SLC35G1: A highly chloride-sensitive transporter responsible for the basolateral membrane transport in intestinal citrate absorption

Author:

Mimura Yoshihisa1,Yasujima Tomoya1ORCID,Inoue Katsuhisa2,Akino Shogo1,Namba Chitaka1,Kusuhara Hiroyuki3,Sekiguchi Yutaro1,Ohta Kinya4,Yamashiro Takahiro1,Yuasa Hiroaki1

Affiliation:

1. Department of Biopharmaceutics, Graduate School of Pharmaceutical Sciences, Nagoya City University

2. Department of Biopharmaceutics, School of Pharmacy, Tokyo University of Pharmacy and Life Sciences

3. Laboratory of Molecular Pharmacokinetics, Graduate School of Pharmaceutical Sciences, The University of Tokyo

4. College of Pharmacy, Kinjo Gakuin University

Abstract

The intestinal absorption of essential nutrients, especially those not readily biosynthesized, is a critical physiological process for maintaining homeostasis. Numerous studies have indicated that intestinal absorption is mediated by various membrane transporters. Citrate, a crucial bioactive compound produced as an intermediate in the Krebs cycle, is absorbed in the small intestine through carrier-mediated systems because of its high hydrophilicity. While the luminal absorption of citrate is mediated by Na + -dicarboxylate cotransporter 1 (NaDC1), the mechanism governing the release of the transported citrate into the bloodstream remains unknown. Here, we explored the transporters responsible for intestinal citrate absorption at the basolateral membrane, focusing on highly expressed orphan transporters in the small intestine as candidates. Consequently, SLC35G1, originally identified as a partner of stromal interaction molecule 1, a cell surface transmembrane glycoprotein, was found to play a role in the intestinal absorption of citrate at the basolateral membrane. Furthermore, our results revealed that SLC35G1-mediated citrate transport was diminished by chloride ions at extracellular concentrations. This suggests that SLC35G1, to our best knowledge, is the first transporter identified to be extremely sensitive to chloride ions among those functioning on the basolateral membrane of intestinal epithelial cells. This study provides valuable insights into the intestinal absorption of citrate and significantly contributes to elucidating the poorly understood molecular basis of the intestinal absorption system.

Publisher

eLife Sciences Publications, Ltd

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