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PUBMED FOR HANDHELDS

Journal Abstract Search


142 related items for PubMed ID: 6333

  • 21. Preparation and characterization of inverted cell envelopes of Halobacterium halobium.
    Garty H, Danon A, Caplan SR.
    Eur J Biochem; 1980 Oct; 111(2):411-8. PubMed ID: 7460904
    [Abstract] [Full Text] [Related]

  • 22. Bacteriorhodopsin depleted of purple membrane lipids.
    Happe M, Overath P.
    Biochem Biophys Res Commun; 1976 Oct 18; 72(4):1504-11. PubMed ID: 11792
    [No Abstract] [Full Text] [Related]

  • 23. ATP synthesis in Halobacterium saccharovorum: evidence that synthesis may be catalysed by an F0F1-ATP synthase.
    Hochstein LI.
    FEMS Microbiol Lett; 1992 Oct 01; 76(1-2):155-9. PubMed ID: 11537859
    [Abstract] [Full Text] [Related]

  • 24. Light-induced glutamate transport in Halobacterium halobium envelope vesicles. I. Kinetics of the light-dependent and the sodium-gradient-dependent uptake.
    Lanyi JK, Yearwood-Drayton V, MacDonald RE.
    Biochemistry; 1976 Apr 20; 15(8):1595-603. PubMed ID: 1268186
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  • 25. Influence of membrane potential on the insertion and transport of proteins in bacterial membranes.
    Landick RC, Daniels CJ, Oxender DL.
    Methods Enzymol; 1983 Apr 20; 97():146-53. PubMed ID: 6361471
    [No Abstract] [Full Text] [Related]

  • 26. Transient currents carried by the uncoupler, carbonyl cyanide m-chlorophenylhydrazone.
    O'Shaughnessy K, Hladky SB.
    Biochim Biophys Acta; 1983 Sep 30; 724(3):381-7. PubMed ID: 6615824
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  • 28. Measurement of membrane potential in Bacillus subtilis: a comparison of lipophilic cations, rubidium ion, and a cyanine dye as probes.
    Zaritsky A, Kihara M, Macnab RM.
    J Membr Biol; 1981 Sep 30; 63(3):215-31. PubMed ID: 6796695
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  • 32. ATP synthesis in cell envelope vesicles of Halobacterium halobium driven by membrane potential and/or base-acid transition.
    Mukohata Y, Isoyama M, Fuke A.
    J Biochem; 1986 Jan 30; 99(1):1-8. PubMed ID: 3957892
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  • 33. DCCD-sensitive Na+-transport in the membrane vesicles of Halobacterium halobium.
    Murakami N, Konishi T.
    J Biochem; 1988 Feb 30; 103(2):231-6. PubMed ID: 3372488
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  • 34. Characterization of the light-driven sodium pump of Halobacterium halobium. Consequences of sodium efflux as the primary light-driven event.
    MacDonald RE, Greene RV, Clark RD, Lindley EV.
    J Biol Chem; 1979 Dec 10; 254(23):11831-8. PubMed ID: 40987
    [No Abstract] [Full Text] [Related]

  • 35. Coupling of amino acid transport to the electrochemical gradient of sodium ions across Halobacterium halobium membranes.
    Lanyi JK.
    Biochem Soc Trans; 1980 Jun 10; 8(3):275-6. PubMed ID: 7399052
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  • 37. Electrochemical proton gradient across the cell membrane of Halobacterium halobium: comparison of the light-induced increase with the increase of intracellular adenosine triphosphate under steady-state illumination.
    Michel H, Oesterhelt D.
    Biochemistry; 1980 Sep 30; 19(20):4615-19. PubMed ID: 7426620
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  • 39. The electrochemical proton gradient of Saccharomyces. The role of potassium.
    de la Peña P, Barros F, Gascón S, Ramos S, Lazo PS.
    Eur J Biochem; 1982 Apr 01; 123(2):447-53. PubMed ID: 6281011
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