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本文引用的文献

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Hebbian and anti-Hebbian spike-timing-dependent plasticity of human cortico-cortical connections.人类皮质-皮质连接的赫伯和反赫伯氏尖峰时间依赖性可塑性。
J Neurosci. 2013 Jun 5;33(23):9725-33. doi: 10.1523/JNEUROSCI.4988-12.2013.
2
GABAergic circuits control spike-timing-dependent plasticity.GABA 能性回路控制着依赖于发放时间的突触可塑性。
J Neurosci. 2013 May 29;33(22):9353-63. doi: 10.1523/JNEUROSCI.5796-12.2013.
3
Reversed timing-dependent associative plasticity in the human brain through interhemispheric interactions.通过大脑两半球间的相互作用,在人类大脑中产生了时间依赖性关联可塑性的反向变化。
J Neurophysiol. 2013 May;109(9):2260-71. doi: 10.1152/jn.01004.2012. Epub 2013 Feb 13.
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Cerebellum to motor cortex paired associative stimulation induces bidirectional STDP-like plasticity in human motor cortex.小脑到运动皮层的成对联合刺激诱导人类运动皮层双向 STDP 样可塑性。
Front Hum Neurosci. 2012 Sep 19;6:260. doi: 10.3389/fnhum.2012.00260. eCollection 2012.
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Short-interval intracortical inhibition blocks long-term potentiation induced by paired associative stimulation.短间隔皮质内抑制阻断了由成对联合刺激诱导的长时程增强。
J Neurophysiol. 2012 Apr;107(7):1935-41. doi: 10.1152/jn.00202.2011. Epub 2012 Jan 11.
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Presynaptic ionotropic receptors controlling and modulating the rules for spike timing-dependent plasticity.调控和调节依赖于发放时间的突触可塑性规则的突触前离子型受体。
Neural Plast. 2011;2011:870763. doi: 10.1155/2011/870763. Epub 2011 Sep 15.
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Altered bidirectional plasticity and reduced implicit motor learning in concussed athletes.脑震荡运动员的双向可塑性改变和内隐运动学习减少。
Cereb Cortex. 2012 Jan;22(1):112-21. doi: 10.1093/cercor/bhr096. Epub 2011 May 13.
8
Plasticity resembling spike-timing dependent synaptic plasticity: the evidence in human cortex.类似于尖峰时间依赖型突触可塑性的可塑性:人类皮层中的证据。
Front Synaptic Neurosci. 2010 Jul 30;2:34. doi: 10.3389/fnsyn.2010.00034. eCollection 2010.
9
Presynaptic NMDA Receptors and Spike Timing-Dependent Depression at Cortical Synapses.突触前 NMDA 受体和皮质突触的尖峰时间依赖性抑制。
Front Synaptic Neurosci. 2010 Jun 17;2:18. doi: 10.3389/fnsyn.2010.00018. eCollection 2010.
10
Human synapses show a wide temporal window for spike-timing-dependent plasticity.人类突触表现出宽的时间窗口的依赖于时间的尖峰可塑性。
Front Synaptic Neurosci. 2010 Jul 2;2:12. doi: 10.3389/fnsyn.2010.00012. eCollection 2010.

成人人类新皮质突触联想可塑性规则的基础机制。

Mechanisms underlying the rules for associative plasticity at adult human neocortical synapses.

机构信息

Department of Integrative Neurophysiology, VU University, 1081 HV, Amsterdam, The Netherlands, and Department of Neurosurgery, VU University Medical Center, Neuroscience Campus Amsterdam, 1081 HV, Amsterdam, The Netherlands.

出版信息

J Neurosci. 2013 Oct 23;33(43):17197-208. doi: 10.1523/JNEUROSCI.3158-13.2013.

DOI:10.1523/JNEUROSCI.3158-13.2013
PMID:24155324
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6618441/
Abstract

The neocortex in our brain stores long-term memories by changing the strength of connections between neurons. To date, the rules and mechanisms that govern activity-induced synaptic changes at human cortical synapses are poorly understood and have not been studied directly at a cellular level. Here, we made whole-cell recordings of human pyramidal neurons in slices of brain tissue resected during neurosurgery to investigate spike timing-dependent synaptic plasticity in the adult human neocortex. We find that human cortical synapses can undergo bidirectional modifications in strength throughout adulthood. Both long-term potentiation and long-term depression of synapses was dependent on postsynaptic NMDA receptors. Interestingly, we find that human cortical synapses can associate presynaptic and postsynaptic events in a wide temporal window, and that rules for synaptic plasticity in human neocortex are reversed compared with what is generally found in the rodent brain. We show this is caused by dendritic L-type voltage-gated Ca2+ channels that are prominently activated during action potential firing. Activation of these channels determines whether human synapses strengthen or weaken. These findings provide a synaptic basis for the timing rules observed in human sensory and motor plasticity in vivo, and offer insights into the physiological role of L-type voltage-gated Ca2+ channels in the human brain.

摘要

大脑中的新皮层通过改变神经元之间连接的强度来存储长期记忆。迄今为止,支配人类皮质突触活动诱导的突触变化的规则和机制还了解甚少,并且尚未在细胞水平上进行直接研究。在这里,我们对神经外科切除的脑组织切片中的人类锥体神经元进行全细胞记录,以研究成年人大脑新皮层中尖峰时间依赖性突触可塑性。我们发现,人类皮质突触在整个成年期都可以发生强度的双向修饰。突触的长时程增强和长时程抑制都依赖于突触后 NMDA 受体。有趣的是,我们发现人类皮质突触可以在广泛的时间窗口内关联突触前和突触后事件,并且人类新皮层中的突触可塑性规则与在啮齿动物大脑中普遍发现的规则相反。我们表明,这是由树突 L 型电压门控 Ca2+通道引起的,在动作电位放电期间这些通道被显著激活。这些通道的激活决定了人类突触是增强还是减弱。这些发现为体内观察到的人类感觉和运动可塑性中的定时规则提供了突触基础,并为 L 型电压门控 Ca2+通道在人类大脑中的生理作用提供了新的见解。