DOI QR코드

DOI QR Code

A Study On Structure Change of Binding Actin and Moysin On The Contracting Muscle Membrane

수축중인 근육막에서 actin과 myosin 결합의 구조변화에 관한 연구

  • Kim, Duck-Sool (Department of Biomedical Engineering Tongmyong University) ;
  • Park, Keun-Ho (Department of Chemical Technology, Changwon National University)
  • 김덕술 (동명대학교 의용공학과) ;
  • 박근호 (창원대학교 공과대학 화공시스템공학)
  • Published : 2008.09.30

Abstract

The effects of the applied stretch and MgADP binding on the structure of the actin and myosin cross-bridges in rabbit fibers in the rigor state have been investigatedwith improved resolution by x-ray diffraction using synchrotron radiation. To clarify the structure of the ATP hydrolysis intermediates formed by actin and myosin cross-bridges,the effects of various phosphate analogs in the of MgADP on the structure of the thin and thick filaments in glycerinated rabbit muscle fibers in the rigor state investigated by x-ray diffraction with a short exposure time using synchrotron radiation. These results strongly suggest that when MgADP and phosphate analogs such as metallofluorides(BeF3 and AlF4)and vanadate(VO4(Vi)) were added the rigor fibers in the presence of the ATP-depletion backup system, the intensities of the actin-based layer lines were markedly weakened. We found that the intensity of the 14.5 nm-based meridional reflections increase by 20-50% when phosphate analogs such as metallofluorides(BeF3 and AlF4) and vanadate(VO4(Vi)) was added to the rigor muscle.

Keywords

References

  1. M. A. Bagni, G. Cecchi, F. Colomo, and C. Poggesi, Tension and Stiffness of Frog Muscle fibers at Full Filament Overlap, J. Muscle Res. Cell Motil., 11, 371 (1990) https://doi.org/10.1007/BF01739758
  2. H. E. Huxley, Mechanical Transients and the Origin of Muscular Force, Science, 164, 1365 (1969)
  3. H. E. Huxley, A. R. Farqi, and M. Brown, The Low-Angle X-ray Diagram of Vertebrate Striated Muscle and Its Behaviour during Contraction and Rigor, J. Mol. Biol., 30, 383 (1967) https://doi.org/10.1016/S0022-2836(67)80046-9
  4. H. E. Huxley, A. R. Farqi, M. Kress, J. Bordas, and M. H. J. Koch, Time - Resolved X-ray Diffraction Studies of The Myosin Layer-Line Reflections during Muscle Contraction, J. Mol. Biol., 158, 637 (1982) https://doi.org/10.1016/0022-2836(82)90253-4
  5. K. Wakabayashi, and Y. Amemiya, "Handbook on Synchrotron Radiation.", pp. 597, vol. 4, Progress in X-ray Synchrotron Diffraction Studies of Muscle Contraction, North Holland, Amsterdam (1991)
  6. K. Wakabayashi, H. Tanaka, T. Kobayashi, T. Hamanaka, S. Nishizawa, H. Sugi, and T. Mitsui, Dynamic X-ray Diffraction of Skeletal Muscle Contraction Structural Change of Actin Filaments, Adv. Biophys., 27, 3 (1991) https://doi.org/10.1016/0065-227X(91)90004-W
  7. Y. Amemiya, K. Wakabayashi, T. Hamanaka, T. Wakabayashi, T. Matsushta, and H. Hashizume, Design of a Small-Angle X-ray Diffractometer using Synchrotron Radiation at The Photon Factory, Nucl. Instrum. Methods, 208, 471 (1983) https://doi.org/10.1016/0167-5087(83)91170-5
  8. I. Matsubara, and N. Yagi, Structural Change in The Thin Filament during Activation Studied by X-ray Diffraction by Highly Stretched Skeletal Muscle, J. Mol. Biol., 208, 359 (1989) https://doi.org/10.1016/0022-2836(89)90396-3
  9. K. Oshima, Y. Takezawa, Y. Sugimoto, T. C. Thomas, and K. Wakabayashi, Intensity Anaysis of Myosin-based X-ray Meridional Reflections from Live Skeletal Muscles in Relaxed and Contracting, J. of Mol. Biol, 13, 25 (2005)
  10. K. Oshima, Y. Takezawa, Y. Sugimoto, M. Kiyotoshi, and K. Wakabayashi, Modeling Analysis of Myosin-based Meridional X-ray Reflections from Frog Skeletal Muscles in Relaxed and Contracting States, Adv Exp Med Biol, 538, 243 (2004)
  11. Junichi Higo, Yasunobu Sugimoto, Katsuzo Wakabayashi, and Haruki Nakamura, Collective motions of myosin head derived from backbone molecular dynamics and combination with X-ray solution scattering data, J. Computational. Che, 22, 1983 (2001) https://doi.org/10.1002/jcc.1147
  12. H. Tanaka, T. Kobayashi, Y. Takezawa, Y. Sugimoto, K. Wakabayashi, The Time Lag Between the X-ray Intensity Changes and the Tension Development on Muscle Contraction, KEK PROCEEDINGS, 2, 268 (2002)
  13. H. Yagi, S. Takemori, and M. Yamaguchi, An X-ray Diffraction Study of Frog Skeletal Muscle during Shortening near The Maximum Velocity, J. Mol. Biol, 231, (1993)
  14. N. Yagi, Effects of N-ethlmaleimide on The Structure of Skinned Frog Skeletal Muscle, J. Muscle Res. Cell Motil., 13, 457 (1992) https://doi.org/10.1007/BF01738040
  15. K. Hirose, T. J. M. Murray, C. Franzini-Armstrong, and Y. E. Goldman, Structural Changes in Muscle crossbridge accompanying Force Generation, J. Cell Biol., 127, 763 (1994) https://doi.org/10.1083/jcb.127.3.763
  16. K. Wakabayashi, H. Saito, T. Kobayashi, Y. Ueno, and H. Tanaka, Detection of The Spacing Changes of Muscle Thin Filaments during Force Generation by X-ray diffraction, Photon Factory Act. Rep., 10, 352 (1992)
  17. N. Yagi and I. Matsubara, "Structural Changes in The Thin Filament during Activation Studied by X-ray Diffraction by Highly Stretched Skeletal Muscle, J. Mol. Biol., 208, 359 (1989) https://doi.org/10.1016/0022-2836(89)90396-3