Modeling of inhibition/excitation firing in olfactory bulb through spiking neurons

被引:10
作者
Valova, Iren
Gueorguieva, Natacha
Troescher, Frank
Lapteva, Oxana
机构
[1] CUNY Coll Staten Isl, Dept Comp Sci, Staten Isl, NY 10314 USA
[2] Univ Massachusetts, Dept Comp Sci, N Dartmouth, MA 02747 USA
关键词
olfactory bulb; spiking neuron model; neural networks;
D O I
10.1007/s00521-006-0060-z
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Spiking neural systems are based on biologically inspired neural models of computation since they take into account the precise timing of spike events and therefore are suitable to analyze dynamical aspects of neuronal signal transmission. These systems gained increasing interest because they are more sophisticated than simple neuron models found in artificial neural systems; they are closer to biophysical models of neurons, synapses, and related elements and their synchronized firing of neuronal assemblies could serve the brain as a code for feature binding and pattern segmentation. The simulations are designed to exemplify certain properties of the olfactory bulb (OB) dynamics and are based on an extension of the integrate-and-fire (IF) neuron, and the idea of locally coupled excitation and inhibition cells. We introduce the background theory to making an appropriate choice of model parameters. The following two forms of connectivity offering certain computational and analytical advantages, either through symmetry or statistical properties in the study of OB dynamics have been used: all-to-all coupling, receptive field style coupling. Our simulations showed that the inter-neuron transmission delay controls the size of spatial variations of the input and also smoothes the network response. Our IF extended model proves to be a useful basis from which we can study more sophisticated features as complex pattern formation, and global stability and chaos of OB dynamics.
引用
收藏
页码:355 / 372
页数:18
相关论文
共 50 条
[11]   Lateral inhibition in the olfactory bulb and in olfaction [J].
Urban, NN .
PHYSIOLOGY & BEHAVIOR, 2002, 77 (4-5) :607-612
[12]   Electrophysiological differentiation of new neurons in the olfactory bulb [J].
Belluzzi, O ;
Benedusi, M ;
Ackman, J ;
LoTurco, JJ .
JOURNAL OF NEUROSCIENCE, 2003, 23 (32) :10411-10418
[13]   Firing Patterns of Mitral Cells and Their Transformation in the Main Olfactory Bulb [J].
Wang, Ze-Jun ;
Sun, Liqin ;
Heinbockel, Thomas .
BRAIN SCIENCES, 2024, 14 (07)
[14]   Firing rate distributions in plastic networks of spiking neurons [J].
Vegue, Marina ;
Allard, Antoine ;
Desrosiers, Patrick .
NETWORK NEUROSCIENCE, 2025, 9 (01) :447-474
[15]   Modeling of neurotransmitter effects in olfactory bulb [J].
Valova, Iren ;
Lapteva, Oxana ;
Gueorguieva, Natacha .
NEURAL COMPUTING & APPLICATIONS, 2007, 16 (4-5) :341-353
[16]   Modeling of neurotransmitter effects in olfactory bulb [J].
Iren Valova ;
Oxana Lapteva ;
Natacha Gueorguieva .
Neural Computing and Applications, 2007, 16 :341-353
[17]   Functional synapse formation between rat olfactory receptor neurons and olfactory bulb neurons in vitro [J].
Kanaki, K ;
Sato, K ;
Kashiwayanagi, M .
NEUROSCIENCE LETTERS, 2000, 285 (01) :76-78
[18]   Regulation by protein kinase a switching of axonal pathfinding of zebrafish olfactory sensory neurons through the olfactory placode-olfactory bulb boundary [J].
Yoshida, T ;
Ito, A ;
Matsuda, N ;
Mishina, M .
JOURNAL OF NEUROSCIENCE, 2002, 22 (12) :4964-4972
[19]   Gating multiple signals through detailed balance of excitation and inhibition in spiking networks [J].
Vogels, Tim P. ;
Abbott, L. F. .
NATURE NEUROSCIENCE, 2009, 12 (04) :483-491
[20]   OLFACTORY-BULB NEURONS RESPOND TO CERVICOVAGINAL DISTENSION [J].
ESTRADAPALMA, LY ;
SOLANOFLORES, LP ;
ALDANA, A ;
GUEVARAGUZMAN, R ;
WAYNER, MJ .
BRAIN RESEARCH BULLETIN, 1993, 32 (05) :467-469