Court Felipe A, Sherman Diane L, Pratt Thomas, Garry Emer M, Ribchester Richard R, Cottrell David F, Fleetwood-Walker Susan M, Brophy Peter J
Centre for Neuroscience Research, University of Edinburgh, Edinburgh EH9 1QH, UK.
Nature. 2004 Sep 9;431(7005):191-5. doi: 10.1038/nature02841.
Nerve impulses are propagated at nodes of Ranvier in the myelinated nerves of vertebrates. Internodal distances have been proposed to affect the velocity of nerve impulse conduction; however, direct evidence is lacking, and the cellular mechanisms that might regulate the length of the myelinated segments are unknown. Ramón y Cajal described longitudinal and transverse bands of cytoplasm or trabeculae in internodal Schwann cells and suggested that they had a nutritive function. Here we show that internodal growth in wild-type nerves is precisely matched to nerve extension, but disruption of the cytoplasmic bands in Periaxin-null mice impairs Schwann cell elongation during nerve growth. By contrast, myelination proceeds normally. The capacity of wild-type and mutant Schwann cells to elongate is cell-autonomous, indicating that passive stretching can account for the lengthening of the internode during limb growth. As predicted on theoretical grounds, decreased internodal distances strikingly decrease conduction velocities and so affect motor function. We propose that microtubule-based transport in the longitudinal bands of Cajal permits internodal Schwann cells to lengthen in response to axonal growth, thus ensuring rapid nerve impulse transmission.
神经冲动在脊椎动物有髓神经的郎飞结处传导。有观点认为节间距离会影响神经冲动的传导速度;然而,缺乏直接证据,且可能调节有髓节段长度的细胞机制尚不清楚。拉蒙·伊·卡哈尔描述了节间施万细胞中纵向和横向的细胞质带或小梁,并认为它们具有营养功能。我们在此表明,野生型神经中的节间生长与神经延伸精确匹配,但在无外周蛋白的小鼠中,细胞质带的破坏会损害神经生长过程中施万细胞的伸长。相比之下,髓鞘形成正常进行。野生型和突变型施万细胞伸长的能力是细胞自主的,这表明被动拉伸可解释肢体生长过程中节间的延长。正如理论预测的那样,节间距离减小会显著降低传导速度,从而影响运动功能。我们提出,基于微管的运输在卡哈尔纵向带中使节间施万细胞能够响应轴突生长而伸长,从而确保神经冲动的快速传递。