胎儿肠杯状细胞的细胞形态学。牛大肠的研究[j]。

K H Wille
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引用次数: 0

摘要

在肠隐窝底部区域,未分化的杯状细胞显示出细胞器和膜结构的配置和集群,表明它们对功能的重要性。这些发育阶段的图像提供了分泌颗粒产生机制的场景:可以说,来自颗粒内质网“过渡元素”(PALADE)的蛋白质囊泡聚集在高尔基体的反侧,通过最内层高尔基体片的外周膜段反转,从而形成小体。包膜液泡的起源是确定的,包膜液泡包含单个或集合体的囊泡。它们的被膜由三层外膜和内外膜组成;它们之间是高尔基体的浓缩物质。作者认为,鞘泡的形成是一种基本的、更普遍的机制。相比之下,合成的进一步步骤,为形成分泌颗粒,是更不均匀的。囊泡和内囊膜的缩合形成分泌颗粒,这是分泌颗粒产生过程中的基本要素。分泌颗粒单独发育或与其他颗粒融合形成初级分泌颗粒。然而,当考虑到囊泡与分泌-初级-次级分泌颗粒、分泌和初级分泌颗粒以及分泌颗粒和次级分泌颗粒的并列时,这种分泌颗粒形成机制的复杂性就变得明显了。一般来说,初级颗粒有成为次级分泌颗粒或与它们融合的趋势。在杯状细胞成熟过程中,分泌颗粒通过膜层的融合在卵膜内形成更大的粘液体;最终产物为无膜的均匀粘液团。
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[The cytomorphology of goblet cells of the fetal intestine. Studies of the large intestine of cattle (Bos primigenius taurus)].

In the region of the base of the intestinal crypts undifferentiated goblet cells display a configuration and constellation of organelles and membrane structures that are indicative of their importance for function. These images at this stage of development deliver a scenario of the mechanism of secretory granule production: aggregates of protein vesicles from the "transitional elements" (PALADE) of the granular endoplasmic reticulum are, so to speak, rolled up on the trans side of the Golgi apparatus by inversion of peripheral membrane segments of the innermost Golgi lamellae, thereby forming corpuscles. The origin of the capsulated vacuoles, which contain vesicles as single elements or as conglomerates, is well established. Their capsule consists of a trilaminar external and external and internal membrane; between them lies condensed material of the Golgi apparatus. In the opinion of the present author, the development of the ensheathed vacuoles represents a basic, more general mechanism. In contrast, the further steps of synthesis, for the formation of secretory granules, are more heterogeneous. Condensation of the vesicles and the inner capsular membrane results in the formation of a prosecretory granule, which in the basic element in the process of secretory granule production. The prosecretory granules develop singly or by fusion with other granules to give primary secretory granules. The complexity of this mechanism of secretory granule formation, however, becomes evident when considering the apposition of capsulated vacuoles and prosecretory--primary--secondary secretory granules, of prosecretory and primary secretory granules as well as prosecretory granules and secondary secretory granules. Generally, primary granules show a tendency to become secondary secretory granules or to fuse with them. During maturation of the goblet cells the secretory granules fuse to form larger mucous bodies in the theca by fusion of the laminae of the membranes; a final product, there is a homogeneous mucous mass devoid of membranes.

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