4.3 Article

Functional characterization of a Na+-dependent dicarboxylate transporter from Vibrio cholerae

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JOURNAL OF GENERAL PHYSIOLOGY
卷 143, 期 6, 页码 745-759

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ROCKEFELLER UNIV PRESS
DOI: 10.1085/jgp.201311141

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资金

  1. Intramural Research Program of the National Institutes of Health (NIH)
  2. National Institute of Neurological Disorders and Stroke
  3. NIH [R01-DK099023, R01-DK073973, R01-GM093825, R01-DA019676, U54-GM095315]

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The SLC13 transporter family, whose members play key physiological roles in the regulation of fatty acid synthesis, adiposity, insulin resistance, and other processes, catalyzes the transport of Krebs cycle intermediates and sulfate across the plasma membrane of mammalian cells. SLC13 transporters are part of the divalent anion: Na+ symporter (DASS) family that includes several well-characterized bacterial members. Despite sharing significant sequence similarity, the functional characteristics of DASS family members differ with regard to their substrate and coupling ion dependence. The publication of a high resolution structure of dimer VcINDY, a bacterial DASS family member, provides crucial structural insight into this transporter family. However, marrying this structural insight to the current functional understanding of this family also demands a comprehensive analysis of the transporter's functional properties. To this end, we purified VcINDY, reconstituted it into liposomes, and determined its basic functional characteristics. Our data demonstrate that VcINDY is a high affinity, Na+-dependent transporter with a preference for C-4- and C-5-dicarboxylates. Transport of the model substrate, succinate, is highly pH dependent, consistent with VcINDY strongly preferring the substrate's dianionic form. VcINDY transport is electrogenic with succinate coupled to the transport of three or more Na+ ions. In contrast to succinate, citrate, bound in the VcINDY crystal structure (in an inward-facing conformation), seems to interact only weakly with the transporter in vitro. These transport properties together provide a functional framework for future experimental and computational examinations of the VcINDY transport mechanism.

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