Myosin regulatory light chain phosphorylation inhibits shortening velocities of skeletal muscle fibers in the presence of the myosin inhibitor blebbistatin

Springer Science and Business Media LLC - Tập 30 - Trang 17-27 - 2009
Melanie Stewart1, Kathy Franks-Skiba1, Roger Cooke1
1Department of Biochemistry and Biophysics and The Cardiovascular Research Institute, University of California San Francisco, San Francisco, USA

Tóm tắt

Phosphorylation of skeletal myosin regulatory light chain (RLC) occurs in fatigue and may play a role in the inhibition of shortening velocities observed in vivo. Forces and shortening velocities were measured in permeabilized rabbit psoas fibers with either phosphorylated or dephosphorylated RLCs and in the presence or absence of the myosin inhibitor blebbistatin. Addition of 20 μM blebbistatin decreased tensions by ~80% in fibers, independent of phosphorylation. In blebbistatin maximal shortening velocities (V max) at 30°C, were decreased by 45% (3.2 ± 0.34 vs. 5.8 ± 0.18 lengths/s) in phosphorylated fibers but were not inhibited in dephosphorylated fibers (6.0 ± 0.30 vs. 5.4 ± 0.30). In the presence of 20 μM blebbistatin, K m for V max as a function of [ATP] was lower for phosphorylated fibers than for dephosphorylated fibers (50 ± 20 vs. 330 ± 84 μM) indicating that the apparent binding of ATP is stronger in these fibers. Phosphorylation of RLC in situ during fiber preparation or by addition of myosin light chain kinase yielded similar data. RLC phosphorylation inhibited velocity in blebbistatin at both 30 and 10°C, unlike previous reports where RLC phosphorylation only affected shortening velocities at higher temperatures.

Tài liệu tham khảo

Allingham JS, Smith R, Rayment I (2005) The structural basis of blebbistatin inhibition and specificity for myosin II. Nat Struct Mol Biol 12:378–379 Barsotti RJ, Butler TM (1984) Chemical energy usage and myosin light chain phosphorylation in mammalian skeletal muscle. J Muscle Res Cell Motil 5:45–64 Butler TM, Siegman MJ (1998) Control of cross-bridge cycling by myosin light chain phosphorylation in mammalian smooth muscle. Acta Physiol Scand 164:389–400 Butler TM, Siegman MJ, Mooers SU, Barsotti RJ (1983) Myosin light chain phosphorylation does not modulate cross-bridge cycling rate in mouse skeletal muscle. Science 220:1167–1169 Chase PB, Martyn DA, Kushmerick MJ, Gordon AM (1993) Effects of inorganic phosphate analogs on stiffness and unloaded shortening of skinned fibres from rabbit. J Physiol 460:231–246 Cooke R (2007) Modulation of the actomyosin interaction during fatigue of skeletal muscle. Muscle Nerve 36:756–777 Crow MT, Kushmerick MJ (1982a) Correlated reduction of velocity of shortening and the rate of energy utilization in mouse fast-twitch muscle during a continuous tetanus. J Gen Physiol 82:703–722 Crow MT, Kushmerick MJ (1982b) Myosin light chain phosphorylation is associated with a decrease in the energy cost for contraction in fast twitch mouse muscle. J Biol Chem 257:2121–2124 Cuda G, Pate E, Cooke R, Sellers JR (1997) In vitro actin filament sliding velocities produced by mixtures of different types of myosin. Biophys J 72:1767–1779 Dantzig JA, Goldman YE (1985) Suppression of muscle contraction by vanadate. Mechanical and ligand binding studies on glycerol-extracted rabbit fibers. J Gen Physiol 86:305–327 Fisher AJ, Smith CA, Thoden JB, Smith R, Sutoh K, Holden HM, Rayment I (1995) X-ray structures of the myosin motor domain of dictyostelium discoideum complexed with Mgadp-Center-Dot-Befx And Mgadp-Center-Dot-Alf4. Biochemistry 34:8960–8972 Fitts RH (1994) Cellular mechanisms of muscle fatigue. Physiol Rev 74:49–94 Franks-Skiba K, Lardelli R, Goh G, Cooke R (2007) Myosin light chain phosphorylation inhibits muscle fiber shortening velocity in the presence of vanadate. Am J Physiol Regul Integr Comp Physiol 292:R1603–R1612 Greenberg M, Pant K, Watt J, Mealy T, Jones M, Szczesna-Cordary D, Moore J (2008) The effects of myosin regulatory light chain phosphorylation on striated muscle myosin motility and force production. Biophys J 94:2280 Huxley HE, Faruqi AR (1983) Time-resolved X-ray diffraction studies on vertebrate striated muscle. Annu Rev Biophys Bioeng 12:381–417 Karatzaferi C, Franks-Skiba K, Cooke R (2007) Inhibition of shortening velocity of skinned skeletal muscle fibers in conditions that mimic fatigue. Am J Physiol Regul Integr Comp Physiol 294:R948–R955 Kovacs M, Toth J, Hetenyi C, Malnasi-Csizmadia A, Sellers JR (2004) Mechanism of blebbistatin inhibition of myosin II. J Biol Chem 279:35557–35563 Levine RJ (1993) Evidence for overlapping myosin heads on relaxed thick filaments of fish, frog, and scallop striated muscles. J Struct Biol 110:99–110 Levine RJ, Kensler RW, Yang Z, Stull JT, Sweeney HL (1996) Myosin light chain phosphorylation affects the structure of rabbit skeletal muscle thick filaments. Biophys J 71:898–907 Limouze J, Straight AF, Mitchison T, Sellers JR (2004) Specificity of blebbistatin, an inhibitor of myosin II. J Muscle Res Cell Motil 25(4–5):337–341 Mazhari SM, Selser CT, Cremo CR (2004) Novel sensors of the regulatory switch on the regulatory light chain of smooth muscle Myosin. J Biol Chem 279:39905–39914 Morgan M, Perry SV, Ottaway J (1976) Myosin light-chain phosphatase. Biochem J 157:687–697 Myburgh KH (2004) Can any metabolites partially alleviate fatigue manifestations at the cross-bridge? Med Sci Sports Exerc 36:20–27 Pate E, Wilson G, Bhimani M, Cooke R (1994) Temperature dependence of the inhibitory effects of orthovanadate on shortening velocity in fast skeletal muscle. Biophys J 66:1554–1562 Persechini A, Stull JT, Cooke R (1985) The effect of myosin phosphorylation on the contractile properties of skinned rabbit skeletal muscle fibers. J Biol Chem 260:7951–7954 Pires E, Perry SV, Thomas MA (1974) Myosin light-chain kinase, a new enzyme from striated muscle. FEBS Lett 41:292–296 Regnier M, Chase PB, Martyn DA (1999) Contractile properties of rabbit psoas muscle fibres inhibited by beryllium fluoride. J Muscle Res Cell Motil 20:425–432 Sakamoto T, Limouze J, Combs CA, Straight AF, Sellers JR (2005) Blebbistatin, a myosin II inhibitor, is photoinactivated by blue light. Biochemistry 44:584–588 Seow CY, Shroff SG, Ford LE (1997) Detachment of low-force bridges contributes to the rapid tension transients of skinned rabbit skeletal muscle fibres. J Physiol 501(Pt 1):149–164 Smith CA, Rayment I (1996) X-ray structure of the magnesium (II) • ADP • vanadate complex of the Dictyostelium discoideum myosin motor domain to 1.9 Å resolution. Biochemistry 35:5404–5417 Straight AF, Cheung A, Limouze J, Chen I, Westwood NJ, Sellers JR, Mitchison TJ (2003) Dissecting temporal and spatial control of cytokinesis with a myosin II Inhibitor. Science 299:1743–1747 Stull JT, Bowman BF, Gallagher PJ, Herring BP, Hsu LC, Kamm KE, Kubota Y, Leachman SA, Sweeney HL, Tansey MG (1990) Myosin phosphorylation in smooth and skeletal muscles: regulation and function. Prog Clin Biol Res 327:107–126 Sweeney HL, Bowman BF, Stull JT (1993) Myosin light chain phosphorylation in vertebrate striated muscle: regulation and function. Am J Physiol 264:C1085–C1095 Sweeney HL, Kushmerick MJ (1985) Myosin phosphorylation in permeabilized rabbit psoas fibers. Am J Physiol 249:C362–C365 Sweeney HL, Stull JT (1990) Alteration of cross-bridge kinetics by myosin light chain phosphorylation in rabbit skeletal muscle: implications for regulation of actin-myosin interaction. Proc Natl Acad Sci USA 87:414–418 Westerblad H, Allen DG (2003) Cellular mechanisms of skeletal muscle fatigue. Adv Exp Med Biol 538:563–570 Westerblad H, Allen DG, Lannergren J (2002) Muscle fatigue: lactic acid or inorganic phosphate the major cause? News Physiol Sci 17:17–21 Westerblad H, Bruton JD, Lannergren J (1997) The effect of intracellular pH on contractile function of intact, single fibres of mouse muscle declines with increasing temperature. J Physiol 500(Pt 1):193–204 Wray J (1987) Temperature dependence of the relaxed pattern from rabbit psoas fibers. J Muscle Res Cell Motil 8:62a Xu S, Offer G, Gu J, White HD, Yu LC (2003) Temperature and ligand dependence of conformation and helical order in myosin filaments. Biochemistry 42:390–401 Xu S, White HD, Offer G, Yu L (2008) Stabilisation of the helical order of myosin filaments by blebbistatin. Biophys J 94:629 Zhi G, Ryder JW, Huang J, Ding P, Chen Y, Zhao Y, Kamm KE, Stull JT (2005) Myosin light chain kinase and myosin phosphorylation effect frequency-dependent potentiation of skeletal muscle contraction. Proc Natl Acad Sci USA 102:17519–17524