A model for cortical rewiring following deafferentation and focal stroke

被引:39
作者
Butz, Markus [1 ,2 ]
van Ooyen, Arjen
Woergoetter, Florentin [2 ]
机构
[1] Vrije Univ Amsterdam, CNCR, Dept Integrat Neurophysiol, NL-1081 HV Amsterdam, Netherlands
[2] Univ Gottingen, Bernstein Ctr Computat Neurosci Gottingen, Gottingen, Germany
关键词
lesion-induced plasticity; neuronal network model; homeostasis; structural plasticity; cortical remapping; synaptogenesis; axonal sprouting; neurological rehabilitation; BLOCKED SYNAPTIC-TRANSMISSION; MOTOR CORTEX PLASTICITY; STRUCTURAL PLASTICITY; DENDRITIC SPINES; LATERAL CONNECTIVITY; NEURONAL NETWORKS; VISUAL-CORTEX; FUNCTIONAL REORGANIZATION; BEHAVIORAL RECOVERY; SELF-STABILIZATION;
D O I
10.3389/neuro.10.010.2009
中图分类号
Q [生物科学];
学科分类号
090105 [作物生产系统与生态工程];
摘要
It is still unclear to what extent structural plasticity in terms of synaptic rewiring is the cause for cortical remapping after a lesion. Recent two-photon laser imaging studies demonstrate that synaptic rewiring is persistent in the adult brain and is dramatically increased following brain lesions or after a loss of sensory input (cortical deafferentation). We use a recurrent neural network model to study the time course of synaptic rewiring following a peripheral lesion. For this, we represent axonal and dendritic elements of cortical neurons to model synapse formation, pruning and synaptic rewiring. Neurons increase and decrease the number of axonal and dendritic elements in an activity-dependent fashion in order to maintain their activity in a homeostatic equilibrium. In this study we demonstrate that synaptic rewiring contributes to neuronal homeostasis during normal development as well as following lesions. We show that networks in homeostasis, which can therefore be considered as adult networks, are much less able to compensate for a loss of input. Interestingly, we found that paused stimulation of the networks are much more effective promoting reorganization than continuous stimulation. This can be explained as neurons quickly adapt to this stimulation whereas pauses prevents a saturation of the positive stimulation effect. These findings may suggest strategies for improving therapies in neurologic rehabilitation.
引用
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页数:15
相关论文
共 77 条
[1]
[Anonymous], SYNERGETICS BRAIN
[2]
Non-synaptic dendritic spines in neocortex [J].
Arellano, J. I. ;
Espinosa, A. ;
Fairen, A. ;
Yuste, R. ;
DeFelipe, J. .
NEUROSCIENCE, 2007, 145 (02) :464-469
[3]
Mapping perception to action in piano practice:: a longitudinal DC-EEG study -: art. no. 26 [J].
Bangert, M ;
Altenmüller, EO .
BMC NEUROSCIENCE, 2003, 4 (1)
[4]
A simulation model for compensatory plasticity in the prefrontal cortex inducing a cortico-cortical dysconnection in early brain development [J].
Butz, M ;
Teuchert-Noodt, G .
JOURNAL OF NEURAL TRANSMISSION, 2006, 113 (05) :695-710
[5]
Inverse relationship between adult hippocampal cell proliferation and synaptic rewiring in the dentate gyrus [J].
Butz, Markus ;
Teuchert-Noodt, Gertraud ;
Grafen, Keren ;
van Ooyen, Arjen .
HIPPOCAMPUS, 2008, 18 (09) :879-898
[6]
A theoretical network model to analyse neurogenesis and synaptogenesis in the dentate gyrus [J].
Butz, Markus ;
Lehmann, Konrad ;
Dammasch, Ingolf E. ;
Teuchert-Noodt, Gertraud .
NEURAL NETWORKS, 2006, 19 (10) :1490-1505
[7]
Activity-dependent structural plasticity [J].
Butz, Markus ;
Woergoetter, Florentin ;
van Ooyen, Arjen .
BRAIN RESEARCH REVIEWS, 2009, 60 (02) :287-305
[8]
Dynamic representational plasticity in sensory cortex [J].
Calford, MB .
NEUROSCIENCE, 2002, 111 (04) :709-738
[9]
New patterns of intracortical projections after focal cortical stroke [J].
Carmichael, ST ;
Wei, L ;
Rovainen, CM ;
Woolsey, TA .
NEUROBIOLOGY OF DISEASE, 2001, 8 (05) :910-922
[10]
Carmichael ST, 2002, J NEUROSCI, V22, P6062