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在一种新型神经-肌肉共培养系统中,烟碱型乙酰胆碱受体的功能成熟作为小鼠肌肉分化的指标

Functional maturation of nicotinic acetylcholine receptors as an indicator of murine muscular differentiation in a new nerve-muscle co-culture system.

作者信息

Wagner Stéphanie, Dorchies Olivier M, Stoeckel Herrade, Warter Jean-Marie, Poindron Philippe, Takeda Kenneth

机构信息

Laboratoire de Pathologie des Communications entre Cellules Nerveuses et Musculaires, EA2308, Faculté de Pharmacie, Université Louis Pasteur de Strasbourg, 74 route du Rhin, BP 24, 67401 Illkirch, France.

出版信息

Pflugers Arch. 2003 Oct;447(1):14-22. doi: 10.1007/s00424-003-1135-7. Epub 2003 Aug 28.

Abstract

Under normal conditions in situ, muscle fibers and motoneurons, the main partners of motor units, are strongly dependent on each other. This interdependence hinders ex vivo studies of neuromuscular disorders where nervous or muscular components are considered separately. To allow in vitro access to complex nerve-muscle relationships, we developed a novel nerve-muscle co-culture system where mouse muscle innervation is assured by rat spinal cord explants. The degree of muscular maturation during co-culture was evaluated using the distribution of nicotinic acetylcholine receptors (AChRs) and their electrophysiological characteristics before and after innervation. In myotubes from non-innervated cultures, AChRs were diffusely distributed over the entire myotube surface. Their single-channel conductance (33.5+/-0.6 pS) and mean open time (8.1+/-0.7 ms) are characteristic of AChRs described in embryonic or denervated skeletal muscles. In innervated muscle fibers from co-cultures, AChRs appear as discrete aggregates and co-localize with synaptotagmin. In addition to the embryonic type currents, in innervated fibers AChR currents having high conductance (53.3+/-5.9 pS) and short mean open time (2.6+/-0.1 ms), characteristic of AChRs at mature neuromuscular junctions, were observed. Our data support the use of this new nerve-muscle co-culture system as a reliable model for the study of murine muscular differentiation and function.

摘要

在正常的原位条件下,肌纤维和运动神经元作为运动单位的主要组成部分,彼此高度依赖。这种相互依存关系阻碍了对神经肌肉疾病进行体外研究,因为在这类研究中神经或肌肉成分是被分开考虑的。为了能够在体外研究复杂的神经 - 肌肉关系,我们开发了一种新型的神经 - 肌肉共培养系统,其中小鼠肌肉的神经支配由大鼠脊髓外植体提供。通过在共培养前后使用烟碱型乙酰胆碱受体(AChRs)的分布及其电生理特性来评估共培养过程中肌肉的成熟程度。在未受神经支配的培养物中的肌管中,AChRs 分散分布在整个肌管表面。它们的单通道电导(33.5±0.6 pS)和平均开放时间(8.1±0.7 ms)是胚胎或去神经支配的骨骼肌中所描述的 AChRs 的特征。在共培养的受神经支配的肌纤维中,AChRs 表现为离散的聚集体,并与突触结合蛋白共定位。除了胚胎型电流外,在受神经支配的纤维中还观察到具有高电导(53.3±5.9 pS)和短平均开放时间(2.6±0.1 ms)的 AChR 电流,这是成熟神经肌肉接头处 AChRs 的特征。我们的数据支持将这种新的神经 - 肌肉共培养系统用作研究小鼠肌肉分化和功能的可靠模型。

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