Frequency-dependent regulation of afferent transmission in the feeding circuitry of Aplysiae

被引:12
作者
Evans, CG
Jing, J
Proekt, A
Rosen, SC
Cropper, EC
机构
[1] CUNY Mt Sinai Sch Med, Dept Physiol & Biophys, New York, NY 10029 USA
[2] Phase Five Commun, New York, NY 10011 USA
关键词
D O I
10.1152/jn.00786.2003
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
During rhythmic behaviors, sensori-motor transmission is often regulated so that there are phasic changes in afferent input to follower neurons. We study this type of regulation in the feeding circuit of Aplysia. We characterize effects of the B4/5 interneurons on transmission from the mechanoafferent B21 to the radula closer motor neuron B8. In quiescent preparations, B4/5-induced postsynaptic potentials (PSPs) can block spike propagation in the lateral process of B21 and inhibit afferent transmission. B4/5 are, however, active during the retraction phase of motor programs, i.e., when mechanoafferent transmission to B8 presumably occurs. To determine whether mechanoafferent transmission is necessarily inhibited when B4/5 are active, we characterize the B4/5 firing frequency during retraction and show that, for the most part, it is low (below 15 Hz). There is, therefore, a low probability that spike propagation will be inhibited. The relative ineffectiveness of low frequency activity is not simply a consequence of insufficient PSP magnitude, because a single PSP can block spike propagation. Instead, it is related to the fact that PSPs have a short duration. When B4/5 fire at a low frequency, there is therefore a low probability that afferent transmission in the lateral process of B21 can be inhibited. In conclusion, we demonstrate that afferent transmission will not always be affected when a neuron that exerts inhibitory effects is active. Although a cell may be ineffective when it fires at a low frequency, ineffectiveness is not necessarily a consequence of spike frequency per se. Instead it may be due to spike timing.
引用
收藏
页码:3967 / 3977
页数:11
相关论文
共 38 条
[1]  
Borovikov D, 2000, J NEUROSCI, V20, P1990
[2]   Effects of antidromic discharges in crayfish primary afferents [J].
Cattaert, D ;
Bévengut, M .
JOURNAL OF NEUROPHYSIOLOGY, 2002, 88 (04) :1753-1765
[3]   Presynaptic inhibition and antidromic spikes in primary afferents of the crayfish: A computational and experimental analysis [J].
Cattaert, D ;
Libersat, F ;
El Manira, A .
JOURNAL OF NEUROSCIENCE, 2001, 21 (03) :1007-1021
[4]   ACTIVITY OF MULTIPLE IDENTIFIED MOTOR-NEURONS RECORDED INTRACELLULARLY DURING EVOKED FEEDINGLIKE MOTOR PROGRAMS IN APLYSIA [J].
CHURCH, PJ ;
LLOYD, PE .
JOURNAL OF NEUROPHYSIOLOGY, 1994, 72 (04) :1794-1809
[5]  
Clarac F, 1996, EXP BRAIN RES, V112, P163
[6]   Multiple mechanisms for peripheral activation of the peptide-containing radula mechanoafferent neurons B21 and B22 of Aplysia [J].
Cropper, EC ;
Evans, CG ;
Rosen, SC .
JOURNAL OF NEUROPHYSIOLOGY, 1996, 76 (02) :1344-1351
[7]   Reduction of presynaptic action potentials by PAD: Model and experimental study [J].
D'Incamps, BL ;
Meunier, C ;
Monnet, ML ;
Jami, L ;
Zytnicki, D .
JOURNAL OF COMPUTATIONAL NEUROSCIENCE, 1998, 5 (02) :141-156
[8]   NEURAL BASIS OF RHYTHMIC BEHAVIOR IN ANIMALS [J].
DELCOMYN, F .
SCIENCE, 1980, 210 (4469) :492-498
[9]  
Evans CG, 2003, J NEUROSCI, V23, P2920
[10]   SYNAPTIC CONNECTIONS AND FUNCTIONAL ORGANIZATION IN APLYSIA BUCCAL GANGLIA [J].
FIORE, L ;
MEUNIER, JM .
JOURNAL OF NEUROBIOLOGY, 1979, 10 (01) :13-29