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1996 | 43 | 2 |

Tytuł artykułu

Mitochondrial metabolite carrier family, topology, structure and functional properties: an overview

Autorzy

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
A set of metabolite carriers operates the traffic of numerous molecules consumed or produced in mitochondrial matrix and/or cytosolic compartments. As their existence had been predicted by the chemiosmotic theory, the first challenge, in the late sixties, was to prove their presence in the inner mitochondrial membrane and to describe the various transports carried out. The second challenge was to understand their mechanisms by the kinetic approach in intact mitochondria (seventies). The third challenge (late seventies-eighties) was to isolate and to reconstitute the carriers in liposomes in order to characterize the proteins and to establish the concept of a structural and a functional family as well as some structure-function relationship with the help of primary sequences. Genetics, molecular biology and genomic sequencing bring the fourth challenge (nineties): a raising number of putative carriers becomes known only by their primary sequences but their functions have to be discovered. The actual challenge of the future is the elucidation of the ternary structure of carrier proteins that together with site-directed mutagenesis and kinetic mechanism will permit to advance in the understanding of molecular mechanisms of transport processes.

Wydawca

-

Rocznik

Tom

43

Numer

2

Opis fizyczny

p.349-360,fig.

Twórcy

autor
  • University of Liege, Belgium

Bibliografia

  • 1. Mitchell, P. (1961) Coupling of phosphorylation to electron and hydrogen transfer by a chemi- osmotic type mcchanism. Nature (London) 191, 144-148.
  • 2. Chappell, J.B. (1968) Systems used for the transport of substrates into mitochondria. Brit. Med. Bull. 24,150-157.
  • 3. Klingenberg, M. & Pfaff, E. (1966) Structural and functional compartmentation in mitochondria; in Regulation of Metabolic Processes in Mito­chondria (Tager, J.M., Quagliariello, E. & Slater, E.C., eds.) pp. 180-201, Elsevier, Amsterdam.
  • 4. Pfaff, E. & Klingenberg, M. (1968) Adenine nucleotide translocation of mitochondria. I. Specificity and control. Eur. ]. Biochem. 6,66-79.
  • 5. Palmieri, F. (1994) Mitochondrial carrier proteins. FEBS Lett. 346,48-54.
  • 6. Kuan, J. & Saier, M.H., Jr. (1993) The mito­chondrial carrier family of transport proteins: Structural, functional, and evolutionary rela­tionships. Crit. Rev. Biochem. Mol. Biol. 28, 209-233.
  • 7. Walker, J.E. & Runswick, M.J. (1993) The mitochondrial transport protein superiamily. /. Bioenerg. Biomenibr. 25,435-446.
  • 8. Krämer, R. & Palmieri, F. (1992) Metabolite carriers in mitochondria; in Molecular Mechanisms in Bioenergetics (Ernster, L., ed.) pp. 359-384, Elsevier Science Publishers, Amsterdam.
  • 9. Pedersen, P.L. (1993) An introduction to the mitochondrial anion carrier family. J. Bioenerg. Bioniembr. 25,431-434.
  • 10. Sluse, F.F.., Meijer, A.J. & Tager, J.M. (1971) Anion translocators in rat-heart mitochondria. FEBS Lett. 18,149-153.
  • 11. Sluse, F.E., Ranson, M. & Liebecq, C. (1972) Mechanism of the exchanges catalysed by the oxoglutarate translocator of rat-heart mito­chondria. Kinetics of the exchange reactions between 2-oxoglutarate, malate and malonate. Eur. J. Biochem. 25, 207-217.
  • 12. Sluse, F.E., Goffart, G. & Liebecq, C. (1973) Mechanism of the exchanges catalyzed by the oxoglutarate translocator of rat-heart mito­chondria. Kinetics of the external-product inhibition. Eur. J. Biochem. 32,283-291.
  • 13. Sluse, EE., Sluse-Coffart, C.M., Duyckaerts, C. & l.tebecq, C. (1975) Evidence for cooperative effects in the exchange reaction catalysed by the oxoglutarate translocator of rat-heart mito­chondria. Eur.}. Biochem. 56,1-14.
  • 14. Sluse, F.E., Duyckaerts, C., Liebecq, C. & Sluse-Goffart, C.M. (1979) Kinetic and binding properties of the oxoglutarate translocator of rat-heart mitochondria. Eur. J. Biochem. 100, 3-17.
  • 15. Sluse-Goffart, C.M., Sluse, F.E., Duyckaerts, C., Richard, M., Hengesch, P. & Liebecq, C. (1983) Conformational changes and possible structure of the oxoglutarate translocator of rat-heart mitochondria revealed by the kinetic study of malate and oxoglutarate uptake. Eur. J. Biochem. 134, 397-406.
  • 16. Holzhiitter, H.-G., Sluse-Goffart, C.M. & Sluse, F.E. (1994) Multiphase saturation curves of the oxoglutarate carrier: a mathematical model. Math. Comput. Modelling 19,26S-272.
  • 17. Erdelt, H., Weidemann, M.J., Buchholz, M. & Klingenberg, M. (1972) Some principle effect of bongkrekic acid on the binding of adenine nucleotide to the mitochondrial membranes. Eur. J. Biochem. 30,107-122.
  • 18. Klingenberg, M. (1974) The mechanism of the mitochondrial ADP, ATP carrier as studied by the kinetics of ligand binding; in Dynamics of Energy-Transducing Membranes (Ernster, L., Estabrook, R.W. & Slater, E.C., eds.) pp. 511-528, Elsevier, Amsterdam.
  • 19. Klingenberg, M. (1976) The A DP-ATP carrier in mitochondrial membranes; in The Enzymes of Biological Membranes (Martonosi, A., ed.) vol. 3, pp. 383-438, Plenum Press, NewYork.
  • 20. Brandolin, G., Le Saux, A., Trezeguet, V., lauquin, G.J.M. & Vignais, P.V. (1993) Chemical, immunological, enzymatic and genetic approaches to studying the arrangement of the peptide chain of the ADP/ATP carrier in the mitochondrial membrane. J. Bioenerg. Biotnembr. 25,459-472.
  • 21. Krämer, R. & Klingenberg, M. (1982) Electro- phoretic control of reconstituted adenine nucleotide translocation. Biochemistry 21, 1082-1089.
  • 22. Duyckaerts, C., Sluse-Goffart, CM., Fux, J.P., Sluse, F.E. & Liebecq, C. (1980) Kinetic mechanism of the exchanges catalysed by the adenine-nucleotide carrier. Eur. J. Biochem. 106,
  • 23. Sluse, F.E., Sluse-Goffart, C.M. & Duyckaerts, C. (1989) Kinetic mechanisms of the adenylic and the oxoglutaric carriers: a comparison; in Anion Carriers of Mitochondrial Membranes (Azzi, A., Nałęcz, K.A., Nałęcz, M.J. & Wojtczak, L., eds.) pp. 183-195, Springer-Verlag, Berlin.
  • 24. Dierks, T. & Krämer, R. (1988) Asymmetric orientation of the reconstituted aspartate/ glutamate carrier from mitochondria. Biochim. Biophys. Acta 937,112-126.
  • 25. Sluse, F.E., Evens, A., Dierks, T., Duyckaerts, C, Sluse-Goffart, C.M. & Krämer, R. (1991) Kinetic study of the aspartate/glutamate carrier in intact rat heart mitochondria and comparison with a reconstituted system. Biochim. Biophys. Acta 1058,329-338.
  • 26. Palmieri, F., Bisaccia, F., Capobianco, L., lacobazzi, V., Indiveri, C. & Zara, V. (1990) Structural and functional properties of mitochondrial anion carriers. Biochim. Biophys. Acta 1018,147-150.
  • 27. Nałęcz, K.A. (1994) The mitochondrial pyruvate carrier: The mechanism of substrate binding; in Molecular Biology of Mitochondrial Transport Systems. (Forte, M. & Colombini, M., eds.) pp. 67-79, Springer Verlag, Berlin, Heidelberg.
  • 28. Sluse, F.E., Duyckaerts, C., Evens, A. & Sluse-Goffart, C.M. (1994) Initial rate kinetic study of the pyruvate translocator in intact rat-heart mitochondria; in Biothermokinetics (Westerhoff, H.V., ed.) pp. 173-178, Intercept, Andover.
  • 29. Indiveri, C., Dierks, T., Kramer, R. & Palmieri, F. (1991) Reaction mechanism of the reconstituted oxoglutarate carrier from bovine heart mito­chondria. Eur. J. Biochem. 198,339-347.
  • 30. Indiveri, C., Prezioso, G., Dierks, T., Krämer, R. & Palmieri, F. (1993) Kinetic characterization of the reconstituted dicarboxylate carrier from mitochondria: a four-binding-site sequential transport system. Biochim. Biophys. Acta 1143, 310-318.
  • 31. Bisaccia, F., De Palma, A., Dierks, T., Krämer, R., & Palmieri, F. (1993) Reaction mechanism of the reconstituted tricarboxylate carrier from rat liver mitochondria. Biochim. Biophys. Acta 1142, 139-145.
  • 32. Indiveri, C., Palmieri, L. & Palmieri, F. (1994) Kinetic characterization of the reconstituted ornithine carrier from ral liver mitochondria. Biochim. Biophys. Acta 1188,293-301.
  • 33. Indiveri,C.,Tonazzi, A. & Palmieri, F. (1994) The reconstituted carnitine carrier from rat liver mitochondria — evidence for a transport mechanism different from that of the other mitochondrial translocators. Biochim. Biophys. Acta 1189,65-73.
  • 34. Kamińska, J., Nałęcz, K.A. & Nałęcz, M.J. (1995) Mechanism of carnitine transport catalyzed by carnitine carrier from rat brain mitochondria. Acta Neurobiol. Exp. 55,1-9.
  • 35. Palmieri, F., Indiveri, C, Bisaccia, F. & Krämer, R. (1993) Functional properties of purified and reconstituted mitochondrial metabolite carriers. /. Bioenerg. Biomembr. 25,525-535.
  • 36. Klingenberg, M. (1993) Dialectics in carrier research: The ADP/ATP carrier and the un­coupling protein. /. Bioenerg. Biomembr. 25, 447-457.
  • 37. Krämer, R. & Palmieri, F. (1989) Molecular aspects of isolated and reconstituted carrier proteins from animal mitochondria. Biochim. Biophys. Acta 974,1-23.
  • 38. Aquila, H., Misra, D., Eulitz, M. & Klingenberg, M. (1982) Complete amino acid sequence of the ADP/ATP carrier from beef heart mito­chondria. Hopper-Seyler's Z. Physiol. Chem. 363, 345-349.
  • 39. Capobianco, L., Bisaccia, F., Michel, A., Sluse, F.E. & Palmieri, F. (1995) The N- and C-termini of the tricarboxylate carrier are exposed to the cytoplasmic side of the inner mitochondrial membrane. FEBS Lett. 357,297-300.
  • 40. Winkler, E. & Klingenberg, M. (1992) Photo- affinity labeling of the nucleotide-bindingsiteof the uncoupling protein from hamster brown adipose tissue. Eur. J. Biochem. 203, 295-304.
  • 41. Ferreira, G.C. & Pedersen, P.L. (1993) Phosphate transport in mitochondria: Past accomplish­ments, present problems and future challenges. J. Bioenerg. Biomembr. 25,483-492.
  • 42. Block, M.R. & Vignais, P.V. (1984) Substrate-site interactions in the membrane-bound adenine- nucleotide carrier as disclosed by A DP and All' analogs. Biochim. Biophys. Acta 767,369-376.
  • 43. Klingenberg, M. (1981) Membrane protein oligomeric structure and transport function. Nature (London) 290,449-454.
  • 44. Klingenberg, M. & Appel, M. (1989) The uncoupling protein dimer can form a disulfide cross-link between the mobile C-terminal SH groups. Eur. J. Biochem. 180,123-131.
  • 45. Palmieri, F., Bisaccia, F., Capobianco, L., Dolce, V., lacobazzi, V., Indiveri, C. & Zara, V. (1992) Structural and functional properties of two mitochondrial transport proteins: The phos­phate carrier and the oxoglutarate carrier; in Molecular Mechanisms of Transport (Quaglia- riello, E. & Palmieri, F., eds.) pp. 151-158, Elsevier Science Publishers, Amsterdam.
  • 46. Sluse, F.E., Evens, A., Duyckaerts, C., Hautecler, J. & Sluse-Goffart, C.M. (1993) Cooperativities in steady-state translocation of ADP by mitochondrial adenylic carrier. 2nd 1UBMB Conf. Biochemistry of Cell Membranes, Bari, Abstr. p. 353.
  • 47. Saier, M.H., Jr. & Reizer, J. (1991) Families and superfamilies of transport proteins common to prokaryotes and eukaryotes. Curr. Opin. Struct. Biol. 1,362-368.
  • 48. Weber, A., Menzlaff, E., Arbinger, B., Gutensohn, M., Eckerskorn, C. & Flügge, U.I. (1995) The 2-oxoglutarate/malate translocator of chloroplast envelope membranes: Molecular cloning of a transporter containing a 12-helix motif and expression of the functional protein in yeast cells. Biochemistry 34,2621-2627.
  • 49. Bairoch, A. (1992) PROSITE: Adictionary of sites and patterns in proteins. Nucleic Acids Res. 20, 2013-2018.
  • 50. Wiesenberger, G., Link, T.A., Ahsen, U., Waldherr, M. & Schweyen, R.J. (1991) MRS3 and MRS4, two suppressors of mtRNA splicing defects in yeast, are new members of the mitochondrial carrier family. /. Mol. Biol. 217, 23-37.
  • 51. Van Dyck, E., Jank, B., Ragnin, A., Schweyen, R.J., Duyckaert, C., Sluse, F.E. & Four, F. (1995) Overexpression of a novel member of the mitochondrial carrier family rescues defects in both DNA and RNA metabolism in yeast mitochondria. Mol. Gen. Genet. 246,426-436.
  • 52. Feng, D.F. & Doolittle, R.F. (1990) A nearest neighbor procedure for relating progressively aligned amino acid sequences. Methods Enzymol. 183,375-387.
  • 53. Kuan, J. & Saier, M.IL, Jr. (1993) Expansion of the mitochondrial carrier family. Res. Microbiol. 144, 671-672.
  • 54. Nelson, D.R., Lawson, J.E., Klingenberg, M. & Douglas, M.G. (1993) Site-directed mutagenesis of the yeast mitochondrial ADP/ATP trans- locator. Six arginines and one lysine are essential. /. Mol. Biol. 230,1159-1170.
  • 55. Adrian, GS., McCammon, M.T., Montgomery, D.L. & Douglas, M.G. (1986) Sequences required for delivery and localization of the ADP/ATP translocator to the mitochondrial inner membrane. Mol. Cell. Biol. 6,626-634.
  • 56. Leblanc, P. & Clauser, H. (1972) ADP-dependent inhibition of sacrosomal adenine nucleotide translocase by N-ethylmaleimide. FEBS Lett. 23, 107-113.
  • 57. Vignais, P.V. & Vignais, P.M. (1972) Effect of SH reagents on atractyloside binding to mito­chondria and ADP translocation. Potentiation by ADP and its prevention by Uncoupler FCCP. FEBS Lett. 26,27-31.
  • 58. Aquila, H., Eiermann, W. & Klingenberg, M. (1982) Incorporation of N-ethylmaleimide into the membrane-bound ADP/ATP translocator. Isolation of the protein labeled with N-[3I IJethykmaleimide. Eur. J. Biochem. 122, 133-139.
  • 59. Nelson, D.R. & Douglas, M.G. (1993) Function- based mapping of the yeast mitochondrial ADP/ATP translocator by selection for second site revertants. J. Mol. Biol. 230,1171-1182.
  • 60. Klingenberg, M. & Nelson, D.R. (1994) Structure-function relationships of the ADP/ATP carrier. Biochim. Biophys. Acta 1187, 241-244.
  • 61. Wohlrab, H. & Briggs, C. (1994) Yeast mito­chondrial phosphate transport protein expressed in Escherichia coli. Site-directed mutations at threonine-43 and at a similar location in the second tandem repeat (isoleucine-141). Biochemistry 33,9371-9375.
  • 62. Fiermonte, G., Walker, J.E. & Palmieri, F. (1993) Abundant bacterial expression and reconstitution of an intrinsic membrane- transport protein from bovine mitochondria. Biochem. J. 294,293-299.
  • 63. Kaplan, R.S., Mayor, J.A.,Gremse, D.A. & Wood, D.O. (1995) High level expression and characterization of the mitochondrial citrate transport protein from the yeast Saccharomyces cerevisiae. ]. Biol. Chem. 270,4108-4114.

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Bibliografia

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