Slow Potential Changes in the Brain [electronic resource] / by Haschke, Speckmann.
Erişim Adresi
ISBN
9781475713794
Dil Kodu
İngilizce
Yer Numarası
DK/7549
Yazar
Basım Bildirimi
1st ed. 1993.
Yayın Bilgisi
Boston, MA : Birkhäuser Boston : Imprint: Birkhäuser, 1993.
Fiziksel Niteleme
XXII, 288 p. 93 illus. online resource.
Dizi
Brain Dynamics
İçindekiler Notu
Introductory Remarks -- 0 What is a Generator Like? -- I. Overview -- 1 DC Potentials of the Brain -- 2 Activity of Single Neurons and Their Relationship to Normal EEG Waves and Interictal Epilepsy Potentials in Humans -- II. Psychophysiology -- 3 Determinants of CNV Amplitude -- 4 Changes of Slow Brain Potential Shifts Following Failure -- 5 Association Cortex Contributions to the Human P3 -- 6 Interactions between the DC Potential of the Brain and Slow Potential Shifts under Mental Load -- 7 The “Oddball CNV” as Indicator of Information Processing in Healthy Subjects and Patients with Panic Disorders -- 8 Lateralization of Slow Brain Potentials and Preparatory Processes -- III. Neurophysiology -- 9 The Genesis of Cortical Event-Related Potentials: Excitatory and Inhibitory Contributions -- 10 Prolonged Unstable Depression: A Modified Manifestation of Spreading Depression in Rat Hippocampus -- 11 Modulation of Glutamate Responses by Noradrenaline and GABA in Neo- and Archicortical Structures -- 12 Extracellular Changes of Aspartate, Glutamate, and Taurine in Relation to DC Changes during Complete Cerebral Ischemia and Cortical Spreading Depression -- 13 Evoked Field Potentials—Beyond Correlates of Behavior: An Approach to Determining the Neural Mechanism of Behavior -- IV. Glia and Microenvironment -- 14 Cortical Slow Potentials, Depolarization of Glial Cells, and Extracellular Potassium Concentration -- 15 Voltage- and Ligand-Gated Membrane Currents of Identified Glial Cells in the Hippocampal Slice -- 16 Contributions of Extracellular Potassium Increases to Transient Field Potentials (Review of Data) -- 17 Cornea-Negative and Cornea-Positive Slow Components of the ERG and Light-induced Extracellular Potassium Changes -- V. Biomagnetism -- 18 Magnetoencephalographic Signals and TheirRegistration -- 19 Neuromagnetism and Source Location -- 20 Measurement of Neuromagnetic Signals -- 21 Extracranial Slow Magnetic Field Changes during Epileptic Activity -- VI. Motor Control -- 22 DC Shifts and Event-related Potentials Associated with Workload in a Dual Task Situation -- 23 Frontomesial Activation during Spatial Bilateral Coordination: Tentative Conclusions on SMA Function -- 24 Phasic and Tonic Changes of the Mean Alpha Frequency (MAF) of the EEG during Motor Performance -- 25 Changes of CNS Activation Patterns during Motor Imagination.
Özet, vb.
DC-potential changes, comprising fast fluctuations and slow shifts, rep resent objective concomitants of neuronal processes in the brain. They can be recorded not only in animals, but also in humans under various conditions. As far as slow brain potentials are concerned, exciting results have been detected with respect to their correlation to psychophysiolog ical events. Although a large amount of data has been accumulated by psychophysiologists, neurophysiologists, and other scientists involved, the neurophysiological basis of these field potentials is still not clear, and remains controversial. Scientists from European countries participated in an interdisciplinary symposium in the summer of 1990, July 2 to 6, at the Friedrich Schiller University in Jena, which covered the field of slow brain potentials from the psychophysiological to the cellular level, including glial cells and microenvironment. From this conference the idea derived to present an up-to-date overview on important aspects of the field concerned. The Introductory Remarks are given to elucidate what is thought to be a "generator" of slow potentials of the brain. The large number of sources, implications of the "inverse problem" to analyze field potentials are taken into account.
Konu
Social sciences.
Humanities.
Humanities and Social Sciences.
Humanities.
Humanities and Social Sciences.
Diğer Yazarlar
Kurum Adı
Eseri Alıntıla
Referansları kullanmadan önce gözden geçirmeniz ve varsa gerekli düzeltmeleri yapmanız önerilir.
Dijital Kaynak
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250 |a1st ed. 1993.
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300 |aXXII, 288 p. 93 illus.|bonline resource.
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490 1 |aBrain Dynamics
505 0 |aIntroductory Remarks -- 0 What is a Generator Like? -- I. Overview -- 1 DC Potentials of the Brain -- 2 Activity of Single Neurons and Their Relationship to Normal EEG Waves and Interictal Epilepsy Potentials in Humans -- II. Psychophysiology -- 3 Determinants of CNV Amplitude -- 4 Changes of Slow Brain Potential Shifts Following Failure -- 5 Association Cortex Contributions to the Human P3 -- 6 Interactions between the DC Potential of the Brain and Slow Potential Shifts under Mental Load -- 7 The “Oddball CNV” as Indicator of Information Processing in Healthy Subjects and Patients with Panic Disorders -- 8 Lateralization of Slow Brain Potentials and Preparatory Processes -- III. Neurophysiology -- 9 The Genesis of Cortical Event-Related Potentials: Excitatory and Inhibitory Contributions -- 10 Prolonged Unstable Depression: A Modified Manifestation of Spreading Depression in Rat Hippocampus -- 11 Modulation of Glutamate Responses by Noradrenaline and GABA in Neo- and Archicortical Structures -- 12 Extracellular Changes of Aspartate, Glutamate, and Taurine in Relation to DC Changes during Complete Cerebral Ischemia and Cortical Spreading Depression -- 13 Evoked Field Potentials—Beyond Correlates of Behavior: An Approach to Determining the Neural Mechanism of Behavior -- IV. Glia and Microenvironment -- 14 Cortical Slow Potentials, Depolarization of Glial Cells, and Extracellular Potassium Concentration -- 15 Voltage- and Ligand-Gated Membrane Currents of Identified Glial Cells in the Hippocampal Slice -- 16 Contributions of Extracellular Potassium Increases to Transient Field Potentials (Review of Data) -- 17 Cornea-Negative and Cornea-Positive Slow Components of the ERG and Light-induced Extracellular Potassium Changes -- V. Biomagnetism -- 18 Magnetoencephalographic Signals and TheirRegistration -- 19 Neuromagnetism and Source Location -- 20 Measurement of Neuromagnetic Signals -- 21 Extracranial Slow Magnetic Field Changes during Epileptic Activity -- VI. Motor Control -- 22 DC Shifts and Event-related Potentials Associated with Workload in a Dual Task Situation -- 23 Frontomesial Activation during Spatial Bilateral Coordination: Tentative Conclusions on SMA Function -- 24 Phasic and Tonic Changes of the Mean Alpha Frequency (MAF) of the EEG during Motor Performance -- 25 Changes of CNS Activation Patterns during Motor Imagination.
520 |aDC-potential changes, comprising fast fluctuations and slow shifts, rep resent objective concomitants of neuronal processes in the brain. They can be recorded not only in animals, but also in humans under various conditions. As far as slow brain potentials are concerned, exciting results have been detected with respect to their correlation to psychophysiolog ical events. Although a large amount of data has been accumulated by psychophysiologists, neurophysiologists, and other scientists involved, the neurophysiological basis of these field potentials is still not clear, and remains controversial. Scientists from European countries participated in an interdisciplinary symposium in the summer of 1990, July 2 to 6, at the Friedrich Schiller University in Jena, which covered the field of slow brain potentials from the psychophysiological to the cellular level, including glial cells and microenvironment. From this conference the idea derived to present an up-to-date overview on important aspects of the field concerned. The Introductory Remarks are given to elucidate what is thought to be a "generator" of slow potentials of the brain. The large number of sources, implications of the "inverse problem" to analyze field potentials are taken into account.
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532 8 |aInaccessible, or known limited accessibility
532 8 |aNo reading system accessibility options actively disabled
532 8 |aPublisher contact for further accessibility information: accessibilitysupport@springernature.com
650 0|aSocial sciences.
650 0|aHumanities.
650 14|aHumanities and Social Sciences.
700 1 |aSpeckmann.|eauthor.|4aut|4http://id.loc.gov/vocabulary/relators/aut
710 2 |aSpringerLink (Online service)
773 0 |tSpringer Nature eBook
776 08|iPrinted edition:|z9780817635831
776 08|iPrinted edition:|z9781475713800
776 08|iPrinted edition:|z9781475713817
830 0|aBrain Dynamics
856 40|uhttps://doi.org/10.1007/978-1-4757-1379-4
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912 |aZDB-2-SXH
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950 |aHumanities, Social Sciences and Law (SpringerNature-11648)
950 |aHistory (R0) (SpringerNature-43722)
001 806242
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020 |a9781475713794|9978-1-4757-1379-4
024 7 |a10.1007/978-1-4757-1379-4|2doi
041 |aeng
049 |aTürk Tarih Kurumu Kütüphanesi
050 4|aH1-99
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072 7|aGT|2thema
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100 1 |aHaschke.|eauthor.|4aut|4http://id.loc.gov/vocabulary/relators/aut
245 10|aSlow Potential Changes in the Brain|h[electronic resource] /|cby Haschke, Speckmann.
250 |a1st ed. 1993.
264 1|aBoston, MA :|bBirkhäuser Boston :|bImprint: Birkhäuser,|c1993.
300 |aXXII, 288 p. 93 illus.|bonline resource.
336 |atext|btxt|2rdacontent
337 |acomputer|bc|2rdamedia
338 |aonline resource|bcr|2rdacarrier
347 |atext file|bPDF|2rda
490 1 |aBrain Dynamics
505 0 |aIntroductory Remarks -- 0 What is a Generator Like? -- I. Overview -- 1 DC Potentials of the Brain -- 2 Activity of Single Neurons and Their Relationship to Normal EEG Waves and Interictal Epilepsy Potentials in Humans -- II. Psychophysiology -- 3 Determinants of CNV Amplitude -- 4 Changes of Slow Brain Potential Shifts Following Failure -- 5 Association Cortex Contributions to the Human P3 -- 6 Interactions between the DC Potential of the Brain and Slow Potential Shifts under Mental Load -- 7 The “Oddball CNV” as Indicator of Information Processing in Healthy Subjects and Patients with Panic Disorders -- 8 Lateralization of Slow Brain Potentials and Preparatory Processes -- III. Neurophysiology -- 9 The Genesis of Cortical Event-Related Potentials: Excitatory and Inhibitory Contributions -- 10 Prolonged Unstable Depression: A Modified Manifestation of Spreading Depression in Rat Hippocampus -- 11 Modulation of Glutamate Responses by Noradrenaline and GABA in Neo- and Archicortical Structures -- 12 Extracellular Changes of Aspartate, Glutamate, and Taurine in Relation to DC Changes during Complete Cerebral Ischemia and Cortical Spreading Depression -- 13 Evoked Field Potentials—Beyond Correlates of Behavior: An Approach to Determining the Neural Mechanism of Behavior -- IV. Glia and Microenvironment -- 14 Cortical Slow Potentials, Depolarization of Glial Cells, and Extracellular Potassium Concentration -- 15 Voltage- and Ligand-Gated Membrane Currents of Identified Glial Cells in the Hippocampal Slice -- 16 Contributions of Extracellular Potassium Increases to Transient Field Potentials (Review of Data) -- 17 Cornea-Negative and Cornea-Positive Slow Components of the ERG and Light-induced Extracellular Potassium Changes -- V. Biomagnetism -- 18 Magnetoencephalographic Signals and TheirRegistration -- 19 Neuromagnetism and Source Location -- 20 Measurement of Neuromagnetic Signals -- 21 Extracranial Slow Magnetic Field Changes during Epileptic Activity -- VI. Motor Control -- 22 DC Shifts and Event-related Potentials Associated with Workload in a Dual Task Situation -- 23 Frontomesial Activation during Spatial Bilateral Coordination: Tentative Conclusions on SMA Function -- 24 Phasic and Tonic Changes of the Mean Alpha Frequency (MAF) of the EEG during Motor Performance -- 25 Changes of CNS Activation Patterns during Motor Imagination.
520 |aDC-potential changes, comprising fast fluctuations and slow shifts, rep resent objective concomitants of neuronal processes in the brain. They can be recorded not only in animals, but also in humans under various conditions. As far as slow brain potentials are concerned, exciting results have been detected with respect to their correlation to psychophysiolog ical events. Although a large amount of data has been accumulated by psychophysiologists, neurophysiologists, and other scientists involved, the neurophysiological basis of these field potentials is still not clear, and remains controversial. Scientists from European countries participated in an interdisciplinary symposium in the summer of 1990, July 2 to 6, at the Friedrich Schiller University in Jena, which covered the field of slow brain potentials from the psychophysiological to the cellular level, including glial cells and microenvironment. From this conference the idea derived to present an up-to-date overview on important aspects of the field concerned. The Introductory Remarks are given to elucidate what is thought to be a "generator" of slow potentials of the brain. The large number of sources, implications of the "inverse problem" to analyze field potentials are taken into account.
532 8 |aAccessibility summary: This PDF is not accessible. It is based on scanned pages and does not support features such as screen reader compatibility or described non-text content (images, graphs etc). However, it likely supports searchable and selectable text based on OCR (Optical Character Recognition). Users with accessibility needs may not be able to use this content effectively. Please contact us at accessibilitysupport@springernature.com if you require assistance or an alternative format.
532 8 |aInaccessible, or known limited accessibility
532 8 |aNo reading system accessibility options actively disabled
532 8 |aPublisher contact for further accessibility information: accessibilitysupport@springernature.com
650 0|aSocial sciences.
650 0|aHumanities.
650 14|aHumanities and Social Sciences.
700 1 |aSpeckmann.|eauthor.|4aut|4http://id.loc.gov/vocabulary/relators/aut
710 2 |aSpringerLink (Online service)
773 0 |tSpringer Nature eBook
776 08|iPrinted edition:|z9780817635831
776 08|iPrinted edition:|z9781475713800
776 08|iPrinted edition:|z9781475713817
830 0|aBrain Dynamics
856 40|uhttps://doi.org/10.1007/978-1-4757-1379-4
912 |aZDB-2-SHU
912 |aZDB-2-SXH
912 |aZDB-2-BAE
950 |aHumanities, Social Sciences and Law (SpringerNature-11648)
950 |aHistory (R0) (SpringerNature-43722)
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