IMPLICATIONS OF ACTIVITY-DEPENDENT NEURITE OUTGROWTH FOR NEURONAL MORPHOLOGY AND NETWORK DEVELOPMENT

被引:69
|
作者
VANOOYEN, A
VANPELT, J
CORNER, MA
机构
[1] Netherlands Institute for Brain Research, 1105 AZ Amsterdam
关键词
D O I
10.1006/jtbi.1995.0005
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Empirical studies have demonstrated that electrical activity of the neuron can directly affect neurite outgrowth. In this paper, we study the possible implications of activity-dependent neurite outgrowth for neuronal morphology and network development, using a model in which initially disconnected cells organize themselves into a network under the influence of their intrinsic activity. A neuron is modelled as a neuritic field, the growth of which depends on its own level of activity, and neurons become connected when their fields overlap. In a purely excitatory network, we have previously demonstrated that activity-dependent outgrowth in combination with a neuronal response function with some form of firing threshold is sufficient to cause a transient overproduction (overshoot) in the number of connections or synapses. Here we show that overshoot still takes place in a network of excitatory and inhibitory cells, and can even be enhanced. With delayed development of inhibition the growth curve of the number of inhibitory, connections no longer exhibits overshoot. An interesting emergent property of the model is that, solely as the result of simple outgrowth rules and cell interactions, the (dendritic) fields of the inhibitory cells tend to become smaller than those of the excitatory cells, even if both type of cells have the same outgrowth properties. Other consequences of the interactions among outgrowth, excitation and inhibition are that (i) the spatial distribution of inhibitory cells becomes important in determining the level of inhibition; (ii) pruning of connections can no longer take place if the network has grown without proper electrical activity for longer than a certain critical period; (iii) inhibitory cells, by inducing outgrowth, can help to connect different parts of a structure. Further, the model predicts that excitatory cell death will be accompanied by an increased neuritic field of surviving neurons (''compensatory sprouting''). The similarities of the model with findings in developing tissue cultures of dissociated cells are extensively discussed.
引用
收藏
页码:63 / 82
页数:20
相关论文
共 50 条
  • [1] ACTIVITY-DEPENDENT NEURITE OUTGROWTH AND NEURAL-NETWORK DEVELOPMENT
    VANOOYEN, A
    VANPELT, J
    [J]. SELF-ORGANIZING BRAIN: FROM GROWTH CONES TO FUNCTIONAL NETWORKS, 1994, 102 : 245 - 259
  • [2] Effects of inhibition on neural network development through activity-dependent neurite outgrowth
    vanOss, C
    vanOoyen, A
    [J]. JOURNAL OF THEORETICAL BIOLOGY, 1997, 185 (02) : 263 - 280
  • [3] Network connectivity changes through activity-dependent neurite outgrowth
    VanOoyen, A
    Pakdaman, K
    Houweling, AR
    VanPelt, J
    Vibert, JF
    [J]. NEURAL PROCESSING LETTERS, 1996, 3 (03) : 123 - 130
  • [4] Complex periodic behaviour in a neural network model with activity-dependent neurite outgrowth
    vanOoyen, A
    vanPelt, J
    [J]. JOURNAL OF THEORETICAL BIOLOGY, 1996, 179 (03) : 229 - 242
  • [5] Self-organization of modular network architecture by activity-dependent neuronal migration and outgrowth
    Okujeni, Samora
    Egert, Ulrich
    [J]. ELIFE, 2019, 8
  • [6] NRC-INTERACTING FACTOR DIRECTS NEURITE OUTGROWTH IN AN ACTIVITY-DEPENDENT MANNER
    Zhao, X. -S.
    Fu, W. -Y.
    Hung, K. -W.
    Chien, W. W. Y.
    Li, Z.
    Fu, A. K.
    Ip, N. Y.
    [J]. NEUROSCIENCE, 2015, 289 : 207 - 213
  • [7] Growth cone dynamics and activity-dependent processes in neuronal network development
    vanPelt, J
    vanOoyen, A
    Corner, MA
    [J]. NEURAL DEVELOPMENT AND PLASTICITY, 1996, 108 : 333 - 346
  • [8] Activity-dependent mechanisms underlying neuronal gene expression and neurite growth
    Bito, Haruhiko
    [J]. NEUROSCIENCE RESEARCH, 2011, 71 : E5 - E5
  • [9] Rabin8 regulates neurite outgrowth in both GEF activity-dependent and -independent manners
    Homma, Yuta
    Fukuda, Mitsunori
    [J]. MOLECULAR BIOLOGY OF THE CELL, 2016, 27 (13) : 2107 - 2118
  • [10] Neurotrophin release by neurotrophins: Implications for activity-dependent neuronal plasticity
    Canossa, M
    Griesbeck, O
    Berninger, B
    Campana, G
    Kolbeck, R
    Thoenen, H
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (24) : 13279 - 13286