Chen Ting-Jiun, Fröhlich Nicole, Kula Bartosz, Barzan Ruxandra, Kukley Maria
Group of Neuron Glia Interaction, Werner Reichardt Centre for Integrative Neuroscience, University of Tübingen, 72076 Tübingen, Germany.
Group of Neuron Glia Interaction, Werner Reichardt Centre for Integrative Neuroscience, University of Tübingen, 72076 Tübingen, Germany
J Neurosci. 2017 Dec 6;37(49):11818-11834. doi: 10.1523/JNEUROSCI.1168-17.2017. Epub 2017 Oct 31.
Schwann cells (SCs) are myelinating cells of the PNS. Although SCs are known to express different channels and receptors on their surface, little is known about the activation and function of these proteins. Ionotropic glutamate receptors are thought to play an essential role during development of SC lineage and during peripheral nerve injury, so we sought to study their functional properties. We established a novel preparation of living peripheral nerve slices with preserved cellular architecture and used a patch-clamp technique to study AMPA-receptor (AMPAR)-mediated currents in SCs for the first time. We found that the majority of SCs in the nerves dissected from embryonic and neonatal mice of both sexes respond to the application of glutamate with inward current mediated by Ca-permeable AMPARs. Using stationary fluctuation analysis (SFA), we demonstrate that single-channel conductance of AMPARs in SCs is 8-11 pS, which is comparable to that in neurons. We further show that, when SCs become myelinating, they downregulate functional AMPARs. This study is the first to demonstrate AMPAR-mediated conductance in SCs of vertebrates, to investigate elementary properties of AMPARs in these cells, and to provide detailed electrophysiological and morphological characterization of SCs at different stages of development. We provide several important conceptual and technical advances in research on the PNS. We pioneer the first description of AMPA receptor (AMPAR)-mediated currents in the PNS glia of vertebrates and provide new insights into the properties of AMPAR channels in peripheral glia; for example, their Ca permeability and single-channel conductance. We describe for the first time the electrophysiological and morphological properties of Schwann cells (SCs) at different stages of development and show that functional AMPARs are expressed only in developing, not mature, SCs. Finally, we introduce a preparation of peripheral nerve slices for patch-clamp recordings. This preparation opens new possibilities for studying the physiology of SCs in animal models and in surgical human samples.
施万细胞(SCs)是周围神经系统(PNS)的髓鞘形成细胞。尽管已知施万细胞在其表面表达不同的通道和受体,但对这些蛋白质的激活和功能却知之甚少。离子型谷氨酸受体被认为在施万细胞谱系发育和周围神经损伤过程中起重要作用,因此我们试图研究它们的功能特性。我们建立了一种保留细胞结构的新型活外周神经切片制备方法,并首次使用膜片钳技术研究施万细胞中由α-氨基-3-羟基-5-甲基-4-异恶唑丙酸受体(AMPAR)介导的电流。我们发现,从雌雄胚胎和新生小鼠解剖的神经中,大多数施万细胞对谷氨酸的应用产生由钙通透性AMPAR介导的内向电流反应。使用静态波动分析(SFA),我们证明施万细胞中AMPAR的单通道电导为8 - 11皮西门子,这与神经元中的相当。我们进一步表明,当施万细胞开始形成髓鞘时,它们会下调功能性AMPAR。这项研究首次证明了脊椎动物施万细胞中AMPAR介导的电导,研究了这些细胞中AMPAR的基本特性,并提供了不同发育阶段施万细胞的详细电生理和形态学特征。我们在周围神经系统研究中提供了几个重要的概念和技术进展。我们首次描述了脊椎动物周围神经胶质细胞中由AMPAR介导的电流,并对周围神经胶质细胞中AMPAR通道的特性提供了新的见解;例如,它们的钙通透性和单通道电导。我们首次描述了不同发育阶段施万细胞的电生理和形态学特性,并表明功能性AMPAR仅在发育中的而非成熟的施万细胞中表达。最后,我们介绍了一种用于膜片钳记录的外周神经切片制备方法。这种制备方法为在动物模型和手术人类样本中研究施万细胞的生理学开辟了新的可能性。