calcium in synaptic transmission , 1970, The Journal of physiology.

[116]  B. Katz,et al.  Spontaneous and evoked activity of motor nerve endings in calcium Ringer , 1969, The Journal of physiology.

[117]  F. Mcdowell,et al.  Epileptic seizures in nonembolic cerebral infarction. , 1967, Archives of neurology.

[118]  C. A. Marsan,et al.  CORTICAL CELLULAR PHENOMENA IN EXPERIMENTAL EPILEPSY: INTERICTAL MANIFESTATIONS. , 1964, Experimental neurology.

[119]  R. Tsien,et al.  Dominant role of N-type Ca2+ channels in evoked release of norepinephrine from sympathetic neurons. , 1988, Science.

[120]  Robert E. Anderson,et al.  Anticonvulsant Properties of Dihydropyridine Calcium Antagonists , 1988 .

[121]  D. Triggle,et al.  Drug action and cellular calcium regulation , 1987 .

[122]  O. Witte,et al.  Motor cortical epileptic foci in vivo: actions of a calcium channel blocker on paroxysmal neuronal depolarizations. , 1987, Electroencephalography and clinical neurophysiology.

[123]  Meldrum Bs Cell damage in epilepsy and the role of calcium in cytotoxicity. , 1986 .

[124]  Stephen J. Smith,et al.  NMDA-receptor activation increases cytoplasmic calcium concentration in cultured spinal cord neurones , 1986, Nature.

[125]  B. Siesjö,et al.  Epileptic brain damage: pathophysiology and neurochemical pathology. , 1986, Advances in neurology.

[126]  R. Macdonald,et al.  Adenosine agonists reduce voltage‐dependent calcium conductance of mouse sensory neurones in cell culture. , 1986, The Journal of physiology.

[127]  T. Wieloch Neurochemical correlates to selective neuronal vulnerability. , 1985, Progress in brain research.

[128]  J. Olney Excitatory transmitters and epilepsy-related brain damage. , 1985, International review of neurobiology.

[129]  U. Heinemann,et al.  Stimulus- and amino acid-induced calcium and potassium changes in rat neocortex. , 1985, Journal of neurophysiology.

[130]  B. Gähwiler,et al.  Calcium Currents in Mammalian Central Neurones , 1985 .

[131]  B. Siesjö Acid-base homeostasis in the brain: physiology, chemistry, and neurochemical pathology. , 1985, Progress in brain research.

[132]  M. Wahl Local Chemical, Neural, and Humoral Regulation of Cerebrovascular Resistance Vessels , 1985, Journal of cardiovascular pharmacology.

[133]  W. Pulsinelli Selective neuronal vulnerability: morphological and molecular characteristics. , 1985, Progress in brain research.

[134]  G Inesi,et al.  Mechanism of calcium transport. , 1985, Annual review of physiology.

[135]  Michenfelder Jd Cerebral preservation for intraoperative focal ischemia. , 1985 .

[136]  L. Hokin Receptors and phosphoinositide-generated second messengers. , 1985, Annual review of biochemistry.

[137]  A. Somlyo Cellular site of calcium regulation , 1984 .

[138]  R. Eckert,et al.  Inactivation of Ca channels. , 1984, Progress in biophysics and molecular biology.

[139]  R. Delorenzo Calmodulin systems in neuronal excitability: a molecular approach to epilepsy. , 1984, Annals of neurology.

[140]  R. C. Collins,et al.  Status epilepticus in the limbic system: biochemical and pathological changes. , 1983, Advances in neurology.

[141]  R. Kelly,et al.  A molecular description of nerve terminal function. , 1983, Annual review of biochemistry.

[142]  T. Dunwiddie,et al.  Sedative and anticonvulsant effects of adenosine analogs in mouse and rat. , 1982, The Journal of pharmacology and experimental therapeutics.

[143]  H. Krause,et al.  Behavioral effects of nimodipine in animals. , 1982, Arzneimittel-Forschung.

[144]  A. Borle Control, Modulation, and regulation of cell calcium. , 1981, Reviews of physiology, biochemistry and pharmacology.