首页> 外文期刊>The Journal of Physiology >Fibre sub‐type specific conduction reveals metabolic function in mouse sciatic nerve
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Fibre sub‐type specific conduction reveals metabolic function in mouse sciatic nerve

机译:纤维子类型的特定传导显示鼠标坐骨神经中的代谢功能

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Key points We have developed an improved method that enables simultaneous recording of stimulus evoked compound action potentials from large myelinated A fibres and small unmyelinated C fibres in mouse sciatic nerves. Investigations into the ability of fructose to support conduction in sciatic nerve revealed a novel glia‐to‐axon metabolic pathway in which fructose is converted in Schwann cells to lactate for subsequent shuttling to A fibres. The C fibres most likely directly take up and metabolise fructose. These differences are indicative of fibre sub‐type specific metabolic profiles. These results demonstrate that the physiological insights provided by the method can be applied to investigations of peripheral nerve, with a view to understanding the metabolic disruptions that underlie diabetic neuropathy. Abstract The stimulus evoked compound action potential (CAP), recorded using suction electrodes, provides an index of the relative number of conducting axons within a nerve trunk. As such the CAP has been used to elucidate the diverse mechanisms of injury resulting from a variety of metabolic insults to central nervous white matter, whilst also providing a model with which to assess the benefits of clinically relevant neuroprotective strategies. In addition the technique lends itself to the study of metabolic cell‐to‐cell signalling that occurs between glial cells and neurones, and to exploring the ability of non‐glucose substrates to support axon conduction. Although peripheral nerves are sensitive to metabolic insult and are susceptible to diabetic neuropathy, there is a lack of fundamental information regarding peripheral nerve metabolism. A confounding factor in such studies is the extended duration demanded by the experimental protocol, requiring stable recording for periods of many hours. We describe a method that allows us to record simultaneously the stimulus evoked CAPs from A and C fibres from mouse sciatic nerve, and demonstrate its utility as applied to investigations into fibre sub‐type substrate use. Our results suggest that C fibres directly take up and metabolise fructose, whereas A fibre conduction is supported by fructose‐derived lactate, implying there exist unique metabolic profiles in neighbouring fibre sub‐types present within the same nerve trunk.
机译:关键点我们开发了一种改进的方法,使得能够同时记录来自大部分纤维和小鼠坐骨神经中的大部分纤维和小未键入的C纤维的刺激诱发的复合作用电位。调查果糖在坐骨神经中支持传导的能力揭示了一种新的胶质胶状轴代谢途径,其中果糖在施旺细胞中转化为乳酸,以随后穿梭于纤维。 C纤维很可能直接占用和代谢果糖。这些差异指示纤维子类型特定的代谢谱。这些结果表明,该方法提供的生理见解可以应用于外周神经的研究,以了解患糖尿病神经病变的代谢破坏。摘要诱发使用抽吸电极记录的复合动作电位(帽)的刺激提供了神经躯干内导电轴突的相对数量的指标。由于这些帽已被用来阐明由各种代谢损伤引起的各种损伤机制,这些损伤对中枢神经白体的各种代谢损伤,同时提供了一种评估临床相关神经保护策略的益处的模型。此外,该技术将其自身归因于胶质细胞和神经元之间发生的代谢细胞 - 细胞信号传导,并探索非葡萄糖基材支持轴突传导的能力。虽然周围神经对代谢侮辱敏感,但易患糖尿病神经病变,缺乏关于外周神经代谢的基本信息。这种研究中的混淆因素是实验方案所需的延长持续时间,需要稳定记录数小时。我们描述了一种方法,使我们能够同时记录来自小鼠坐骨神经的A和C纤维的刺激,并证明其用于研究纤维子型衬底使用的实用性。我们的研究结果表明,C纤维直接占用和代谢果糖,而纤维导通被果糖衍生的乳酸衍生地支撑,暗示在同一神经躯干内存在的相邻纤维子类型中存在独特的代谢谱。

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