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培养中发育的神经肌肉接头处细胞周围蛋白水解作用增强。

Increases in pericellular proteolysis at developing neuromuscular junctions in culture.

作者信息

Champaneria S, Swenarchuk L E, Anderson M J

机构信息

Department of Anatomy, University of Calgary, Alberta, Canada.

出版信息

Dev Biol. 1992 Feb;149(2):261-77. doi: 10.1016/0012-1606(92)90283-m.

Abstract

To determine whether localized changes in pericellular proteolysis contribute to synapse formation, we examined the degradative actions of developing Xenopus laevis nerve and muscle cells on films of extracellular matrix proteins adsorbed to the glass surface of a tissue culture chamber. Skeletal myocytes, growing neurites, and fibroblasts all removed fluorescent fibronectin and laminin from the culture substratum at regions of close cell-surface contact. In addition, however, motor neurites also displayed a particularly enhanced rate of gelatin elimination at developing neuromuscular junctions. It has already been shown (a) that there is a similar remodeling of organized muscle basal lamina proteoglycan accumulations along the path of nerve-muscle contact and (b) that this is the earliest detectable biochemical change specific to developing neuromuscular junctions. Our observations thus suggest that the establishment of motoneuron-muscle contact leads to a further activation of pericellular proteinases along both the pre- and the postsynaptic surfaces of the developing junction. We therefore consider whether site-specific proteinase-activation cascades could contribute to the inductive signals that direct synaptic differentiation.

摘要

为了确定细胞周围蛋白水解的局部变化是否有助于突触形成,我们检测了非洲爪蟾发育中的神经和肌肉细胞对吸附在组织培养室玻璃表面的细胞外基质蛋白膜的降解作用。骨骼肌细胞、生长中的神经突和成纤维细胞在细胞表面紧密接触的区域均能从培养底物中去除荧光纤维连接蛋白和层粘连蛋白。然而,除此之外,运动神经突在发育中的神经肌肉接头处还表现出特别增强的明胶清除率。已经表明:(a)沿着神经 - 肌肉接触路径,有组织的肌肉基底膜蛋白聚糖积累存在类似的重塑;(b)这是发育中的神经肌肉接头最早可检测到的特定生化变化。因此,我们的观察结果表明,运动神经元与肌肉接触的建立会导致沿着发育中接头的突触前和突触后表面进一步激活细胞周围蛋白酶。我们因此思考位点特异性蛋白酶激活级联反应是否可能促成指导突触分化的诱导信号。

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