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Land-locked mammalian Golgi reveals cargo transport between stable cisternae

机译:内陆哺乳动物高尔基族揭示了稳定水箱之间的货物运输

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摘要

The Golgi is composed of a stack of cis, medial, trans cisternae that are biochemically distinct. The stable compartments model postulates that permanent cisternae communicate through bi-directional vesicles, while the cisternal maturation model postulates that transient cisternae biochemically mature to ensure anterograde transport. Testing either model has been constrained by the diffraction limit of light microscopy, as the cisternae are only 10–20 nm thick and closely stacked in mammalian cells. We previously described the unstacking of Golgi by the ectopic adhesion of Golgi cisternae to mitochondria. Here, we show that cargo processing and transport continue—even when individual Golgi cisternae are separated and “land-locked” between mitochondria. With the increased spatial separation of cisternae, we show using three-dimensional live imaging that cis-Golgi and trans-Golgi remain stable in their composition and size. Hence, we provide new evidence in support of the stable compartments model in mammalian cells.
机译:高尔基体由一堆在生化上不同的顺式,反式,反式水箱组成。稳定的隔室模型假定永久性池通过双向囊泡进行通信,而脑池成熟模型则假定瞬时池通过生化成熟以确保顺行转运。测试任何一个模型都受到光学显微镜的衍射极限的限制,因为水箱只有10–20 nm厚并且紧密堆积在哺乳动物细胞中。我们先前描述了高尔基水箱与线粒体的异位粘附使高尔基体堆积。在这里,我们证明了货物的加工和运输仍在继续,即使单个高尔基蓄水池在线粒体之间分开并“内陆”时也是如此。随着水箱空间间隔的增加,我们显示了使用三维实时成像显示顺式高尔基体和反式高尔基体在其组成和大小上保持稳定。因此,我们提供了新的证据来支持哺乳动物细胞中的稳定区室模型。

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