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水合氯醛会改变海胆胚胎中纤毛基部装置和细胞器的组织结构。

Chloral hydrate alters the organization of the ciliary basal apparatus and cell organelles in sea urchin embryos.

作者信息

Chakrabarti A, Schatten H, Mitchell K D, Crosser M, Taylor M

机构信息

Department of Veterinary Pathobiology, University of Missouri-Columbia, 1600 East Rollins Street, Columbia, MO 65211,USA.

出版信息

Cell Tissue Res. 1998 Sep;293(3):453-62. doi: 10.1007/s004410051137.

Abstract

The mitotic inhibitor, chloral hydrate, induces ciliary loss in the early embryo phase of Lytechinus pictus. It causes a breakdown of cilia at the junction of the cilium and the basal body known as the basal plate. This leaves the plasma membrane temporarily unsealed. The basal apparatus accessory structures, consisting of the basal body, basal foot, basal foot cap, striated side arm, and striated rootlet, are either misaligned or disintegrated by treatment with chloral hydrate. Furthermore, microtubules which are associated with the basal apparatus are disassembled. Mitochondria accumulate at the base of cilia - underneath the plasma membrane - and show alterations in their structural organization. The accumulation of mitochondria is observed in 40% of all electron micrograph sections while 60% show the areas mostly devoid of mitochondria. The microvilli surrounding a cilium and striated rootlet remain intact in the presence of chloral hydrate. These results suggest that deciliation in early sea urchin embryos by chloral hydrate is caused by combined effects on the ciliary membrane and on microtubules in the cilia. Furthermore, it is suggested that chloral hydrate can serve as a tool to explore the cytoskeletal mechanisms that are involved in cilia motility in the developing sea urchin embryo.

摘要

有丝分裂抑制剂水合氯醛会在多棘海胆胚胎发育的早期阶段导致纤毛脱落。它会导致纤毛与基体连接处(即基底板)的纤毛发生断裂,从而使质膜暂时无法封闭。由基体、基足、基足帽、横纹侧臂和横纹小根组成的基体附属结构,在用氯醛处理后会出现排列紊乱或解体的情况。此外,与基体相关的微管也会被拆解。线粒体聚集在纤毛底部(质膜下方),其结构组织发生改变。在所有电子显微镜切片中,40%观察到线粒体聚集,而60%显示大部分区域没有线粒体。在水合氯醛存在的情况下,围绕纤毛和横纹小根的微绒毛保持完整。这些结果表明,水合氯醛导致早期海胆胚胎纤毛脱落是对纤毛膜和纤毛中的微管共同作用的结果。此外,有人提出水合氯醛可作为一种工具,用于探索参与发育中海胆胚胎纤毛运动的细胞骨架机制。

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