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Conserved oligomeric Golgi complex specifically regulates the maintenance of Golgi glycosylation machinery

机译:保守的低聚高尔基复合体可特异性调节高尔基糖基化机制的维持

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摘要

Cell surface lectin staining, examination of Golgi glycosyltransferases stability and localization, and matrix-assisted laser desorption ionization-time of flight (MALDI-TOF) analysis were employed to investigate conserved oligomeric Golgi (COG)-dependent glycosylation defects in HeLa cells. Both Griffonia simplicifolia lectin-II and Galanthus nivalus lectins were specifically bound to the plasma membrane glycoconjugates of COG-depleted cells, indicating defects in activity of medial- and trans-Golgi-localized enzymes. In response to siRNA-induced depletion of COG complex subunits, several key components of Golgi glycosylation machinery, including MAN2A1, MGAT1, B4GALT1 and ST6GAL1, were severely mislocalized. MALDI-TOF analysis of total N-linked glycoconjugates indicated a decrease in the relative amount of sialylated glycans in both COG3 KD and COG4 KD cells. In agreement to a proposed role of the COG complex in retrograde membrane trafficking, all types of COG-depleted HeLa cells were deficient in the Brefeldin A- and Sar1 DN-induced redistribution of Golgi resident glycosyltransferases to the endoplasmic reticulum. The retrograde trafficking of medial- and trans-Golgi-localized glycosylation enzymes was affected to a larger extent, strongly indicating that the COG complex regulates the intra-Golgi protein movement. COG complex-deficient cells were not defective in Golgi re-assembly after the Brefeldin A washout, confirming specificity in the retrograde trafficking block. The lobe B COG subcomplex subunits COG6 and COG8 were localized on trafficking intermediates that carry Golgi glycosyltransferases, indicating that the COG complex is directly involved in trafficking and maintenance of Golgi glycosylation machinery.
机译:细胞表面凝集素染色,高尔基糖基转移酶稳定性和定位的检查,以及基质辅助激光解吸电离飞行时间(MALDI-TOF)分析被用来研究HeLa细胞中保守的寡聚高尔基(COG)依赖性糖基化缺陷。 Griffonia simplicifolia凝集素II和Galanthus nivalus凝集素均特异性结合到COG耗尽细胞的质膜糖缀合物上,表明内侧和反高尔基体定位酶的活性存在缺陷。为了响应siRNA诱导的COG复杂亚基的耗竭,高尔基糖基化机制的几个关键组件(包括MAN2A1,MGAT1,B4GALT1和ST6GAL1)被严重错误定位。对总的N-连接的糖缀合物的MALDI-TOF分析表明,COG3 KD和COG4 KD细胞中唾液酸化聚糖的相对量均减少。与COG复合物在逆行膜运输中的拟议作用一致,所有类型的COG耗尽的HeLa细胞都缺乏Brefeldin A-和Sar1 DN诱导的高尔基驻留糖基转移酶向内质网的重新分布。内侧和反高尔基体定位的糖基化酶的逆行运输受到较大程度的影响,强烈表明COG复合物调节高尔基体内的蛋白质运动。 Brefeldin A洗脱后,COG复合物缺陷型细胞在高尔基体重组中没有缺陷,证实了逆行运输阻滞的特异性。 B叶COG亚复合物亚基COG6和COG8位于携带高尔基糖基转移酶的运输中间体上,表明COG复合物直接参与了高尔基糖基化机制的运输和维护。

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