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Recognition of mitochondrial targeting sequences by the import receptors Tom20 and Tom22
Authors:Rimmer Kieran A  Foo Jung Hock  Ng Alicia  Petrie Emma J  Shilling Patrick J  Perry Andrew J  Mertens Haydyn D T  Lithgow Trevor  Mulhern Terrence D  Gooley Paul R
Affiliation:
  • 1 Department of Biochemistry and Molecular Biology, Bio21 Molecular Science and Biotechnology Institute, University of Melbourne, Parkville, Victoria, Australia
  • 2 Department of Biochemistry and Molecular Biology, Monash University, Clayton, Victoria, Australia
  • Abstract:The Tom20 and Tom22 receptor subunits of the TOM (translocase of the outer mitochondrial membrane) complex recognize N-terminal presequences of proteins that are to be imported into the mitochondrion. In plants, Tom20 is C-terminally anchored in the mitochondrial membrane, whereas Tom20 is N-terminally anchored in animals and fungi. Furthermore, the cytosolic domain of Tom22 in plants is smaller than its animal/fungal counterpart and contains fewer acidic residues. Here, NMR spectroscopy was used to explore presequence interactions with the cytosolic regions of receptors from the plant Arabidopsis thaliana and the fungus Saccharomyces cerevisiae (i.e., AtTom20, AtTom22, and ScTom22). It was found that AtTom20 possesses a discontinuous bidentate hydrophobic binding site for presequences. The presequences on plant mitochondrial proteins comprise two or more hydrophobic binding regions to match this bidentate site. NMR data suggested that while these presequences bind to ScTom22, they do not bind to AtTom22. AtTom22, however, binds to AtTom20 at the same binding site as presequences, suggesting that this domain competes with the presequences of imported proteins, thereby enabling their progression along the import pathway.
    Keywords:TPR, tetratricopeptide repeat   AOX, alternative oxidase   C1-NADH, NADH binding subunit of complex I   Rps10, ribosomal protein S10   KSI, ketosteroid isomerase   HSQC, heteronuclear single-quantum coherence   EDTA, ethylenediaminetetraacetic acid   MS, mass spectrometry   3D, three-dimensional   ARC, Australian Research Council
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