Department of Molecular Biology, Faculty of Medicine, Göttingen Center of Biosciences (GZMB), Georg-August-University Göttingen, Humboldtallee 23, 37073 Göttingen, Germany.
Department of Molecular Biology, Faculty of Medicine, Göttingen Center of Biosciences (GZMB), Georg-August-University Göttingen, Humboldtallee 23, 37073 Göttingen, Germany.
Curr Opin Cell Biol. 2019 Jun;58:1-7. doi: 10.1016/j.ceb.2018.11.004. Epub 2018 Dec 7.
The molecular mechanisms of nuclear transport have been described in great detail and we are beginning to understand the structures of transport complexes and even of subcomplexes of the nuclear pore at an atomic or near-atomic resolution. The complexity of the clients that use the transport machinery, by contrast, is less well understood, although some transport receptors are reported to have hundreds of different cargoes and others only a few. Here, we review the recent attempts to define the cargo spectrum of individual nuclear transport receptors using bioinformatic, biochemical and cell biological approaches and compare the results obtained by these complementary methods. Remarkably, a large fraction of the soluble proteome can be subject to nucleocytoplasmic transport.
核转运的分子机制已经被详细描述,我们开始了解运输复合物的结构,甚至在原子或近原子分辨率下了解核孔的亚复合物结构。相比之下,使用运输机制的客户的复杂性还不太清楚,尽管有报道称一些运输受体有数百种不同的货物,而另一些只有几种。在这里,我们综述了最近使用生物信息学、生化和细胞生物学方法来定义单个核转运受体的货物谱的尝试,并比较了这些互补方法所获得的结果。值得注意的是,相当一部分可溶性蛋白质组可以进行核质转运。