Dorn Madlen, Jaehme Michael, Weiwad Matthias, Markwardt Fritz, Rudolph Rainer, Brandsch Matthias, Bosse-Doenecke Eva
Institute of Biochemistry/Biotechnology, Faculty of Science I, Martin-Luther-University Halle-Wittenberg, Halle, Germany.
FEBS Lett. 2009 May 19;583(10):1631-6. doi: 10.1016/j.febslet.2009.04.037. Epub 2009 May 3.
In the present study we show in the Xenopus laevis expression system that the proton-coupled amino acid transporter 1 (PAT1, SLC36A1) is glycosylated at asparagine residues N174, N183 and N470. To determine the functional role of N-glycosylation, glycosylation-deficient mutants were analyzed by two-electrode voltage-clamp measurements after expression in X. laevis oocytes. Single replacements of asparagine residues had no effect on transport activity. However, multiple substitutions resulted in a decreased transport rate, leaving K(t) unchanged. Immunofluorescence localisation revealed a diminished plasma membrane expression of glycosylation-defective mutants. This indicates that N-glycans are not required for transport function, but are important for membrane targeting.
在本研究中,我们在非洲爪蟾表达系统中表明,质子偶联氨基酸转运体1(PAT1,SLC36A1)在天冬酰胺残基N174、N183和N470处发生糖基化。为了确定N-糖基化的功能作用,在非洲爪蟾卵母细胞中表达后,通过双电极电压钳测量分析了糖基化缺陷型突变体。天冬酰胺残基的单取代对转运活性没有影响。然而,多个取代导致转运速率降低,而K(t)不变。免疫荧光定位显示糖基化缺陷型突变体的质膜表达减少。这表明N-聚糖对于转运功能不是必需的,但对于膜靶向是重要的。