SOLUTIONS FOR TRANSIENTS IN ARBITRARILY BRANCHING CABLES .1. VOLTAGE RECORDING WITH A SOMATIC SHUNT

被引:84
作者
MAJOR, G
EVANS, JD
JACK, JJB
机构
[1] University Laboratory of Physiology, Oxford
基金
英国惠康基金;
关键词
D O I
10.1016/S0006-3495(93)81037-3
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
An analytical solution is derived for voltage transients in an arbitrarily branching passive cable neurone model with a soma and somatic shunt. The response to injected currents can be represented as an infinite series of exponentially decaying components with different time constants and amplitudes. The time constants of a given model, obtained from the roots of a recursive transcendental equation, are independent of the stimulating and recording positions. Each amplitude is the product of three factors dependent on the corresponding root: one constant over the cell, one varying with the input site, and one with the recording site. The amplitudes are not altered by interchanging these sites. The solution reveals explicitly some of the parameter dependencies of the responses. An efficient recursive root-finding algorithm is described. Certain regular geometries lead to ''lost'' roots; difficulties associated with these can be avoided by making small changes to the lengths of affected segments. Complicated cells, such as a CA1 pyramid, produce many closely spaced time constants in the range of interest. Models with large somatic shunts and dendrites of unequal electrotonic lengths can produce large amplitude waveform components with surprisingly slow time constants. This analytic solution should complement existing passive neurone modeling techniques.
引用
收藏
页码:423 / 449
页数:27
相关论文
共 82 条
[1]   SIMPLE DIAGRAMMATIC RULES FOR SOLVING DENDRITIC CABLE PROBLEMS [J].
ABBOTT, LF .
PHYSICA A, 1992, 185 (1-4) :343-356
[2]   THE PATH INTEGRAL FOR DENDRITIC TREES [J].
ABBOTT, LF ;
FARHI, E ;
GUTMANN, S .
BIOLOGICAL CYBERNETICS, 1991, 66 (01) :49-60
[3]   ELECTRICAL CAPACITY OF BLACK LIPID FILMS AND OF LIPID BILAYERS MADE FROM MONOLAYERS [J].
BENZ, R ;
FROHLICH, O ;
LAUGER, P ;
MONTAL, M .
BIOCHIMICA ET BIOPHYSICA ACTA, 1975, 394 (03) :323-334
[4]   RALLPACKS - A SET OF BENCHMARKS FOR NEURONAL SIMULATORS [J].
BHALLA, US ;
BILITCH, DH ;
BOWER, JM .
TRENDS IN NEUROSCIENCES, 1992, 15 (11) :453-458
[5]   TECHNIQUES FOR OBTAINING ANALYTICAL SOLUTIONS FOR RALL MODEL NEURON [J].
BLUMAN, GW ;
TUCKWELL, HC .
JOURNAL OF NEUROSCIENCE METHODS, 1987, 20 (02) :151-166
[6]  
BROWN TH, 1981, J NEUROPHYSIOL, V45, P1
[7]  
BUTZ EG, 1974, BIOPHYS J, V14, P61
[8]   A NEW COMPUTATIONAL METHOD FOR CABLE THEORY PROBLEMS [J].
CAO, BJ ;
ABBOTT, LF .
BIOPHYSICAL JOURNAL, 1993, 64 (02) :303-313
[9]  
CHURCHILL RV, 1942, AM MATH SOC B, V48, P143
[10]   CABLE PROPERTIES OF CAT SPINAL MOTONEURONES MEASURED BY COMBINING VOLTAGE CLAMP, CURRENT CLAMP AND INTRACELLULAR STAINING [J].
CLEMENTS, JD ;
REDMAN, SJ .
JOURNAL OF PHYSIOLOGY-LONDON, 1989, 409 :63-87