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Journal Abstract Search


125 related items for PubMed ID: 15774859

  • 21. Cardiac troponin I threonine 144: role in myofilament length dependent activation.
    Tachampa K, Wang H, Farman GP, de Tombe PP.
    Circ Res; 2007 Nov 26; 101(11):1081-3. PubMed ID: 17975107
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  • 22. Cardiac troponin C-L29Q, related to hypertrophic cardiomyopathy, hinders the transduction of the protein kinase A dependent phosphorylation signal from cardiac troponin I to C.
    Schmidtmann A, Lindow C, Villard S, Heuser A, Mügge A, Gessner R, Granier C, Jaquet K.
    FEBS J; 2005 Dec 26; 272(23):6087-97. PubMed ID: 16302972
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  • 27. Identification of a functionally critical protein kinase C phosphorylation residue of cardiac troponin T.
    Sumandea MP, Pyle WG, Kobayashi T, de Tombe PP, Solaro RJ.
    J Biol Chem; 2003 Sep 12; 278(37):35135-44. PubMed ID: 12832403
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  • 28. Cardiac transgenic and gene transfer strategies converge to support an important role for troponin I in regulating relaxation in cardiac myocytes.
    Yasuda S, Coutu P, Sadayappan S, Robbins J, Metzger JM.
    Circ Res; 2007 Aug 17; 101(4):377-86. PubMed ID: 17615373
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  • 29. Prevention of myofilament dysfunction by beta-blocker therapy in postinfarct remodeling.
    Duncker DJ, Boontje NM, Merkus D, Versteilen A, Krysiak J, Mearini G, El-Armouche A, de Beer VJ, Lamers JM, Carrier L, Walker LA, Linke WA, Stienen GJ, van der Velden J.
    Circ Heart Fail; 2009 May 17; 2(3):233-42. PubMed ID: 19808345
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  • 30. ROCK-I regulates closure of the eyelids and ventral body wall by inducing assembly of actomyosin bundles.
    Shimizu Y, Thumkeo D, Keel J, Ishizaki T, Oshima H, Oshima M, Noda Y, Matsumura F, Taketo MM, Narumiya S.
    J Cell Biol; 2005 Mar 14; 168(6):941-53. PubMed ID: 15753128
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  • 31. Pathogenesis associated with a restrictive cardiomyopathy mutant in cardiac troponin T is due to reduced protein stability and greatly increased myofilament Ca2+ sensitivity.
    Parvatiyar MS, Pinto JR.
    Biochim Biophys Acta; 2015 Feb 14; 1850(2):365-72. PubMed ID: 25450489
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  • 34. RhoE function is regulated by ROCK I-mediated phosphorylation.
    Riento K, Totty N, Villalonga P, Garg R, Guasch R, Ridley AJ.
    EMBO J; 2005 Mar 23; 24(6):1170-80. PubMed ID: 15775972
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  • 35. Functional effects of protein kinase C-mediated myofilament phosphorylation in human myocardium.
    van der Velden J, Narolska NA, Lamberts RR, Boontje NM, Borbély A, Zaremba R, Bronzwaer JG, Papp Z, Jaquet K, Paulus WJ, Stienen GJ.
    Cardiovasc Res; 2006 Mar 01; 69(4):876-87. PubMed ID: 16376870
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  • 36. Critical role of the Rho-kinase pathway in TGF-beta2-dependent collagen gel contraction by retinal pigment epithelial cells.
    Miura M, Hata Y, Hirayama K, Kita T, Noda Y, Fujisawa K, Shimokawa H, Ishibashi T.
    Exp Eye Res; 2006 May 01; 82(5):849-59. PubMed ID: 16310190
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  • 37. Effects of contractile protein phosphorylation on force development in permeabilized rat cardiac myocytes.
    Verduyn SC, Zaremba R, van der Velden J, Stienen GJ.
    Basic Res Cardiol; 2007 Nov 01; 102(6):476-87. PubMed ID: 17546528
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  • 38. Contraction of myofibroblasts in granulation tissue is dependent on Rho/Rho kinase/myosin light chain phosphatase activity.
    Tomasek JJ, Vaughan MB, Kropp BP, Gabbiani G, Martin MD, Haaksma CJ, Hinz B.
    Wound Repair Regen; 2006 Nov 01; 14(3):313-20. PubMed ID: 16808810
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  • 39. A role for Rho kinase in vascular contraction evoked by sodium fluoride.
    Jeon SB, Jin F, Kim JI, Kim SH, Suk K, Chae SC, Jun JE, Park WH, Kim IK.
    Biochem Biophys Res Commun; 2006 Apr 28; 343(1):27-33. PubMed ID: 16527249
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  • 40. Troponin T isoforms alter the tolerance of transgenic mouse cardiac muscle to acidosis.
    Nosek TM, Brotto MA, Jin JP.
    Arch Biochem Biophys; 2004 Oct 15; 430(2):178-84. PubMed ID: 15369816
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