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木水虱中肠腺细胞内晶体的形成。

The formation of intracellular crystals in midgut glands of Limnoria lignorum.

作者信息

STRUNK S W

出版信息

J Biophys Biochem Cytol. 1959 May 25;5(3):385-92. doi: 10.1083/jcb.5.3.385.

Abstract

Certain morphological features of intracellular crystal formation within the midgut glands of Limnoria lignorum (Rathke) have been studied with the electron microscope and cytochemical methods. A correlation has been established between Golgi membranes and formation of the crystals. The Prussian blue reaction reveals quantities of iron localized in the intracellular crystals and in small granular structures seen in the apical region of the cells. These granules can be identified as accumulations of Golgi membranes, with which iron-containing particles are associated. When these membrane configurations are studied with the electron microscope, they can be classified and arranged in an assumed sequence which is thought to represent successive stages in the development of crystals. As the membrane systems become progressively specialized, increasing accumulations of dense granular material appear within their interstices. This material is rich in iron and probably represents the component responsible for the positive Prussian blue reaction. This material also appears to be a precursor substance for iron-containing protein molecules which are synthesized and arranged to make up the crystals. These iron-containing molecules are first deposited in orderly array as double rows of dense particles on certain internal membranes of the specialized Golgi complexes. The membranes later disappear and the particles form definitive crystals by rearrangement into a hexagonal close-packed pattern.

摘要

利用电子显微镜和细胞化学方法,对木水虱(Rathke)中肠腺内细胞内晶体形成的某些形态学特征进行了研究。已确定高尔基体膜与晶体形成之间存在关联。普鲁士蓝反应显示,细胞内晶体和细胞顶端区域可见的小颗粒结构中存在大量铁。这些颗粒可被鉴定为高尔基体膜的聚集物,含铁颗粒与之相关。当用电子显微镜研究这些膜结构时,它们可以被分类并按假定的顺序排列,该顺序被认为代表了晶体发育的连续阶段。随着膜系统逐渐特化,其间隙中出现越来越多的致密颗粒物质聚集。这种物质富含铁,可能是导致普鲁士蓝反应呈阳性的成分。这种物质似乎也是含铁蛋白质分子的前体物质,这些分子被合成并排列以构成晶体。这些含铁分子首先以双排致密颗粒的有序阵列形式沉积在特化高尔基体复合物的某些内膜上。这些膜随后消失,颗粒通过重排成六方密堆积模式形成最终的晶体。

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