Estimation of multiscale neurophysiologic parameters by electroencephalographic means

被引:201
作者
Robinson, PA [1 ]
Rennie, CJ
Rowe, DL
O'Connor, SC
机构
[1] Univ Sydney, Sch Phys, Sydney, NSW 2006, Australia
[2] Westmead Hosp, Brain Dynam Ctr, Westmead, NSW 2145, Australia
[3] Westmead Hosp, Dept Diagnost Phys, Westmead, NSW 2145, Australia
关键词
electrophysiology; biophysics; biological physics; neurophysiology; anatomy; methods; modeling;
D O I
10.1002/hbm.20032
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
It is shown that new model-based electroencephalographic (EEG) methods can quantify neurophysiologic parameters that underlie EEG generation in ways that are complementary to and consistent with standard physiologic techniques. This is done by isolating parameter ranges that give good matches between model predictions and a variety of experimental EEG-related phenomena simultaneously. Resulting constraints range from the submicrometer synaptic level to length scales of tens of centimeters, and from timescales of around 1 ms to 1 s or more, and are found to be consistent with independent physiologic and anatomic measures. In the process, a new method of obtaining model parameters from the data is developed, including a Monte Carlo implementation for use when not all input data are available. Overall, the approaches used are complementary to other methods, constraining allowable parameter ranges in different ways and leading to much tighter constraints overall. EEG methods often provide the most restrictive individual constraints. This approach opens a new, noninvasive window on quantitative brain analysis, with the ability to monitor temporal changes, and the potential to map spatial variations. Unlike traditional phenomenologic quantitative EEG measures, the methods proposed here are based explicitly on physiology and anatomy. (C) 2004 Wiley-Liss, Inc.
引用
收藏
页码:53 / 72
页数:20
相关论文
共 83 条
[1]  
[Anonymous], 1998, SYNAPTIC ORG BRAIN
[2]   SYNAPTIC AND MEMBRANE MECHANISMS UNDERLYING SYNCHRONIZED OSCILLATIONS IN THE FERRET LATERAL GENICULATE-NUCLEUS IN-VITRO [J].
BAL, T ;
VONKROSIGK, M ;
MCCORMICK, DA .
JOURNAL OF PHYSIOLOGY-LONDON, 1995, 483 (03) :641-663
[3]  
Bal T, 2000, J NEUROSCI, V20, P7478
[4]  
BARITENBERG V, 1998, CORTEX STAT GEOMETRY
[5]   EVIDENCE FOR 2 TYPES OF FIRING PATTERN DURING THE SLEEP-WAKING CYCLE IN THE RETICULAR THALAMIC NUCLEUS OF THE CAT [J].
BARRIONUEVO, G ;
BENOIT, O ;
TEMPIER, P .
EXPERIMENTAL NEUROLOGY, 1981, 72 (02) :486-501
[6]   Nonlinear phase desynchronization in human electroencephalographic data [J].
Breakspear, M .
HUMAN BRAIN MAPPING, 2002, 15 (03) :175-198
[7]   NEURONAL ACTIVITIES UNDERLYING THE ELECTROENCEPHALOGRAM AND EVOKED-POTENTIALS OF SLEEPING AND WAKING - IMPLICATIONS FOR INFORMATION-PROCESSING [J].
COENEN, AML .
NEUROSCIENCE AND BIOBEHAVIORAL REVIEWS, 1995, 19 (03) :447-463
[8]   RELATIVE CONTRIBUTIONS OF INTRA-CORTICAL AND THALAMO-CORTICAL PROCESSES IN THE GENERATION OF ALPHA RHYTHMS, REVEALED BY PARTIAL COHERENCE ANALYSIS [J].
DASILVA, FHL ;
VOS, JE ;
MOOIBROEK, J ;
VANROTTERDAM, A .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1980, 50 (5-6) :449-456
[9]  
DASILVA FHL, 1974, KYBERNETIK, V15, P27, DOI DOI 10.1007/BF00270757
[10]  
Dayan P, 2001, THEORETICAL NEUROSCI