The mitochondrial Oac (oxaloacetate carrier) found in sonic fungi and plants catalyses the uptake of oxaloacetate, malonate and sulfate. Despite their sequence similarity, transport specificity varies considerably between Oacs. Indeed, whereas ScOac (Saccharomyces cerevisiae Oac) is a specific anion-proton symporter, the YlOac (Yarrowia lipolytica Oac) has the added ability to transport protons, behaving as a UCP (uncoupling protein). Significantly, we identified two amino acid changes at the matrix gate of YlOac and ScOac, tyrosine to phenylalanine and methionine to leucine. We studied the role of these amino acids by expressing both wild-type and specifically mutated Oacs in an Oac-null S. cerevisiae strain. No phenotype could be associated with the methionine to leucine substitution, whereas UCP-like activity was dependent on the presence of the tyrosine residue normally expressed in the Mac, i.e. Tyr-ScOac mediated proton transport, whereas Phe-YlOac lost its protonophoric activity. These findings indicate that the UCP-like activity of YlOac is determined by the tyrosine residue at position 146.
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Univ East Anglia, Biomed Res Ctr, Norwich Med Sch, Norwich Res Pk, Norwich NR4 7TJ, Norfolk, EnglandUniv East Anglia, Biomed Res Ctr, Norwich Med Sch, Norwich Res Pk, Norwich NR4 7TJ, Norfolk, England
Crichton, Paul G.
Lee, Yang
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MRC, Mol Biol Lab, Cambridge Biomed Campus,Francis Crick Ave, Cambridge CB2 0QH, EnglandUniv East Anglia, Biomed Res Ctr, Norwich Med Sch, Norwich Res Pk, Norwich NR4 7TJ, Norfolk, England
Lee, Yang
Kunji, Edmund R. S.
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MRC, Mitochondrial Biol Unit, Wellcome Trust, Cambridge Biomedical Campus,MRC Bldg,Hills Rd, Cambridge CB2 0XY, EnglandUniv East Anglia, Biomed Res Ctr, Norwich Med Sch, Norwich Res Pk, Norwich NR4 7TJ, Norfolk, England