A MODEL OF GRADED SYNAPTIC TRANSMISSION FOR USE IN DYNAMIC NETWORK SIMULATIONS

被引:22
作者
DESCHUTTER, E
ANGSTADT, JD
CALABRESE, RL
机构
[1] EMORY UNIV,DEPT BIOL,1510 CLIFTON RD,ATLANTA,GA 30322
[2] UNIV INSTELLING ANTWERP,BORN BUNGE FDN,B-2610 WILRIJK,BELGIUM
关键词
D O I
10.1152/jn.1993.69.4.1225
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
1. The heartbeat central pattern-generating network of the medicinal leech contains elemental neural oscillators, comprising reciprocally inhibitory pairs of segmental heart interneurons, that use graded as well as spike-mediated synaptic transmission. We are in the process of developing a general computer model of this pattern generator. Our modeling goal is to explore the interaction of membrane currents and synaptic transmission that promote oscillation in heart interneurons. As a first step toward this goal, we have developed a computer model of graded synaptic transmission between reciprocally inhibitory heart interneurons. Previously gathered voltage-clamp data of presynaptic Ca2+ currents and simultaneous postsynaptic currents and potentials (5 mM external [Ca2+]) were used as the bases of the model. 2. We assumed that presynaptic Ca2+ current was composed of distinct fast (I(CaF)) and slow (I(CaS)) components because there are two distinct time courses of inactivation for this current. We fitted standard Hodgkin-Huxley equations (Eq. 1 and 2, APPENDIX) to these components using first-order activation and inactivation kinetics. 3. Graded synaptic transfer in the model is based on calculation of a dimensionless variable [P]. A portion of both I(CaF) and I(CaS) determined by a factor A contributes to [P], and a removal factor B decreases [P] (Eq. 4, APPENDIX). [P] can be roughly equated to the [Ca2+] in an unspecified volume that is effective in causing transmitter release. Transmitter release, and thus postsynaptic conductance, is related to [P]3 (Eq. 3, APPENDIX). 4. We adapted our model to voltage-clamp data gathered at physiological external [Ca2+] (2.0 mM) and tested it for shorter presynaptic voltage steps. Presynaptic Ca2+ currents and synaptic transfer were well simulated under all conditions. 5. The graded synaptic transfer model could be used in a network simulation to reproduce the oscillatory activity of a reciprocally inhibitory pair of heart interneurons. Because synaptic transmission in the model is an explicit function of presynaptic Ca2+ current, the model should prove useful to explore the interaction between membrane currents and synaptic transmission that promote and modulate oscillation in reciprocally inhibitory heart interneurons.
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页码:1225 / 1235
页数:11
相关论文
共 57 条
[1]  
ANGSTADT JD, 1989, J NEUROSCI, V9, P2846
[2]  
ANGSTADT JD, 1991, J NEUROSCI, V11, P746
[3]   RATE MODIFICATION IN THE HEARTBEAT CENTRAL PATTERN GENERATOR OF THE MEDICINAL LEECH [J].
ARBAS, EA ;
CALABRESE, RL .
JOURNAL OF COMPARATIVE PHYSIOLOGY, 1984, 155 (06) :783-794
[4]  
ARBAS EA, 1987, J NEUROSCI, V7, P3953
[5]  
ARBAS EA, 1987, J NEUROSCI, V7, P3945
[6]  
ARBAS EA, 1990, J COMP PHYSIOL A, V167, P665, DOI 10.1007/BF00192660
[7]   CALCIUM ENTRY AND TRANSMITTER RELEASE AT VOLTAGE-CLAMPED NERVE-TERMINALS OF SQUID [J].
AUGUSTINE, GJ ;
CHARLTON, MP ;
SMITH, SJ .
JOURNAL OF PHYSIOLOGY-LONDON, 1985, 367 (OCT) :163-181
[8]  
BENJAMIN PR, 1989, CELLULAR NEURONAL OS, P173
[9]  
Burrows M., 1985, P109
[10]  
CALABRESE RL, 1979, J EXP BIOL, V82, P163