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Journal Abstract Search


121 related items for PubMed ID: 2150676

  • 1. The calcium ion dependence of scallop myosin ATPase activity.
    Walmsley AR, Evans GE, Bagshaw CR.
    J Muscle Res Cell Motil; 1990 Dec; 11(6):512-21. PubMed ID: 2150676
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  • 2. Kinetic trapping of intermediates of the scallop heavy meromyosin adenosine triphosphatase reaction revealed by formycin nucleotides.
    Jackson AP, Bagshaw CR.
    Biochem J; 1988 Apr 15; 251(2):527-40. PubMed ID: 2969726
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  • 3. Transient-kinetic studies of the adenosine triphosphatase activity of scallop heavy meromyosin.
    Jackson AP, Bagshaw CR.
    Biochem J; 1988 Apr 15; 251(2):515-26. PubMed ID: 2969725
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  • 4. Cooperativity and regulation of scallop myosin and myosin fragments.
    Kalabokis VN, Szent-Györgyi AG.
    Biochemistry; 1997 Dec 16; 36(50):15834-40. PubMed ID: 9398315
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  • 5. Fluorescence studies on the nucleotide- and Ca2+-binding domains of molluscan myosin.
    Wells C, Warriner KE, Bagshaw CR.
    Biochem J; 1985 Oct 01; 231(1):31-8. PubMed ID: 3904736
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  • 6. A folded (10 S) conformer of myosin from a striated muscle and its implications for regulation of ATPase activity.
    Ankrett RJ, Rowe AJ, Cross RA, Kendrick-Jones J, Bagshaw CR.
    J Mol Biol; 1991 Jan 20; 217(2):323-35. PubMed ID: 1825121
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  • 7. Calcium binding and calcium-sensitivity of heavy meromyosin and subfragment-1 from squid (Todarodes pacificus) mantle and scallop (Patinopecten yessoensis) adductor muscles.
    Kamiya S, Konno K.
    Comp Biochem Physiol B; 1989 Jan 20; 92(3):481-6. PubMed ID: 2523274
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  • 8. Regulation of scallop myosin by calcium. Cooperativity and the "off" state.
    Kalabokis VN, Szent-Györgyi AG.
    Adv Exp Med Biol; 1998 Jan 20; 453():235-40. PubMed ID: 9889834
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  • 11. Reaction intermediates of myosin ATPase from scallop adductor muscles: nonidentical two-headed structure of striated adductor muscle myosin.
    Shibata-Sekiya K.
    J Biochem; 1982 Oct 20; 92(4):1151-62. PubMed ID: 6217199
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  • 12. Structural changes induced in scallop heavy meromyosin molecules by Ca2+ and ATP.
    Frado LY, Craig R.
    J Muscle Res Cell Motil; 1992 Aug 20; 13(4):436-46. PubMed ID: 1401039
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  • 14. Ca2+ activates actin-filament sliding on scallop myosin but inhibits that on Physarum myosin.
    Okagaki T, Higashi-Fujime S, Kohama K.
    J Biochem; 1989 Dec 20; 106(6):955-7. PubMed ID: 2534126
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  • 15. Structure and function of the two heads of the myosin molecule. III. Cooperativity of the two heads of the myosin molecule, shown by the effect of modification of head A with rho-chloromercuribenzoate on the interaction of head B with F-actin.
    Shibata-Sekiya K, Tonomura Y.
    J Biochem; 1976 Dec 20; 80(6):1371-80. PubMed ID: 138679
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  • 16. Evidence of a calcium-induced structural change in the ATP-binding site of the sarcoplasmic-reticulum Ca2+-ATPase using terbium formycin triphosphate as an analogue of Mg-ATP.
    Girardet JL, Dupont Y, Lacapere JJ.
    Eur J Biochem; 1989 Sep 01; 184(1):131-40. PubMed ID: 2528452
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  • 17. Smooth muscle myosin subfragment-1 is a kinetic analogue for heavy meromyosin in the extended conformation.
    Drew JS, White MP, Stein LA.
    Cell Motil Cytoskeleton; 1993 Sep 01; 26(4):291-300. PubMed ID: 8299145
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  • 20. Effect of skeletal muscle myosin light chain 2 on the Ca2+-sensitive interaction of myosin and heavy meromyosin with regulated actin.
    Wagner PD.
    Biochemistry; 1984 Dec 04; 23(25):5950-6. PubMed ID: 6240989
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