4.6 Article

Interaction of -Lipoic Acid with the Human Na+/Multivitamin Transporter (hSMVT)

Journal

JOURNAL OF BIOLOGICAL CHEMISTRY
Volume 290, Issue 26, Pages 16372-16382

Publisher

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M114.622555

Keywords

kinetics; membrane transport; stereoselectivity; Xenopus; yeast; SLC5; scintillation proximity assay; lipoamide; lipoic acid; solute; sodium symporter

Funding

  1. National Institutes of Health [DA017293]
  2. National Science Foundation [MCB130730]
  3. Direct For Biological Sciences
  4. Div Of Molecular and Cellular Bioscience [1330730] Funding Source: National Science Foundation

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Background: Transport of -lipoate by hSMVT and its stereospecificity have been elusive. Results: Using hSMVT expressed in oocytes and in Pichia pastoris yielded detailed information about the stereospecificity of hSMVT-mediated lipoate transport and binding. Conclusion: hSMVT can bind two molecules of R-(+)--lipoate, its physiological substrate. Significance: In addition to biotin, pantothenate, and iodide, hSMVT mediates the transport of lipoate. The human Na+/multivitamin transporter (hSMVT) has been suggested to transport -lipoic acid (LA), a potent antioxidant and anti-inflammatory agent used in therapeutic applications, e.g. in the treatment of diabetic neuropathy and Alzheimer disease. However, the molecular basis of the cellular delivery of LA and in particular the stereospecificity of the transport process are not well understood. Here, we expressed recombinant hSMVT in Pichia pastoris and used affinity chromatography to purify the detergent-solubilized protein followed by reconstitution of hSMVT in lipid bilayers. Using a combined approach encompassing radiolabeled LA transport and equilibrium binding studies in conjunction with the stabilized R-(+)- and S-(-)-enantiomers and the R,S-(+/-) racemic mixture of LA or lipoamide, we identified the biologically active form of LA, R-LA, to be the physiological substrate of hSMVT. Interaction of R-LA with hSMVT is strictly dependent on Na+. Under equilibrium conditions, hSMVT can simultaneously bind approximate to 2 molecules of R-LA in a biphasic binding isotherm with dissociation constants (K-d) of 0.9 and 7.4 m. Transport of R-LA in the oocyte and reconstituted system is exclusively dependent on Na+ and exhibits an affinity of approximate to 3 m. Measuring transport with known amounts of protein in proteoliposomes containing hSMVT in outside-out orientation yielded a catalytic turnover number (k(cat)) of about 1 s(-1), a value that is well in agreement with other Na+-coupled transporters. Our data suggest that hSMVT-mediated transport is highly specific for R-LA at our tested concentration range, a finding with wide ramifications for the use of LA in therapeutic applications.

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