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Male Sprague–Dawley rats, weightng 300 g at the start of the experiment, were used in an experiment described in the chapter. They were group housed in standard laboratory cages with unlimited access to water and standard laboratory food. Room temperature was maintained at 21°C and a 12:12 light\u002Fdark cycle was in effect. The rats received a micro-injection of 6-hydroxydopamine (6-OHDA) into the left medial forebrain bundle to destroy the ascending dopamine (DA) projections. The rats were evaluated for their turning behavior after a challenge both with apomorphine (APO) (0.5 mg\u002Fkg s.c.) and, separately, with amphetamine (AMPH) (5 mg\u002Fkg i.p.) This behavioral testing was performed before transplantation and again at least 3 months following transplantation. All the rats successfully lesioned with 6-OHDA showed strong ipsilateral and contralateral turning behavior after challenge, respectively, with AMPH and APO. The DA content in the transplant itself was higher than that of the adjacent 6-OHDA lesioned striatum, with a significant difference between the transplants of the compensated as compared to that of the noncompensated rats.",{"EN":55},"Chapter 52 Differential regulation of dopamine metabolism in solid fetal substantia nigra transplants and their terminals in the host striatum",{"VOID":57},"10.1016\u002FS0079-6123(08)62635-7","PUBLICATION",2,"https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0079612308626357",[62,70],{"id":63,"sortIndex":19,"researcher":18,"roles":64,"affiliations":66,"properties":67},"907d1ffc-c1da-411a-963d-040de3b8ab24",[65],"AUTHOR",[],{"title":68},{"VI":69},"Meloni  Rolando",{"id":71,"sortIndex":19,"researcher":18,"roles":72,"affiliations":73,"properties":74},"a4899607-c4b7-48b7-8bd5-b20d85e6f831",[65],[],{"title":75},{"VI":76},"Gale  Karen","ARTICLE",{"url":60,"publisher":79,"properties":93},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":80,"slug":10,"properties":81,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":84,"manageAffiliations":85,"indexDatabases":86,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":82,"title":83},{"VOID":13},{"EN":15},[],[],[87],{"id":24,"indexDatabase":88,"url":37,"indexYears":38,"academicFieldIds":18,"indexDatabaseRanking":39},{"id":26,"createTime":27,"updateTime":28,"relativeEntities":89,"label":90,"description":91,"key":34,"publicationTags":92,"standard":18},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"volume":94,"pages":96},{"VOID":95},"82",{"VOID":97},"467","1990-12-31",1990,false,{"id":102,"createTime":103,"updateTime":103,"relativeEntities":104,"slug":18,"properties":105,"entityType":58,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":110,"fullTextUrl":18,"authors":111,"publicationType":77,"publisherRelationship":112,"citationCount":18,"citationInfo":18,"publishDate":132,"publishYear":133,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":100},"cd435724-1aec-4e70-bbe9-35ac9103ea9d","2023-12-10T23:57:09.942+00:00",[],{"title":106,"doi":108},{"EN":107},"Olfactory Habituation in Drosophila—Odor Encoding and its Plasticity in the Antennal Lobe",{"VOID":109},"10.1016\u002FB978-0-444-63350-7.00001-2","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FB9780444633507000012",[],{"url":110,"publisher":113,"properties":127},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":114,"slug":10,"properties":115,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":118,"manageAffiliations":119,"indexDatabases":120,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":116,"title":117},{"VOID":13},{"EN":15},[],[],[121],{"id":24,"indexDatabase":122,"url":37,"indexYears":38,"academicFieldIds":18,"indexDatabaseRanking":39},{"id":26,"createTime":27,"updateTime":28,"relativeEntities":123,"label":124,"description":125,"key":34,"publicationTags":126,"standard":18},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"volume":128,"pages":130},{"VOID":129},"208",{"VOID":131},"3-38","2014-01-01",2014,{"id":135,"createTime":136,"updateTime":137,"relativeEntities":138,"slug":139,"properties":140,"entityType":58,"verifyStatus":147,"verifyTime":137,"verifyNote":148,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":149,"fullTextUrl":18,"authors":150,"publicationType":77,"publisherRelationship":180,"citationCount":18,"citationInfo":18,"publishDate":200,"publishYear":201,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":100},"f0dd10eb-e114-4a0e-a896-0662bef49a72","2023-12-11T18:26:37.697+00:00","2025-02-05T23:56:54.807+00:00",[],"Chicken-Brain-Amines-Normal-Levels-and-Effect-of-Reserpine-and-Monoamine-Oxidase-Inhibitors",{"references":141,"title":143,"doi":145},{"VOID":142},"Amin, 1954, The distribution of serotonin 5-hydroxytryptophan decarboxylase, and monoamine oxidase in brain., J. Neurochem., 126, 596\nBernheimer, 1961, Verteilung des 5-Hydroxytryptamins im Gehirn des Menschen und sein Verhalten bei Patienten mit Parkinson-Syndrom., Klin. Wschr., 39, 1056, 10.1007\u002FBF01487648\nBertler, 1960, Occurrence and localization of catecholamines in the human brain., Acta Physiol. Scand., 50, 1\nBogdanski, 1961, The distribution of serotonin, 5-hydroxytryptophan decarboxylase, and monoamine oxidase in brain., J. Neurochem., 1, 272, 10.1111\u002Fj.1471-4159.1957.tb12082.x\nBrodie, 1959, Interaction of monoamine oxidase inhibitors with physiological and biochemical mechanisms in brain., Ann. N. Y. Acad. Sci., 80, 609, 10.1111\u002Fj.1749-6632.1959.tb49239.x\nBrodie, 1959, Interaction of drugs with norepinephrine in the brain., 548\nCosta, 1958, Studies on the 5-hydroxytryptamine (serotonin) content in human brain., J. Nerv. Ment. Dis., 126, 289, 10.1097\u002F00005053-195803000-00008\nCosta, 1958, Biochemical and electroencephalographic changes in the brain of rabbits injected with 5-hydroxytryptophan., Am. J. Physiol., 194, 214, 10.1152\u002Fajplegacy.1958.194.1.214\nFunderburk, 1962, EEG and biochemical findings with MAO inhibitors., Ann. N. Y. Acad. Sci., 96, 289, 10.1111\u002Fj.1749-6632.1962.tb50123.x\nHimwich, 1960, Behavioral changes associated with changes in concentrations of brain serotonin., Fed. Proc., 19, 838\nKuntzman, 1961, Microanalytical procedures for fluorometric assay of brain DOPA-5HTP decarboxylase, norepinephrine, and serotonin, and a detailed mapping of decarboxylase activity in brain., J. Neurochem., 6, 226, 10.1111\u002Fj.1471-4159.1961.tb13469.x\nMead, 1961, A single extraction method for the determination of both norepinephrine and serotonin in brain., Biochem. Pharmacol., 6, 52, 10.1016\u002F0006-2952(61)90069-7\nPscheidt, 1964, Effects of reserpine and isocarboxazid in the frog., Vol. 9, 213\nPscheidt, 1963, Reserpine, monoamine oxidase inhibitors, and distribution of biogenic amines in monkey brain., Biochem. Pharmacol., 12, 65, 10.1016\u002F0006-2952(63)90010-8\nPscheidt, 1963, Chicken brain amines, with special reference to cerebellar norepinephrine., Life Science., 8, 524, 10.1016\u002F0024-3205(63)90143-7\nPscheidt, 1964, Studies on norepinephrine and serotonin in various species. Comparative Neurochemistry., 401\nVogt, 1954, The concentration of sympathin in different parts of the central nervous system under normal conditions and after the administration of drugs., J. Physiol., 123, 451, 10.1113\u002Fjphysiol.1954.sp005064\nVon Euler, 1961, Occurrence and distribution of catecholamines in the fish brain., Acta Physiol. Scand., 52, 62, 10.1111\u002Fj.1748-1716.1961.tb02201.x",{"EN":144},"Chicken Brain Amines: Normal Levels and Effect of Reserpine and Monoamine Oxidase Inhibitors",{"VOID":146},"10.1016\u002Fs0079-6123(08)61404-1","VERIFIED","Auto Verify","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0079612308614041",[151,167],{"id":152,"sortIndex":19,"researcher":18,"roles":153,"affiliations":154,"properties":164},"ef2de814-92a9-453c-bd70-58ac3ea33db3",[65],[155],{"id":18,"sortIndex":19,"affiliation":156,"properties":18},{"id":157,"createTime":158,"updateTime":158,"relativeEntities":159,"slug":18,"properties":160,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"cc3843aa-d7ac-4a03-a5ea-d1ca422ecbe4","2024-02-13T22:07:19.866+00:00",[],{"title":161},{"VI":162},"Thudichum Psychiatric Research Laboratory, Galesburg State Research Hospital, Galesburg, Ill. U.S.A.","AFFILIATION",{"title":165},{"VI":166},"Gordon R. Pscheidt",{"id":168,"sortIndex":169,"researcher":18,"roles":170,"affiliations":171,"properties":177},"aac511b1-1142-485b-a7f9-b1a4f06ed34d",1,[65],[172],{"id":18,"sortIndex":19,"affiliation":173,"properties":18},{"id":157,"createTime":158,"updateTime":158,"relativeEntities":174,"slug":18,"properties":175,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":176},{"VI":162},{"title":178},{"VI":179},"Harold E. Himwich",{"url":149,"publisher":181,"properties":195},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":182,"slug":10,"properties":183,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":186,"manageAffiliations":187,"indexDatabases":188,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":184,"title":185},{"VOID":13},{"EN":15},[],[],[189],{"id":24,"indexDatabase":190,"url":37,"indexYears":38,"academicFieldIds":18,"indexDatabaseRanking":39},{"id":26,"createTime":27,"updateTime":28,"relativeEntities":191,"label":192,"description":193,"key":34,"publicationTags":194,"standard":18},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"volume":196,"pages":198},{"VOID":197},"16",{"VOID":199},"245-249","1965-01-01",1965,{"id":203,"createTime":204,"updateTime":205,"relativeEntities":206,"slug":207,"properties":208,"entityType":58,"verifyStatus":147,"verifyTime":205,"verifyNote":148,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":215,"fullTextUrl":18,"authors":216,"publicationType":77,"publisherRelationship":232,"citationCount":18,"citationInfo":18,"publishDate":252,"publishYear":253,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":100},"cf1fded0-1f02-4e78-8d0d-ee6f6b0d80d4","2023-12-07T14:09:05.790+00:00","2024-12-21T23:56:21.716+00:00",[],"The-Motor-Pools-of-the-Spinal-Cord",{"references":209,"title":211,"doi":213},{"VOID":210},"Angulo, 1940, The differentiation of the motor cell columns in the cervical spinal cord of albino rat foetuses, J. comp. Neurol, 73, 469, 10.1002\u002Fcne.900730306\nBalthasar, 1952, Morphologie der spinalen Tibialis- und Peronaeus-Kerne bei der Katze: Topographie, Architectonik, Axon- und Dendritenverlauf der Motoneurone und Zwischenneurone in den Segmenten L6-S2, Arch. Psychiat. Nervenkr, 188, 345, 10.1007\u002FBF00367982\nBarr, 1939, Some observations on the morphology of the synapse in the cat's spinal cord, J. Anat. (Lond.), 74, 1\nBarron, 1943, The early development of the motor cells and columns of the spinal cord in the sheep, J. comp. Neurol, 78, 1, 10.1002\u002Fcne.900780102\nCajal, 1909\nClarke, 1851, Researches into the structure of the spinal chord, Phil. Trans. B, 141, 607, 10.1098\u002Frstl.1851.0029\nClarke, 1858, Further researches on the grey substance of the spinal cord, Phil. Trans. B, 149, 437, 10.1098\u002Frstl.1859.0022\nCoombs, 1957, The interpretation of spike potentials of motoneurones, J. Physiol. (Lond.), 139, 198, 10.1113\u002Fjphysiol.1957.sp005887\nCooper, 1940, Gower's tract and spinal border cells, Brain, 63, 123, 10.1093\u002Fbrain\u002F63.2.123\nDe Neef, 1901, Recherches expérimentales sur les localisations motrices médullaires chez le chien et le lapin, Névraxe, 2, 71\nEccles, 1961, Electrophysiological investigations on Renshaw cells, J. Physiol. (Lond.), 159, 461, 10.1113\u002Fjphysiol.1961.sp006821\nEccles, 1954, Cholinergic and inhibitory synapses in a pathway from motor axon collaterals to motoneurones, J. Physiol. (Lond.), 126, 524, 10.1113\u002Fjphysiol.1954.sp005226\nEccles, 1930, Numbers and contraction values of individual motor units examined in some muscles of the limb, Proc. roy. Soc. B, 106, 326, 10.1098\u002Frspb.1930.0032\nElliott, 1942, Studies on the motor cells of the spinal cord. I. Distribution in the normal human cord, Amer. J. Anat, 70, 95, 10.1002\u002Faja.1000700105\nElliott, 1944, Studies on the motor cells of the spinal cord. IV. Distribution in experimental animals, J. comp. Neurol, 81, 97, 10.1002\u002Fcne.900810106\nGoering, 1928, An experimental analysis of the motor cell columns in the cervical enlargement of the spinal cord in the albino rat, J. comp. Neurol, 46, 125, 10.1002\u002Fcne.900460104\nGray, 1959, Axo-somatic and axo-dendritic synapses of the cerebral cortex: An electron microscope study, J. Anat. (Lond.), 93, 420\nHolmes, 1909, On the exact origin of the pyramidal tracts in man and other mammals, Brain, 32, 1, 10.1093\u002Fbrain\u002F32.1.1\nJefferson, 1954, Aspect of the segmental innervation of the cat's hind limb, J. comp. Neurol, 100, 569, 10.1002\u002Fcne.901000306\nKolmodin, 1957, Integrative processes in single spinal interneurones with proprioceptive connections, Acta physiol. scand, 40, 139\nMarinesco, 1904, Les localisations médullaires chez le chien et chez l'homme, Sem. méd. (Paris), 29, 225\nParhon, 1902, Recherches sur les centres spinaux des muscles de la jambe, J. Neurol. (Brux.), 7, 323\nRenshaw, 1946, Central effects of centripetal impulses in axons of spinal ventral roots, J. Neurophysiol, 9, 191, 10.1152\u002Fjn.1946.9.3.191\nRexed, 1954, A cytoarchitectonic atlas of the spinal cord, J. comp. Neurol, 100, 297, 10.1002\u002Fcne.901000205\nRomanes, 1941, The development and significance of the cell columns in the ventral horn of the cervical and upper thoracic spinal cord of the rabbit, J. Anat. (Lond.), 76, 112\nRomanes, 1942, The spinal cord in a case of congenital absence of the right limb below the knee, J. Anat. (Lond.), 77, 1\nRomanes, 1946, Motor localization and the effects of nerve injury on the ventral horn cells of the cord, J. Anat. (Lond.), 80, 117\nRomanes, 1947, Notes on the spinal cord in acephalic foetuses, J. Anat. (Lond.), 81, 391\nRomanes, 1951, The motor cell columns of the lumbosacral spinal cord of the cat, J. comp. Neurol, 94, 313, 10.1002\u002Fcne.900940209\nG.J. Romanes, 1953 The motor cell groupings of the spinal cord. The Spinal Cord G.E.W. Wolstenholme, Editor. A Ciba Foundation Symposium. London, Churchill (pp. 24–38).\nSchadé, 1961, Volume distribution of moto- and interneurons in the peroneus-tibialis neuron pool of the cat, J. comp. Neurol, 117, 387, 10.1002\u002Fcne.901170310\nSharrard, 1955, The distribution of the permanent paralysis in the lower limb in poliomyelitis, J. Bone Jt Surg, 37B, 540, 10.1302\u002F0301-620X.37B4.540\nSiemerling, 1887\nSprague, 1951, Motor and propriospinal cells in the thoracic and lumbar ventral horn of the rhesus monkey, J. comp. Neurol, 95, 105, 10.1002\u002Fcne.900950107\nSzentágothai, 1958, The anatomical basis of synaptic transmission of excitation and inhibition in motoneurons, Acta morph. Acad. Sci. hung, 8, 287\nVan Gehuchten, 1899, La localisation motrice médullaire est une localisation segmentaire, J. Neurol. (Brux.), 4, 301\nJones, 1962, Changes in the dendritic organization of neurons in the cerebral cortex following deafferentiation, J. Anat. (Lond.), 96, 375",{"EN":212},"The Motor Pools of the Spinal Cord",{"VOID":214},"10.1016\u002Fs0079-6123(08)64045-5","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0079612308640455",[217],{"id":218,"sortIndex":19,"researcher":18,"roles":219,"affiliations":220,"properties":229},"ed4b4800-fd05-40cf-b2a1-a32b30604b36",[65],[221],{"id":18,"sortIndex":19,"affiliation":222,"properties":18},{"id":223,"createTime":224,"updateTime":224,"relativeEntities":225,"slug":18,"properties":226,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"3195bf40-802c-422e-be33-b2f96af6cd4a","2023-12-07T14:09:05.802+00:00",[],{"title":227},{"VI":228},"Department of Anatomy, University of Edinburgh, Edinburgh (Great Britain)",{"title":230},{"VI":231},"G.J. Romanes",{"url":215,"publisher":233,"properties":247},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":234,"slug":10,"properties":235,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":238,"manageAffiliations":239,"indexDatabases":240,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":236,"title":237},{"VOID":13},{"EN":15},[],[],[241],{"id":24,"indexDatabase":242,"url":37,"indexYears":38,"academicFieldIds":18,"indexDatabaseRanking":39},{"id":26,"createTime":27,"updateTime":28,"relativeEntities":243,"label":244,"description":245,"key":34,"publicationTags":246,"standard":18},[],{"EN":31,"VI":31},{"EN":31,"VI":33},[36],{"volume":248,"pages":250},{"VOID":249},"11",{"VOID":251},"93-119","1964-01-01",1964,{"id":255,"createTime":256,"updateTime":257,"relativeEntities":258,"slug":259,"properties":260,"entityType":58,"verifyStatus":147,"verifyTime":257,"verifyNote":148,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":267,"fullTextUrl":18,"authors":268,"publicationType":77,"publisherRelationship":327,"citationCount":18,"citationInfo":18,"publishDate":347,"publishYear":348,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":100},"95ae6668-c701-4ee0-afee-b571c06d1bf6","2023-12-10T09:24:44.943+00:00","2025-02-17T23:55:37.066+00:00",[],"Phosphoproteins-in-Postsynaptic-Densities",{"references":261,"title":263,"doi":265},{"VOID":262},"Akert, 1969, Contributions of new impregnation methods and freeze-etching to the problems of synaptic fine structure., Progr. Brain Res., 31, 31\nArgov, 1979, The action of chlorpromazine at an isolated cholinergic synapse., Brain Res., 164, 164, 10.1016\u002F0006-8993(79)90018-0\nAriano, 1979, Biochemical characterization of postsynaptically localized cyclic nucleotide phosphodiesterase., Brain Res., 177, 177, 10.1016\u002F0006-8993(79)90781-9\nAshby, 1972, Characterization of the interaction of a protein inhibitor with adenosine 3′,5′-monophosphate-dependent protein kinases., J. biol. Chem., 247, 247, 10.1016\u002FS0021-9258(19)44739-X\nBerzins, 1978, Specific occurrence in the postsynaptic density (PSD) and synaptic vesicles (SV) of two proteins phosphorylated by a cAMP-dependent protein kinase., J. Cell Biol., 79, 96a\nBlomberg, 1977, Structure of postsynaptic densities isolated from dog cerebral cortex. II. Characterization and arrangement of some of the major proteins within the structure., J. Cell Biol., 74, 74, 10.1083\u002Fjcb.74.1.204\nBloom, 1979, Immunocytochemical localization, in synapses, of protein I, an endogenous substrate for protein kinases in mammalian brain., Proc. nat. Acad. Sci. (Wash.), 76, 76, 10.1073\u002Fpnas.76.11.5982\nR.K. Carlin P. Siekevitz J. Neurochem. in press\nCarlin, 1980, Isolation and characterization of postsynaptic densities from various brain regions. Enrichment of different types of postsynaptic densities., J. Cell Biol., 86, 86, 10.1083\u002Fjcb.86.3.831\nCarlin, 1980, The binding of radioiodinated calmodulin to proteins on denaturing gels., Ann. N.Y. Acad. Sci., 356, 356, 10.1111\u002Fj.1749-6632.1980.tb29600.x\nCarlin, 1981, Function of calmodulin in postsynaptic densities. III. Calmodulinbinding proteins of the postsynaptic density., J. Cell Biol., 89, 89, 10.1083\u002Fjcb.89.3.449\nCheung, 1970, Cyclic 3′,5′-nucleotide phosphodiesterase., Biochem, biophys. Res. Commun., 38, 38, 10.1016\u002F0006-291X(70)90747-3\nCleveland, 1977, Peptide mapping by limited proteolysis in sodium dodecyl sulfate and analysis by gel electrophoresis., J. biol. Chem., 252, 252, 10.1016\u002FS0021-9258(19)75212-0\nCohen, 1978, The form of the postsynaptic density: A serial section study., J. Cell Biol., 78, 36, 10.1083\u002Fjcb.78.1.36\nCohen, 1977, Structure of postsynaptic densities isolated from dog cerebral cortex. I. Overall morphology and protein composition., J. Cell Biol., 74, 74, 10.1083\u002Fjcb.74.1.181\nColonnier, 1968, Synaptic patterns of different cell types in the different laminae of the cat visual cortex. An electron microscope study., Brain Res., 9, 9, 10.1016\u002F0006-8993(68)90234-5\nCotman, 1974, Isolation of postsynaptic densities from rat brain., J. Cell Biol., 63, 63, 10.1083\u002Fjcb.63.2.441\nDaly, 1977, The formation, degradation, and function of cyclic nucleotides in the nervous system., Int. Rev. Neurobiol., 20, 20\nDeBlas, 1979, Protein phosphorylation in synaptic membranes regulated by adenosine 3′,5′-monophosphate: Regional and subcellular distribution of the endogenous substrates., J. Neurochem., 33, 33, 10.1111\u002Fj.1471-4159.1979.tb05209.x\nDunkley, 1976, Phosphorylation of synaptic-membrane proteins from ox cerebral cortex in vitro., Biochem. J., 157, 157, 10.1042\u002Fbj1570661\nEccles, 1964\nFilburn, 1978, Regulation of cyclic nucleotide phosphodiesterases of cerebral cortex by Ca2+ and cyclic GMP., J. Neurochem., 30, 30, 10.1111\u002Fj.1471-4159.1978.tb06535.x\nFlorendo, 1971, Cyclic 3′,5′-nucleotide phosphodiesterase: cytochemicaf localization in cerebral cortex., Science., 173, 745, 10.1126\u002Fscience.173.3998.745\nGrab, 1979, Presence of calmodulin in postsynaptic densities isolated from canine cerebral cortex., J. biol. Chem., 254, 254, 10.1016\u002FS0021-9258(19)86946-6\nGrab, 1980, The presence and functions of calmodulin in the postsynaptic density., Ann. N.Y. Acad. Sci., 356, 355, 10.1111\u002Fj.1749-6632.1980.tb29599.x\nGrab, 1981, Function of calmodulin in postsynaptic densities. I. Presence of a calmodulin-activatable cyclic nucleotide phosphodiesterase activity., J. Cell Biol., 89, 89, 10.1083\u002Fjcb.89.3.433\nGrab, 1981, Function of calmodulin in postsynaptic densities. II. Presence of calmodulin-activatable protein kinase activity., J. Cell Biol., 89, 89, 10.1083\u002Fjcb.89.3.440\nGrand, 1979, Calmodulin-binding proteins from brain and other tissues., Biochem. J., 183, 183, 10.1042\u002Fbj1830285\nGray, 1959, Axosomatic and axo-dendritic synapses of the cerebral cortex: an electron microscope study., J. Anat., 93, 93\nGreengard, 1978\nHuttner, 1979, Multiple phosphorylation sites in protein I and their differential regulation by cyclic AMP and calcium., Proc. nat. Acad. Sci. 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Chem., 254, 254, 10.1016\u002FS0021-9258(17)37809-2\nKlee, 1978, Purification of cyclic 3′,5′-nucleotide phosphodiesterase inhibitory protein by affinity chromatography on activator protein coupled to Sepharose., Biochemistry, 17, 17, 10.1021\u002Fbi00594a017\nKlee, 1979, Subunit structure and catalytic properties of bovine brain Ca2+-dependent cyclic nucleotide phosphodiesterase., Biochemistry, 18, 18, 10.1021\u002Fbi00571a026\nKreuger, 1977, Depolarization induced phosphorylation of specific proteins, mediated by calcium ion influx, in rat brain synaptosomes., J. biol. Chem., 252, 2764, 10.1016\u002FS0021-9258(17)40523-0\nKrnjevic, 1979, Depression of monosynaptic excitatory postsynaptic potentials by Mn2+ and Co2+ in cat spinal cord., Neuroscience, 4, 4, 10.1016\u002F0306-4522(79)90160-X\nLandis, 1974, Differences in membrane structure between excitatory and inhibitory synapses in cerebellar cortex., J. comp. Neurol., 155, 155\nLandis, 1974, Differences in membrane structure between excitatory and inhibitory components of the reciprocal synapse in the olfactory bulb., J. comp. Neurol., 155, 155\nLevin, 1978, Specificity of the binding to trifluoperazine to the calcium-dependent activator of phosphodiesterase and to a series of other calcium-binding proteins., Biochim. biophys. Acta, 540, 197, 10.1016\u002F0304-4165(78)90132-0\nLibet, 1979, Which postsynaptic action of dopamine is mediated by cAMP?, Life Sci., 24, 24, 10.1016\u002F0024-3205(79)90037-7\nLin, 1980, Localization of calmodulin in rat cerebellum by immunoelectron microscopy., J. Cell Biol., 85, 85, 10.1083\u002Fjcb.85.2.473\nMatus, 1978, Morphological and molecular composition of isolated postsynaptic junctional structures., Proc. R. Soc. Land. B, Biol. Sci., 203, 135, 10.1098\u002Frspb.1978.0097\nMatus, 1975, infrastructure of the synaptic junctional lattice isolated from mammalian brain, J. Neurocytol., 4, 4, 10.1007\u002FBF01102119\nNeville, 1971, Molecular weight determination of protein-dodecyl sulfate complexes by gel electrophoresis in a discontinuous buffer system., J. biol. Chem., 246, 246, 10.1016\u002FS0021-9258(18)61792-2\nNg, 1979, Long duration phosphorylation of synaptic membrane proteins., Neuroscience, 4, 4, 10.1016\u002F0306-4522(79)90156-8\nPeters, 1969, The small pyramidal neuron of the rat cerebral cortex. The synapses from dendritic spines., Z. Zellforsch. mikrosk. Anat., 100, 100, 10.1007\u002FBF00344370\nReddington, 1979, Synaptic membrane proteins as substrates for cAMP-stimulated protein phosphorylation in various regions of rat brain., Biochim. biophys. Acta, 555, 230, 10.1016\u002F0005-2736(79)90163-9\nRostas, 1979, Protein and glycoprotein composition of synaptic junctions prepared from descrete synaptic regions and different species., Brain Res., 168, 161, 10.1016\u002F0006-8993(79)90133-1\nRouttenberg, 1975, Endogenous phosphorylation of four cerebral cortical membrane proteins: Role of cyclic nucleotide, cAMP and divalent cations., Brain Res., 92, 92, 10.1016\u002F0006-8993(75)90326-1\nSchulman, 1978, Stimulation of brain membrane phosphorylation by calcium and an endogenous heat-stable protein., Nature (Lond.), 271, 271, 10.1038\u002F271478a0\nSchulman, 1978, Ca2+-dependent protein phosphorylation system in membranes from various tissues, and its activation by calcium-dependent regulator., Proc. nat. Acad. Sci. (Wash.), 75, 75, 10.1073\u002Fpnas.75.11.5432\nSharma, 1981, Inhibition of cyclic nucleotide phosphodiesterase by calmodulin and Triton X-100 complex., Fed. Proc., 40, 1739\nSiekevitz, 1981, Isolation of post-synaptic densities from cerebral cortex., Vol. 3, 75\nSobue, 1979, Distribution in rat tissue of modulator-binding protein of particulate nature., FEBS Lett., 105, 105, 10.1016\u002F0014-5793(79)80896-0\nTherien, 1979, Characterization of the cyclic 3′,5′-nucleotide phosphodiesterase activity associated with synaptosomal plasma membranes and synaptic junctions., Biochim. biophys. Acta, 585, 201, 10.1016\u002F0304-4165(79)90020-5\nUeda, 1977, Adenosine 3′,5′-monophosphate-regulated phosphoprotein system of neuronal membranes. I. Solubilization, purification and some properties of an endogenous phosphoprotein., J. biol. Chem., 252, 252, 10.1016\u002FS0021-9258(17)40170-0\nUeda, 1973, Regulation of endogenous phosphorylation of specific proteins in synaptic membrane fractions from rat brain by adenosine 3′,5′-monophosphate., J. biol. Chem., 248, 248, 10.1016\u002FS0021-9258(19)43227-4\nUeda, 1979, Subcellular distribution in cerebral cortex of two proteins phosphorylated by a cAMP-dependent protein kinase., J. Cell Biol., 83, 83, 10.1083\u002Fjcb.83.2.308\nUno, 1976, Adenosine 3′,5′-monophosphate regulated phosphorylation system of neuronal membranes. II. Solubilization, purification, and some properties of an endogenous 3′,5′-monophosphate-dependent protein kinase., J. biol. Chem., 252, 252\nVanaman, 1976, Chemical and biological properties of the ubiquitous troponin-C like protein from non-muscle tissues, a multifunctional Ca2+-dependent regulator protein., 165\nWalberg, 1968, Morphological correlates of postsynaptic inhibitory processes., 7\nWalter, 1978, Quantitative labeling of the regulatory subunit of type II cAMP-dependent protein kinase from bovine heart by a photoaffinity analog., J. cyclic Nucl. Res., 4, 4\nWalter, 1978, Adenosine 3′,5′-monophosphate receptor proteins in mammalian brain., J. biol. Chem., 253, 253, 10.1016\u002FS0021-9258(17)34611-2\nWang, 1977, Modulator binding protein, bovine brain protein exhibiting calcium-dependent assocation with the protein modulator of cyclic nucleotide phosphodiesterase., J. biol. Chem., 252, 252, 10.1016\u002FS0021-9258(17)40248-1\nWeller, 1976, Localization in the synaptic junction of the cyclic AMP-stimulated intrinsic protein kinase activity of synaptosomal plasma membranes., Biochim. biophys. Acta, 433, 223, 10.1016\u002F0005-2736(76)90190-5\nWood, 1980, Immunocytochemical localization of calmodulin and a heat-labile calmodulin-binding ganglia from mice brain., J. Cell Biol., 84, 66, 10.1083\u002Fjcb.84.1.66",{"EN":264},"Phosphoproteins in Postsynaptic Densities",{"VOID":266},"10.1016\u002Fs0079-6123(08)63768-1","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0079612308637681",[269,284,299,315],{"id":270,"sortIndex":19,"researcher":18,"roles":271,"affiliations":272,"properties":281},"489f5b48-1aad-40a5-89f2-8458d6b4a954",[65],[273],{"id":18,"sortIndex":19,"affiliation":274,"properties":18},{"id":275,"createTime":276,"updateTime":276,"relativeEntities":277,"slug":18,"properties":278,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"986b9668-a773-413d-9da6-9e489e367feb","2023-12-10T09:24:45.027+00:00",[],{"title":279},{"VI":280},"Department of Anatomy, University of Illinois at the Medical Center, Chicago, IL 60612",{"title":282},{"VI":283},"Rochelle S. 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Grab",{"id":300,"sortIndex":301,"researcher":18,"roles":302,"affiliations":303,"properties":312},"a6775132-86ce-4c51-8270-6b4af5d151dd",3,[65],[304],{"id":18,"sortIndex":19,"affiliation":305,"properties":18},{"id":306,"createTime":307,"updateTime":307,"relativeEntities":308,"slug":18,"properties":309,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"e2caea65-02a1-4322-a3c4-cde7fea54093","2023-12-10T09:24:45.049+00:00",[],{"title":310},{"VI":311},"Department of Cell Biology, The Rockefeller University, New York, NY, U.S.A.",{"title":313},{"VI":314},"Philip Siekevitz",{"id":316,"sortIndex":169,"researcher":18,"roles":317,"affiliations":318,"properties":324},"036cd7c9-0b07-415c-aeac-e7fd6d789e19",[65],[319],{"id":18,"sortIndex":19,"affiliation":320,"properties":18},{"id":306,"createTime":307,"updateTime":307,"relativeEntities":321,"slug":18,"properties":322,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":323},{"VI":311},{"title":325},{"VI":326},"Richard K. 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Abstr.",{"EN":359},"Chapter 21 Meeting the constraints upon behavioral expression through neural and genomic interactive mechanisms",{"VOID":361},"10.1016\u002Fs0079-6123(08)61875-0","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0079612308618750",[364,379,391,403],{"id":365,"sortIndex":169,"researcher":18,"roles":366,"affiliations":367,"properties":376},"cb3b1d0a-c6ac-4040-b234-c2be1840df19",[65],[368],{"id":18,"sortIndex":19,"affiliation":369,"properties":18},{"id":370,"createTime":371,"updateTime":371,"relativeEntities":372,"slug":18,"properties":373,"entityType":163,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"6e546e0e-9509-4a85-b82e-69be99594014","2023-12-20T04:46:19.267+00:00",[],{"title":374},{"VI":375},"Laboratory of Neurobiology and Behavior, The Rockefeller University 1230 York Avenue, New York, NY 10021 USA",{"title":377},{"VI":378},"X.S. 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2006\nAloise, 2009\nAloise, 2008\nAnderson, 2007, Classification of time-embedded EEG using short-time principal component analysis, 261\nBabiloni, 2009, On the use of brain-computer interfaces outside scientific laboratories toward an application in domotic environments, International Review of Neurobiology, 86, 133, 10.1016\u002FS0074-7742(09)86010-8\nBaldoni, 2009, An embedded middleware platform for pervasive and immersive environments for-all, 1\nBayliss, 2003, Use of the evoked potential P3 component for control in a virtual apartment, IEEE Transactions on Neural Systems and Rehabilitation Engineering, 11, 113, 10.1109\u002FTNSRE.2003.814438\nBirbaumer, 1999, A spelling device for the paralysed, Nature, 398, 297, 10.1038\u002F18581\nBirbaumer, 2008, Brain-computer interface in paralysis, Current Opinion in Neurology, 21, 634, 10.1097\u002FWCO.0b013e328315ee2d\nBlankertz, 2007, A note on brain actuated spelling with the berlin brain- computer interface, 759\nBlankertz, 2011, 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2006, Steady-state somatosensory evoked potentials: Suitable brain signals for brain-computer interfaces?, IEEE Transactions on Neural Systems and Rehabilitation Engineering, 14, 30, 10.1109\u002FTNSRE.2005.863842\nMünßinger, 2010, Brain Painting: first evaluation of a new brain–computer interface application with ALS-patients and healthy volunteers, Frontiers in Neuroprosthetics, 4\nNeumann, 2003, Predictors of successful self control during brain-computer communication, Journal of Neurology, Neurosurgey, and Psychiatry, 74, 1117, 10.1136\u002Fjnnp.74.8.1117\nNijboer, 2010, The Influence of Psychological State and Motivation on Brain–Computer Interface Performance in Patients with Amyotrophic Lateral Sclerosis — a Longitudinal Study, Frontiers in Neuroscience, 4\nNijboer, 2008, An auditory brain-computer interface (BCI), Journal of Neuroscience Methods, 167, 43, 10.1016\u002Fj.jneumeth.2007.02.009\nNijboer, 2008, A P300-based brain-computer interface for people with amyotrophic lateral sclerosis, Clinical Neurophysiology, 119, 1909, 10.1016\u002Fj.clinph.2008.03.034\nNunan, 2009, Validity and reliability of short-term heart-rate variability from the Polar S810, Medicine and Science in Sports and Exercise, 41, 243, 10.1249\u002FMSS.0b013e318184a4b1\nPfurtscheller, 1992, Event-related synchronization (ERS): An electrophysiological correlate of cortical areas at rest, Electroencephalography and Clinical Neurophysiology, 83, 62, 10.1016\u002F0013-4694(92)90133-3\nPfurtscheller, 2005, EEG-based brain-computer interfaces\nPiccione, 2006, P300-based brain computer interface: Reliability and performance in healthy and paralysed participants, Clinical Neurophysiology, 117, 531, 10.1016\u002Fj.clinph.2005.07.024\nPineda, 2003, Learning to control brain rhythms: Making a brain-computer interface possible, IEEE Transactions on Neural Systems and Rehabilitation Engineering, 11, 181, 10.1109\u002FTNSRE.2003.814445\nPires, 2002, A wheelchair steered through voice commands 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A comparison of white\u002Fgray and green\u002Fblue flicker matrices, Clinical Neurophysiology, 120, 1562, 10.1016\u002Fj.clinph.2009.06.002\nTask Force of the European Society of Cardiology and The North American Society of Pacing and Electrophysiology, 1996, Heart rate variability—Standards of measurement, physiological interpretation, and clinical use, European Heart Journal, 17, 354, 10.1093\u002Foxfordjournals.eurheartj.a014868\nTownsend, 2010, A novel P300-based brain-computer interface stimulus presentation paradigm: Moving beyond rows and columns, Clinical Neurophysiology, 121, 1109, 10.1016\u002Fj.clinph.2010.01.030\nTreder, 2010, (C)overt attention and visual speller design in an ERP-based brain-computer interface, Behavioral and Brain Functions, 6, 10.1186\u002F1744-9081-6-28\nvan Boxtel, 2010, Consciousness and attention: On sufficiency and necessity, Frontiers in Psychology, 1, 217, 10.3389\u002Ffpsyg.2010.00217\nVolosyak, 2010, Brain-computer interface using water-based 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Neurosci., 5, 2801, 10.1523\u002FJNEUROSCI.05-10-02801.1985\nSchecter, 1981, Fibrous astrocytes in senile dementia of the Alzheimer type, J. Neuropathol. Exp. Neurol., 40, 95, 10.1097\u002F00005072-198103000-00002\nScheibel, 1978, Structural aspects of the aging brain: spine systems and the dendritic arbor., 7, 353\nSpector, 1985, Search for DNA alterations in Alzheimer's disease, Neurobiol. Aging, 6, 25, 10.1016\u002F0197-4580(85)90067-3\nStruble, 1982, Cholinergic innervation in neuritic plaques, Science, 216, 413, 10.1126\u002Fscience.6803359\nSuzuki, 1967, Fine structural localization of acid phosphatase in senile plaques in Alzheimer's presenile dementia, Acta Neuropathol., 8, 176, 10.1007\u002FBF00688828\nTerry, 1970, The ultrastructure of the neurofibrillary tangle and the senile plaque., 145\nTerry, 1964, Ultrastructural studies in Alzheimer's presenile dementia, Am. J. Pathol., 44, 269\nTerry, 1981, Some morphometric aspects of the brain in senile dementia of the Alzheimer type, Ann. Neurol., 10, 184, 10.1002\u002Fana.410100209\nTerry, 1982, Are both plaques and tangles required to make it Alzheimer's disease?, J. Neuropathol. Exp. Neurol., 41, 364, 10.1097\u002F00005072-198205000-00078\nWhitehouse, 1981, Alzheimer's disease: evidence for selective loss of cholinergic neurons in the nucleus basalis, Ann. 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Sci., 46, 699, 10.2527\u002Fjas1978.463699x\nDietl, 1993, Pulsatile release of catecholamines in the hypothalamus of conscious rats, Naunyn-Schiemiedeberg's Arch. Pharmacol., 347, 28\nFink, 1995, The self-priming effect of LHRH: a unique servomechanism and possible cellular model for memory, Front. Neuroendocrinol., 16, 183, 10.1006\u002Ffrne.1995.1006\nFriend, 1996, The orderliness of the growth hormone (GH) release process and the mean mass of GH secreted per burst are highly conserved in individual men on successive days, J. Clin. Endocrinol. Metab., 81, 3746, 10.1210\u002Fjc.81.10.3746\n1991, Vol. 1\nJones, 1996, The impact of receptor desensitization on fast synaptic transmission, Trends Neurosci., 19, 96, 10.1016\u002FS0166-2236(96)80037-3\nKeener, 1998, Mathematical Physiology, 579\nKiyatkin, 1995, Functional significance of mesolimbic dopamine, Neurosci. Biobehav. Rev., 19, 573, 10.1016\u002F0149-7634(95)00029-1\nKiyatkin, 1995, Fluctuations in nucleus accumbens dopamine during cocaine self-administration behaviour: an ‘in vivo’ electrochemical study, Neuroscience, 64, 599, 10.1016\u002F0306-4522(94)00436-9\nLanzinger, 1989, Pattern of catecholamuine release in the nucleus tractus solitarii of the cat, Naunyn-Schiemiedeberg's Arch. Pharmacol., 339, 298\nLe Moal, 1991, Mesocortical dopaminergic network: functional and regulatory roles, Physiol. Rev., 71, 155, 10.1152\u002Fphysrev.1991.71.1.155\nLi, 1989, Frequency specificity in intercellular communication: influence of patterns of periodic signalling on target cell responsiveness, Biophys. J., 55, 125, 10.1016\u002FS0006-3495(89)82785-7\nPiazza, 1997, Glucocorticoids as a biological substrate of reward: physiological and pathological implications, Brain Res. Rev., 25, 359, 10.1016\u002FS0165-0173(97)00025-8\nRuggeri, 1990, Aspects of neural plasticity in the central nervous system. III. Methodological studies on the microdialysis technique, Neurochem. Int., 16, 427, 10.1016\u002F0197-0186(90)90004-D\nSingewald, 1994, In vivo release of catecholamines in the locus coeruleus, Naunyn-Schiemiedeberg's Arch. Pharmacol., 350, 339\nUrban, 1988, Contemporary aspects of discrete peak-detection algorithms. I. The paradigm of the luteinizing hormone pulse signal in men, End. Rev., 9, 3, 10.1210\u002Fedrv-9-1-3\nban Cauter, 1989, Endocrine and other biological rhythms, 2658\nZoli, 1999, Volume transmission in the CNS and its relebance for neuropsychopharmacology, Trends Pharmacol. 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