The role of charged residues in the transmembrane helices of monocarboxylate transporter 1 and its ancillary protein basigin in determining plasma membrane expression and catalytic activity
Open Access
- 1 January 2006
- journal article
- Published by Taylor & Francis in Molecular Membrane Biology
- Vol. 23 (6), 486-498
- https://doi.org/10.1080/09687860600841967
Abstract
Monocarboxylate transporters MCT1-MCT4 require basigin (CD147) or embigin (gp70), ancillary proteins with a glutamate residue in their single transmembrane (TM) domain, for plasma membrane (PM) expression and activity. Here we use site-directed mutagenesis and expression in COS cells or Xenopus oocytes to investigate whether this glutamate (Glu218 in basigin) may charge-pair with a positively charged TM-residue of MCT1. Such residues were predicted using a new molecular model of MCT1 based upon the published structure of the E. coli glycerol-3-phosphate transporter. No evidence was obtained for Arg306 (TM 8) of MCT1 and Glu218 of basigin forming a charge-pair; indeed E218Q-basigin could replace WT-basigin, although E218R-basigin was inactive. No PM expression of R306E-MCT1 or D302R-MCT1 was observed but D302R/R306D-MCT1 reached the PM, as did R306K-MCT1. However, both were catalytically inactive suggesting that Arg306 and Asp302 form a charge-pair in either orientation, but their precise geometry is essential for catalytic activity. Mutation of Arg86 to Glu or Gln within TM3 of MCT1 had no effect on plasma membrane expression or activity of MCT1. However, unlike WT-MCT1, these mutants enabled expression of E218R-basigin at the plasma membrane of COS cells. We propose that TM3 of MCT1 lies alongside the TM of basigin with Arg86 adjacent to Glu218 of basigin. Only when both these residues are positively charged (E218R-basigin with WT-MCT1) is this interaction prevented; all other residue pairings at these positions may be accommodated by charge-pairing or stabilization of unionized residues through hydrogen bonding or local distortion of the helical structure.Keywords
This publication has 23 references indexed in Scilit:
- The loop between helix 4 and helix 5 in the monocarboxylate transporter MCT1 is important for substrate selection and protein stabilityBiochemical Journal, 2003
- Identification of Monocarboxylate Transporter 8 as a Specific Thyroid Hormone TransporterJournal of Biological Chemistry, 2003
- Structure and Mechanism of the Lactose Permease of Escherichia coliScience, 2003
- Characterisation of human monocarboxylate transporter 4 substantiates its role in lactic acid efflux from skeletal muscleThe Journal of Physiology, 2000
- Helix 8 and Helix 10 Are Involved in Substrate Recognition in the Rat Monocarboxylate Transporter MCT1Biochemistry, 1999
- Lactic Acid Efflux from White Skeletal Muscle Is Catalyzed by the Monocarboxylate Transporter Isoform MCT3Journal of Biological Chemistry, 1998
- Molecular characterization of a membrane transporter for lactate, pyruvate, and other monocarboxylates: Implications for the Cori cycleCell, 1994
- The semiotics of chargeNature, 1991
- A strong carboxylate-arginine interaction is important in substrate orientation and recognition in lactate dehydrogenaseBiochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, 1987
- N-hydroxysulfosuccinimido active esters and the L-(+)-lactate transport protein in rabbit erythrocytesBiochemistry, 1986