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Oligodendrocytes Changing the Rules: Action Potentials in Glia and Oligodendrocytes Controlling Action Potentials

机译:少突胶质细胞改变规则:胶质细胞和少突胶质细胞的动作电位控制动作电位

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摘要

Two long-standing rules in cellular neuroscience must now be amended with the publication of two studies on myelin-forming glia in the CNS: 1) Neurons can no longer be considered the only cells that fire electric impulses in the brain. 2) Synapses between neurons are not the only way electrical information is regulated as it propagates through neural circuits: oligodendrocytes can cause rapid activity-dependent changes in spike latency. A category of oligodendrocyte precursor cells (OPCs) has been identified that can fire action potentials, and their excitation is driven by synapses from axons. This finding has relevance to excitotoxicity in ischemia, but the normal function may be to regulate myelination according to functional activity in axons. A second study reveals that action potential propagation through CNS axons can be rapidly regulated by oligodendrocytes. Mature oligodendrocytes in the rat hippocampus are depolarized by theta burst stimulation of axons, and when the oligodendrocytes are depolarized by current injection in paired whole-cell recordings with CA1 pyramidal neurons, the latency of impulse conduction through the axons it ensheathes rapidly decreases. This unprecedented finding suggests a dynamic role for myelin in regulating impulse transmission through axons, promoting neural synchrony among the multiple axons under the domain of an individual oligodendrocyte.
机译:现在必须通过发表两项有关中枢神经系统中形成髓鞘的神经胶质的研究来修正细胞神经科学中的两个长期存在的规则:1)神经元不再被认为是在大脑中激发电脉冲的唯一细胞。 2)神经元之间的突触不是唯一的调节电子信息的途径,因为它通过神经回路传播:少突胶质细胞可以导致与活动有关的突波潜伏期快速变化。已经鉴定出一类可以激发动作电位的少突胶质细胞前体细胞(OPC),其激发是由轴突突触驱动的。这一发现与缺血中的兴奋毒性有关,但正常功能可能是根据轴突的功能活性来调节髓鞘形成。第二项研究表明,少突胶质细胞可以迅速调节通过CNS轴突传播的动作电位。大鼠海马中成熟的少突胶质细胞通过轴突的θ突触刺激去极化,当通过电流注入使少突突胶质细胞与CA1锥体神经元配对成全细胞记录时,通过其所激发的轴突的冲动传导潜伏期迅速减少。这一空前的发现表明,髓磷脂在调节通过轴突的脉冲传递,促进单个少突胶质细胞的域下的多个轴突之间的神经同步性方面具有动态作用。

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