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PMID: 18842065 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

SLC2A9 is a high-capacity urate transporter in humans.

PLoS medicine ·Vol. 5 ·No. 10 ·2008-10-07 ·Pages e197

Caulfield MJ, Munroe PB, O'Neill D, Witkowska K, Charchar FJ, Doblado M, Evans S, Eyheramendy S, Onipinla A, Howard P, Shaw-Hawkins S, Dobson RJ, Wallace C, Newhouse SJ, Brown M, Connell JM, Dominiczak A, Farrall M, Lathrop GM, Samani NJ, Kumari M, Marmot M, Brunner E, Chambers J, Elliott P, Kooner J, Laan M, Org E, Veldre G, Viigimaa M, Cappuccio FP, Ji C, Iacone R, Strazzullo P, Moley KH, Cheeseman C

Abstract

Serum uric acid levels in humans are influenced by diet, cellular breakdown, and renal elimination, and correlate with blood pressure, metabolic syndrome, diabetes, gout, and cardiovascular disease. Recent genome-wide association scans have found common genetic variants of SLC2A9 to be associated with increased serum urate level and gout. The SLC2A9 gene encodes a facilitative glucose transporter, and it has two splice variants that are highly expressed in the proximal nephron, a key site for urate handling in the kidney. We investigated whether SLC2A9 is a functional urate transporter that contributes to the longstanding association between urate and blood pressure in man. We expressed both SLC2A9 splice variants in Xenopus laevis oocytes and found both isoforms mediate rapid urate fluxes at concentration ranges similar to physiological serum levels (200-500 microM). Because SLC2A9 is a known facilitative glucose transporter, we also tested whether glucose or fructose influenced urate transport. We found that urate is transported by SLC2A9 at rates 45- to 60-fold faster than glucose, and demonstrated that SLC2A9-mediated urate transport is facilitated by glucose and, to a lesser extent, fructose. In addition, transport is inhibited by the uricosuric benzbromarone in a dose-dependent manner (Ki = 27 microM). Furthermore, we found urate uptake was at least 2-fold greater in human embryonic kidney (HEK) cells overexpressing SLC2A9 splice variants than nontransfected kidney cells. To confirm that our findings were due to SLC2A9, and not another urate transporter, we showed that urate transport was diminished by SLC2A9-targeted siRNA in a second mammalian cell line. In a cohort of men we showed that genetic variants of SLC2A9 are associated with reduced urinary urate clearance, which fits with common variation at SLC2A9 leading to increased serum urate. We found no evidence of association with hypertension (odds ratio 0.98, 95% confidence interval [CI] 0.9 to 1.05, p > 0.33) by meta-analysis of an SLC2A9 variant in six case-control studies including 11,897 participants. In a separate meta-analysis of four population studies including 11,629 participants we found no association of SLC2A9 with systolic (effect size -0.12 mm Hg, 95% CI -0.68 to 0.43, p = 0.664) or diastolic blood pressure (effect size -0.03 mm Hg, 95% CI -0.39 to 0.31, p = 0.82). This study provides evidence that SLC2A9 splice variants act as high-capacity urate transporters and is one of the first functional characterisations of findings from genome-wide association scans. We did not find an association of the SLC2A9 gene with blood pressure in this study. Our findings suggest potential pathogenic mechanisms that could offer a new drug target for gout.

MeSH Terms
Adult Aged Animals Biological Transport/drug effects Blotting, Western Cell Line Cell Line, Tumor Chromatography, Thin Layer Fatty Acids, Volatile/pharmacology Female Fructose/metabolism Glucose/metabolism Glucose Transport Proteins, Facilitative/genetics,metabolism Hexoses/metabolism Humans Immunohistochemistry Kinetics Longitudinal Studies Mice Middle Aged Oocytes Organic Anion Transporters/genetics,metabolism Uric Acid/metabolism Uricosuric Agents/pharmacology Xenopus laevis
Chemicals
Fatty Acids, Volatile Glucose Transport Proteins, Facilitative Hexoses Organic Anion Transporters SLC2A9 protein, human Uricosuric Agents urate transporter Uric Acid Fructose Glucose
Authors & Affiliations
36 authors, click to expand affiliations / ORCID
Caulfield Mark J
Clinical Pharmacology and The Genome Centre, William Harvey Research Institute, Barts and The London School of Medicine and Dentistry, London, United Kingdom. m.j.caulfield@qmul.ac.uk
Munroe Patricia B
O'Neill Deb
Witkowska Kate
Charchar Fadi J
Doblado Manuel
Evans Sarah
Eyheramendy Susana
Onipinla Abiodun
Howard Philip
Shaw-Hawkins Sue
Dobson Richard J
Wallace Chris
Newhouse Stephen J
Brown Morris
Connell John M
Dominiczak Anna
Farrall Martin
Lathrop G Mark
Samani Nilesh J
Kumari Meena
Marmot Michael
Brunner Eric
Chambers John
Elliott Paul
Kooner Jaspal
Laan Maris
Org Elin
Veldre Gudrun
Viigimaa Margus
Cappuccio Francesco P
Ji Chen
Iacone Roberto
Strazzullo Pasquale
Moley Kelle H
Cheeseman Chris
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Article Info
Journal
PLoS medicine
Abbr.
PLoS Med
ISSN
1549-1676
Published
2008-10-07
Pages
e197
Language
English
Region
United States
NLM ID
101231360
PMCID
PMC2561076
Subset
IM
Grants
Medical Research Council · G9521010 · United Kingdom
Medical Research Council · G0400874 · United Kingdom
NHLBI NIH HHS · R01 HL036310 · United States
Medical Research Council · G19/35 · United Kingdom
Medical Research Council · G0100222 · United Kingdom
Medical Research Council · G9521010D · United Kingdom
Medical Research Council · G8802774 · United Kingdom
NIDDK NIH HHS · T32-DK0712 · United States
British Heart Foundation · PG02/128 · United Kingdom
NIA NIH HHS · R37 AG013196 · United States
NICHD NIH HHS · R01 HD040390 · United States
NIDDK NIH HHS · T32 DK007120 · United States
NIA NIH HHS · R01 AG013196 · United States
Wellcome Trust · United Kingdom
Wellcome Trust · 076113/B/04/Z · United Kingdom
British Heart Foundation · RG/07/008/23674 · United Kingdom
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