W/Wν小鼠小肠成纤维细胞样细胞形成间隙连接的超微结构观察

Kazuhide Horiguchi, Terumasa Komuro
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引用次数: 85

摘要

将野生型(+/+)小鼠小肠超微结构与仅有少量与奥尔巴赫神经丛相关的Cajal间质细胞(ICC)的c-kit突变型(W/Wν)小鼠进行比较,以阐明特化的膜接触是否是广泛分布于消化道肌层的所谓成纤维细胞样细胞的普遍特征。在W/Wν小鼠中发现的奥尔巴赫区成纤维细胞样细胞数量与+/+小鼠大致相同,而在本研究中W/Wν小鼠中未发现与奥尔巴赫丛相关的ICC (ICC- ap)。成纤维细胞样细胞的特点是细胞质具有中等至高的电子密度,发育良好的粗糙内质网,细胞核周围有厚的异染色质堆积。沿细胞膜未见基底层和小泡。观察到单个成纤维细胞样细胞与圆形和纵层肌细胞形成可能的小间隙连接。在+/+和W/Wν小鼠的深肌丛区域也观察到具有相同特征的成纤维细胞样细胞。目前的观察,以及我们之前对大鼠和豚鼠的研究表明,胃肠道肌肉组织中成纤维细胞样细胞上普遍存在间隙连接或间隙连接样结构,它们通过传递电信号或分子信号来影响肌肉张力状态,参与胃肠道运动的调节系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrastructural observations of fibroblast-like cells forming gap junctions in the W/Wν mouse small intestine

The ultrastructure of the wild-type (+/+) mice small intestine was compared with c-kit mutant (W/Wν) mice which only have few interstitial cells of Cajal (ICC) associated with Auerbach’s plexus, in order to elucidate whether the specialized membrane contacts are general features of so-called fibroblast-like cells that are widely distributed in the tunica muscularis of the alimentary tract. Fibroblast-like cells in the Auerbach region were found in approximately equal number in W/Wν mice as in +/+ mice, while ICC associated with Auerbach’s plexus (ICC-AP) could not be demonstrated in W/Wν mice in the present investigation. Fibroblast-like cells were characterized by cytoplasm of moderate to high electron density, well developed rough endoplasmic reticulum and nuclei with thick peripheral accumulations of heterochromatin. There were no basal lamina and caveolae along the cell membrane. It was observed that single fibroblast-like cells formed probable small gap junctions with muscle cells of both circular and longitudinal layers. Fibroblast-like cells with the same features were also observed in the region of the deep muscular plexus in both +/+ and W/Wν mice. The present observation, together with our previous studies on rats and guinea-pigs, suggest the common presence of gap junctions or gap junction-like structures on fibroblast-like cells in the gastrointestinal musculature and their involvement in the regulatory system of gastrointestinal motility by passing electrical or molecular signals to influence the state of muscle tonus.

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