Multipotent progenitor cells from the adult human brain: neurophysiological differentiation to mature neurons

被引:92
作者
Moe, MC [1 ]
Varghese, M
Danilov, AI
Westerlund, U
Ramm-Pettersen, J
Brundin, L
Svensson, M
Berg-Johnsen, J
Langmoen, IA
机构
[1] Karolinska Inst, Dept Clin Neurosci, S-17176 Stockholm, Sweden
[2] Univ Oslo, Rikshosp, Inst Surg Res, N-0316 Oslo, Norway
[3] Univ Oslo, Rikshosp, Dept Neurosurg, N-0316 Oslo, Norway
[4] Karolinska Inst, Ctr Mol Med, Neuroimmunol Unit, Stockholm, Sweden
关键词
action potentials; differentiation; human brain stem cells; multipotent precursors; synaptic connections;
D O I
10.1093/brain/awh574
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
It was long held as an axiom that new neurons are not produced in the adult human brain. More recent studies have identified multipotent cells whose progeny express glial or neuronal markers. This discovery may lead to new therapeutic strategies for CNS disorders, either by stimulating neurogenesis in vivo or by transplanting multipotent progenitor cells (MPCs) that have been propagated and differentiated in vitro. The clinical application of such approaches will be limited by the ability of these cells to develop into functional neurons. To facilitate an understanding of mechanisms regulating neurogenesis in the adult human brain, we characterized the developmental processes MPCs go through when progressing to a neuron. Human tissue was harvested during temporal lobe resections because of epilepsy, and cells were cultured as neurospheres. Our findings demonstrate that at an early stage, these cells often stain with neuronal markers without possessing any functional neuronal properties. Over a period of 4 weeks in culture, cells go through characteristic steps of morphological and electrophysiological development towards functional neurons; they develop a polarized appearance with multiple dendrites, whereas the membrane potential becomes more negative and the input resistance decreases [from -48 +/- 10 mV/557 +/- 85 M Omega (n = 15) between days 7 and 11 to -59 +/- 9 mV/380 +/- 79 M Omega (n = 9) between days 25 and 38, respectively]. Active membrane properties were first observed on day 7 and consisted of a voltage-gated K+-current. Later in the second week the cells developed voltage-gated Ca2+-channels and fired small Ca2+-driven action potentials. Immature Na+-driven action potentials developed from the beginning of the third week, and by the end of the fourth week the cells fired repetitive action potentials with a completely mature waveform generated by the combined action of the voltage-gated ionic channels I-Na, I-A and I-K. After 4 weeks, the newly formed neurons also communicated by the use of GABAergic and glutamatergic synapses. The adult human brain thus harbours MPCs, which have the ability to develop into neurons and in doing this follow characteristic steps of neurogenesis as seen in the developing brain.
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页码:2189 / 2199
页数:11
相关论文
共 58 条
[1]   2 DIFFERENT RESPONSES OF HIPPOCAMPAL PYRAMIDAL CELLS TO APPLICATION OF GAMMA-AMINO BUTYRIC-ACID [J].
ANDERSEN, P ;
DINGLEDINE, R ;
GJERSTAD, L ;
LANGMOEN, IA ;
LAURSEN, AM .
JOURNAL OF PHYSIOLOGY-LONDON, 1980, 305 (AUG) :279-296
[2]   Differential origins of neocortical projection and local circuit neurons: Role of Dlx genes in neocortical interneuronogenesis [J].
Anderson, S ;
Mione, M ;
Yun, K ;
Rubenstein, JLR .
CEREBRAL CORTEX, 1999, 9 (06) :646-654
[3]   Distinct origins of neocortical projection neurons and interneurons in vivo [J].
Anderson, SA ;
Kaznowski, CE ;
Horn, C ;
Rubenstein, JLR ;
McConnell, SK .
CEREBRAL CORTEX, 2002, 12 (07) :702-709
[4]   Isolation of multipotent neural precursors residing in the cortex of the adult human brain [J].
Arsenijevic, Y ;
Villemure, JG ;
Brunet, JF ;
Bloch, JJ ;
Déglon, N ;
Kostic, C ;
Zurn, A ;
Aebischer, P .
EXPERIMENTAL NEUROLOGY, 2001, 170 (01) :48-62
[5]   Early development of voltage-gated ion currents and firing properties in neurons of the mouse cerebral cortex [J].
Bahrey, HLP ;
Moody, WJ .
JOURNAL OF NEUROPHYSIOLOGY, 2003, 89 (04) :1761-1773
[6]  
Belluzzi O, 2003, J NEUROSCI, V23, P10411
[7]   Interneurons set the tune of developing networks [J].
Ben-Ari, Y ;
Khalilov, I ;
Represa, A ;
Gozlan, H .
TRENDS IN NEUROSCIENCES, 2004, 27 (07) :422-427
[8]   Developing networks play a similar melody [J].
Ben-Ari, Y .
TRENDS IN NEUROSCIENCES, 2001, 24 (06) :353-360
[9]  
Björklund A, 2000, NOVART FDN SYMP, V231, P7
[10]  
Bjorklund A., 2000, NOVART FDN SYMP, V231, P16