Activity-dependent neuronal cell migration induced by electrical stimulation

被引:0
|
作者
Se Hoon Jeong
Sang Beom Jun
Jong Keun Song
Sung June Kim
机构
[1] Seoul National University,Interdisciplinary Program in Brain Science
[2] Seoul National University,School of Electrical Engineering
[3] Nano Bioelectronics and Systems Research Center,undefined
[4] Laboratory for Integrative Neuroscience,undefined
[5] NIAAA/NIH,undefined
关键词
Electrical stimulation; Neuronal migration; Microelectrode array; Astrocyte; Neuronal activity;
D O I
暂无
中图分类号
学科分类号
摘要
Recently, we found that electrical stimulation can induce neuronal migration in neural networks cultured for more than 3 weeks on microelectrode arrays. Immunocytochemistry data showed that the aggregation of neurons was related to the emergence of astrocytes in culture. In this study, when neurons were cocultured with astrocytes, electrical stimulation could induce the migration of neuronal cell bodies after only 1 week in culture, while the same stimulation paradigm caused neural necrosis in neuron-only cultures. In addition, the stimulation-induced migration was inhibited by blocking action potentials in neural networks using the voltage-gated sodium channel blocker, tetrodotoxin. Immunocytochemistry was performed to monitor precisely the neuronal migration and count the number of neurons. These results indicate that neuronal migration of cell bodies is dependent on neuronal activity evoked by electrical stimulation and can be enhanced by coculturing with astrocytes. We believe this method can be employed as a means for modifying neural networks and improving the interface between electrodes and neurons.
引用
收藏
页码:93 / 99
页数:6
相关论文
共 50 条
  • [1] Activity-dependent neuronal cell migration induced by electrical stimulation
    Jeong, Se Hoon
    Jun, Sang Beom
    Song, Jong Keun
    Kim, Sung June
    [J]. MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 2009, 47 (01) : 93 - 99
  • [2] Modeling of topology-dependent neural network plasticity induced by activity-dependent electrical stimulation
    Ni, Ruiye
    Ledbetter, Noah M.
    Barbour, Dennis L.
    [J]. 2013 6TH INTERNATIONAL IEEE/EMBS CONFERENCE ON NEURAL ENGINEERING (NER), 2013, : 831 - 834
  • [3] Neuronal Activity-Dependent Regulation of MicroRNAs
    Sim, Su-Eon
    Bakes, Joseph
    Kaang, Bong-Kiun
    [J]. MOLECULES AND CELLS, 2014, 37 (07) : 511 - 517
  • [4] Activity-dependent model for neuronal avalanches
    de Arcangelis, L.
    [J]. ASPECTS OF PHYSICAL BIOLOGY: BIOLOGICAL WATER, PROTEIN SOLUTIONS, TRANSPORT AND REPLICATION, 2008, 752 : 215 - 230
  • [5] Self-organization of modular network architecture by activity-dependent neuronal migration and outgrowth
    Okujeni, Samora
    Egert, Ulrich
    [J]. ELIFE, 2019, 8
  • [6] Activity-dependent expression of Channelrhodopsin at neuronal synapses
    Gobbo, Francesco
    Marchetti, Laura
    Jacob, Ajesh
    Pinto, Bruno
    Binini, Noemi
    Bisogni, Federico Pecoraro
    Alia, Claudia
    Luin, Stefano
    Caleo, Matteo
    Fellin, Tommaso
    Cancedda, Laura
    Cattaneo, Antonino
    [J]. NATURE COMMUNICATIONS, 2017, 8
  • [7] Activity-dependent expression of Channelrhodopsin at neuronal synapses
    Francesco Gobbo
    Laura Marchetti
    Ajesh Jacob
    Bruno Pinto
    Noemi Binini
    Federico Pecoraro Bisogni
    Claudia Alia
    Stefano Luin
    Matteo Caleo
    Tommaso Fellin
    Laura Cancedda
    Antonino Cattaneo
    [J]. Nature Communications, 8
  • [8] Activity-dependent neuronal model on complex networks
    de Arcangelis, Lucilla
    Herrmann, Hans J.
    [J]. FRONTIERS IN PHYSIOLOGY, 2012, 3
  • [9] Activity-dependent translocation of neurogranin to neuronal nuclei
    Garrido-Garcia, Alberto
    Andres-Pans, Beatriz
    Duran-Trio, Lara
    Javier Diez-Guerra, F.
    [J]. BIOCHEMICAL JOURNAL, 2009, 424 : 419 - 429
  • [10] Activity-dependent gene expression for neuronal plasticity
    Aizawa, H
    Ghosh, A
    [J]. SEIKAGAKU, 2006, 78 (04): : 326 - 330