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Am J Physiol Gastrointest Liver Physiol 285: G371-G381, 2003. First published April 17, 2003; doi:10.1152/ajpgi.00358.2002
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LIVER AND BILIARY TRACT

N-glycosylation controls functional activity of Oatp1, an organic anion transporter

Thomas K. Lee,1 Albert S. Koh,1 Zhifeng Cui,1 Robert H. Pierce,2 and Nazzareno Ballatori1

Departments of 1Environmental Medicine and 2Pathology, University of Rochester School of Medicine, Rochester, New York 14642

Submitted 23 August 2002 ; accepted in final form 3 April 2003

Rat Oatp1 (Slc21a1) is an organic anion-transporting polypeptide believed to be an anion exchanger. To characterize its mechanism of transport, Oatp1 was expressed in Saccharomyces cerevisiae under control of the GAL1 promoter. Protein was present at high levels in isolated S. cerevisiae secretory vesicles but had minimal posttranslational modifications and failed to exhibit taurocholate transport activity. Apparent molecular mass (M) of Oatp1 in yeast was similar to that of unmodified protein, ~62 kDa, whereas in liver plasma membranes Oatp1 has an M of ~85 kDa. To assess whether underglycosylation of Oatp1 in yeast suppressed functional activity, Oatp1 was expressed in Xenopus laevis oocytes with and without tunicamycin, a glycosylation inhibitor. With tunicamycin, M of Oatp1 decreased from ~72 to ~62 kDa and transport activity was nearly abolished. Mutations to four predicted N-glycosylation sites on Oatp1 (Asn to Asp at positions 62, 124, 135, and 492) revealed a cumulative effect on function of Oatp1, leading to total loss of taurocholate transport activity when all glycosylation sites were removed. M of the quadruple mutant was ~ 62 kDa, confirming that these asparagine residues are sites of glycosylation in Oatp1. Relatively little of the quadruple mutant was able to reach the plasma membrane, and most remained in unidentified intracellular compartments. In contrast, two of the triple mutants tested (N62/124/135D and N124/135/492D) were present in the plasma membrane fraction yet exhibited minimal transport activity. These results demonstrate that both membrane targeting and functional activity of Oatp1 are controlled by the extent of N-glycosylation.

membrane transport; posttranslational modifications; protein trafficking; yeast; Xenopus oocytes



Address for reprint requests and other correspondence: N. Ballatori, Dept. of Environmental Medicine, Box EHSC, Univ. of Rochester School of Medicine, 575 Elmwood Ave., Rochester, NY 14642 (E-mail: ned_ballatori{at}urmc.rochester.edu).




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