Blackburn Jessica Bailey, Lupashin Vladimir V
Department of Physiology, University of Arkansas for Medical Sciences, 4301 West Markham Street, Little Rock, AR, 72205, USA.
Methods Mol Biol. 2016;1496:145-61. doi: 10.1007/978-1-4939-6463-5_12.
The conserved oligomeric Golgi (COG) complex is a key evolutionally conserved multisubunit protein machinery that regulates tethering and fusion of intra-Golgi transport vesicles. The Golgi apparatus specifically promotes sorting and complex glycosylation of glycoconjugates. Without proper glycosylation and processing, proteins and lipids will be mislocalized and/or have impaired function. The Golgi glycosylation machinery is kept in homeostasis by a careful balance of anterograde and retrograde trafficking to ensure proper localization of the glycosylation enzymes and their substrates. This balance, like other steps of membrane trafficking, is maintained by vesicle trafficking machinery that includes COPI vesicular coat proteins, SNAREs, Rabs, and both coiled-coil and multi-subunit vesicular tethers. The COG complex interacts with other membrane trafficking components and is essential for proper localization of Golgi glycosylation machinery. Here we describe using CRISPR-mediated gene editing coupled with a phenotype-based selection strategy directly linked to the COG complex's role in glycosylation homeostasis to obtain COG complex subunit knockouts (KOs). This has resulted in clonal KOs for each COG subunit in HEK293T cells and gives the ability to further probe the role of the COG complex in Golgi homeostasis.
保守寡聚高尔基体(COG)复合体是一种关键的进化保守多亚基蛋白质机器,可调节高尔基体内部运输囊泡的拴系和融合。高尔基体专门促进糖缀合物的分选和复杂糖基化。如果没有适当的糖基化和加工,蛋白质和脂质将定位错误和/或功能受损。高尔基体糖基化机器通过顺行和逆行运输的精确平衡保持稳态,以确保糖基化酶及其底物的正确定位。与膜运输的其他步骤一样,这种平衡由包括COPI囊泡衣被蛋白、SNARE蛋白、Rabs以及卷曲螺旋和多亚基囊泡拴系蛋白在内的囊泡运输机器维持。COG复合体与其他膜运输成分相互作用,对高尔基体糖基化机器的正确定位至关重要。在这里,我们描述了使用CRISPR介导的基因编辑结合基于表型的选择策略,该策略直接与COG复合体在糖基化稳态中的作用相关,以获得COG复合体亚基敲除(KO)。这导致了HEK293T细胞中每个COG亚基的克隆KO,并能够进一步探究COG复合体在高尔基体稳态中的作用。