BIOMARKERS

Molecular Biopsy of Human Tumors

- a resource for Precision Medicine *

135 related articles for article (PubMed ID: 217779)

  • 1. On the current-voltage relationships of energy-transducing membranes: submitochondrial particles [proceedings].
    Sorgato MC; Ferguson SJ; Kell DB
    Biochem Soc Trans; 1978; 6(6):1301-2. PubMed ID: 217779
    [No Abstract]   [Full Text] [Related]  

  • 2. Mitochondria: a historical review.
    Ernster L; Schatz G
    J Cell Biol; 1981 Dec; 91(3 Pt 2):227s-255s. PubMed ID: 7033239
    [No Abstract]   [Full Text] [Related]  

  • 3. Energetics of ATP-driven reverse electron transfer from cytochrome c to fumarate and from succinate to NAD in submitochondrial particles.
    Scholes TA; Hinkle PC
    Biochemistry; 1984 Jul; 23(14):3341-5. PubMed ID: 6087893
    [TBL] [Abstract][Full Text] [Related]  

  • 4. Variable proton conductance of submitochondrial particles.
    Sorgato MC; Ferguson SJ
    Biochemistry; 1979 Dec; 18(25):5737-42. PubMed ID: 42433
    [TBL] [Abstract][Full Text] [Related]  

  • 5. Coupling site I and the rotenone-sensitive ubisemiquinone in tightly coupled submitochondrial particles.
    Kotlyar AB; Sled VD; Burbaev DS; Moroz IA; Vinogradov AD
    FEBS Lett; 1990 May; 264(1):17-20. PubMed ID: 2159893
    [TBL] [Abstract][Full Text] [Related]  

  • 6. THe proton-per-electron stoicheiometry of 'site 1' of oxidative phosphorylation at high protonmotive force is close to 1.5.
    de Jonge PC; Westerhoff HV
    Biochem J; 1982 May; 204(2):515-23. PubMed ID: 6288021
    [TBL] [Abstract][Full Text] [Related]  

  • 7. Involvement of a dithiol protein in mitochondrial energy-linked functions and its relation to coupling factor B.
    Stiggall DL; Galante YM; Kiehl R; Hatefi Y
    Arch Biochem Biophys; 1979 Sep; 196(2):638-44. PubMed ID: 226001
    [No Abstract]   [Full Text] [Related]  

  • 8. [Hysteresis behavior of complex I in delta mu H+-dependent reduction of NAD+ succinate].
    Kotliar AB; Vinogradov AD
    Biokhimiia; 1989 Jan; 54(1):9-16. PubMed ID: 2497801
    [TBL] [Abstract][Full Text] [Related]  

  • 9. Non-equilibrium thermodynamics of energy conversion in bioenergetics.
    Rottenberg H
    Biochim Biophys Acta; 1979 Dec; 549(3-4):225-53. PubMed ID: 228718
    [No Abstract]   [Full Text] [Related]  

  • 10. The protonmotive force in bovine heart submitochondrial particles. Magnitude, sites of generation and comparison with the phosphorylation potential.
    Sorgato MC; Ferguson SJ; Kell DB; John P
    Biochem J; 1978 Jul; 174(1):237-56. PubMed ID: 212021
    [TBL] [Abstract][Full Text] [Related]  

  • 11. ADP-ribosylation in inner membrane of rat liver mitochondria.
    Richter C; Winterhalter KH; Baumhüter S; Lötscher HR; Moser B
    Proc Natl Acad Sci U S A; 1983 Jun; 80(11):3188-92. PubMed ID: 6574480
    [TBL] [Abstract][Full Text] [Related]  

  • 12. Reversal of oxidative phosphorylation in submitochondrial particles using glucose 6-phosphate and hexokinase as an ATP regenerating system.
    de Meis L; Grieco MA; Galina A
    FEBS Lett; 1992 Aug; 308(2):197-201. PubMed ID: 1499730
    [TBL] [Abstract][Full Text] [Related]  

  • 13. Conversion of biomembrane-produced energy into electric form. I. Submitochondrial particles.
    Grinius LL; Jasaitis AA; Kadziauskas YP; Liberman EA; Skulachev VP; Topali VP; Tsofina LM; Vladimirova MA
    Biochim Biophys Acta; 1970 Aug; 216(1):1-12. PubMed ID: 4395700
    [No Abstract]   [Full Text] [Related]  

  • 14. Energy linked NAD reduction in phophorylating submitochondrial particles from heavy layer beef heart mitochondria. A lag phenomenon and its localization.
    Schuurmans Stekhoven FM; Sani BP; Sanadi DR
    Biochem Biophys Res Commun; 1970; 39(6):1026-30. PubMed ID: 4327299
    [No Abstract]   [Full Text] [Related]  

  • 15. Inhibition of energy-transducing reactions by 8-nitreno-ATP covalently bound to bovine heart submitochondrial particles: direct interaction between ATPase and redox enzymes.
    Herweijer MA; Berden JA; Kemp A; Slater EC
    Biochim Biophys Acta; 1985 Aug; 809(1):81-9. PubMed ID: 2862915
    [TBL] [Abstract][Full Text] [Related]  

  • 16. Aminoethylcysteine ketimine decarboxylated dimer inhibits mitochondrial respiration by impairing electron transport at complex I level.
    Pecci L; Montefoschi G; Fontana M; Cavallini D
    Biochem Biophys Res Commun; 1994 Mar; 199(2):755-60. PubMed ID: 8135820
    [TBL] [Abstract][Full Text] [Related]  

  • 17. The kinetics of quinone pools in electron transport.
    Ragan CI; Cottingham IR
    Biochim Biophys Acta; 1985 Apr; 811(1):13-31. PubMed ID: 3986195
    [No Abstract]   [Full Text] [Related]  

  • 18. Control of electron transfer in the cytochrome system of mitochondria by pH, transmembrane pH gradient and electrical potential. The cytochromes b-c segment.
    Papa S; Lorusso M; Izzo G; Capuano F
    Biochem J; 1981 Feb; 194(2):395-406. PubMed ID: 7305997
    [TBL] [Abstract][Full Text] [Related]  

  • 19. Influence of calcium on NADH and succinate oxidation by rat heart submitochondrial particles.
    Panov AV; Scaduto RC
    Arch Biochem Biophys; 1995 Feb; 316(2):815-20. PubMed ID: 7864638
    [TBL] [Abstract][Full Text] [Related]  

  • 20. Succinate-driven reverse electron transport in the respiratory chain of plant mitochondria. The effects of rotenone and adenylates in relation to malate and oxaloacetate metabolism.
    Rustin P; Lance C
    Biochem J; 1991 Feb; 274 ( Pt 1)(Pt 1):249-55. PubMed ID: 2001241
    [TBL] [Abstract][Full Text] [Related]  

    [Next]    [New Search]
    of 7.