Kanazawa University, Kakuma-machi, Japan.
Biochem Pharmacol. 2010 Apr 15;79(8):1165-72. doi: 10.1016/j.bcp.2009.11.020. Epub 2009 Nov 29.
UDP-glucuronosyltransferases (UGTs) catalyze the glucuronidation of a variety of xeno/endobiotics. UGTs are type I membrane proteins of the endoplasmic reticulum (ER) with a glycosylated luminal domain. In the present study, we investigated the role of N-glycosylation in the function of human UGT1A9. Mutation analysis at the potential N-glycosylation sites at residues 71, 292, and 344 (from asparagine to glutamine) revealed that all of them were glycosylated, but the extent of glycosylation and/or size of the glycan differed. In comparison with the wild-type, these mutants showed decreased enzyme activities in parallel with the extent of the band shift in Western blot analysis. To evaluate the role of glycosylation in the enzyme activity, we produced unglycosylated UGT1A9 by treating HEK293 cells transiently transfected with expression plasmid with tunicamycin. The unglycosylated UGT1A9 was almost inactive, which was not an indirect effect of ER stress. To the contrary, the deglycosylated UGT1A9, which was produced by the treatment with Endo H under the non-denaturing condition, showed the same enzyme kinetics as the control. These results suggest that the glycosylation that occurs during translation is important for the folding of UGT1A9. The thermal stability analysis of the mutated and deglycosylated UGT1A9 proteins supported the findings. In conclusion, we found that the N-glycosylation has an important role in the folding of UGT1A9.
尿苷二磷酸葡萄糖醛酸转移酶(UGTs)催化多种外源性/内源性物质的葡萄糖醛酸化。UGTs 是内质网(ER)的 I 型膜蛋白,具有糖基化的腔域。在本研究中,我们研究了 N-糖基化在人 UGT1A9 功能中的作用。在残基 71、292 和 344(从天冬酰胺到谷氨酰胺)处的潜在 N-糖基化位点的突变分析表明,所有这些位点都被糖基化,但糖基化的程度和/或聚糖的大小不同。与野生型相比,这些突变体的酶活性降低,与 Western blot 分析中的条带移位程度平行。为了评估糖基化对酶活性的作用,我们通过用衣霉素处理瞬时转染表达质粒的 HEK293 细胞来产生非糖基化的 UGT1A9。未糖基化的 UGT1A9几乎没有活性,这不是内质网应激的间接影响。相反,在用非变性条件下的 Endo H 处理产生的去糖基化的 UGT1A9 显示出与对照相同的酶动力学。这些结果表明,翻译过程中发生的糖基化对于 UGT1A9 的折叠很重要。突变体和去糖基化的 UGT1A9 蛋白的热稳定性分析支持了这一发现。总之,我们发现 N-糖基化在 UGT1A9 的折叠中起着重要作用。