TIME-RESOLVED CRYOELECTRON MICROSCOPY OF VITRIFIED MUSCULAR COMPONENTS

被引:26
|
作者
LEPAULT, J [1 ]
ERK, I [1 ]
NICOLAS, G [1 ]
RANCK, JL [1 ]
机构
[1] CNRS, TECHNOL LAB, F-75005 PARIS, FRANCE
关键词
TIME-RESOLVED MICROSCOPY; CRYOELECTRON MICROSCOPY; CRYO SUBSTITUTION; VITRIFIED BIOLOGICAL SPECIMEN; ACTIN STRUCTURE; MUSCLE STRUCTURE;
D O I
10.1111/j.1365-2818.1991.tb03072.x
中图分类号
TH742 [显微镜];
学科分类号
摘要
Biological objects may be arrested in defined stages of their activity by fast freezing and may then be structurally examined. If the time between the start of activity and freezing is controlled, structural rearrangements due to biological function can be determined. Cryo-electron microscopy shows great potential for the study of such time-dependent phenomena. This study examines the actin polymerization process using cryo-electron microscopy of vitrified specimens. Actin filaments are shown to undergo a structural change during polymerization. In the early stages of the polymerization process (t < 2 min), filaments exhibit a pronounced structural variation and frequently show a central low-density area. In the later stages of the polymerization, F-actin-ADP filaments have a more uniform appearance and rarely display a central low-density area. These findings, analysed on the basis of a previously proposed polymerization model, suggest that polymerization intermediates (F-actin-ATP and more probably F-actin-ADP-P(i)) and filaments at steady state (F-actin-ADP) have different structures. To investigate the physiological relevance of these results at the cellular level, the potential of cryo-substitution in preserving the structure of muscular fibre was assessed. Optical diffraction patterns of relaxed and contracted frog cutaneous muscle are similar to the corresponding X-ray diffraction patterns. The resolution of the images extends to about 7 nm. These results show that dynamic study of muscle contraction is possible using cryo-substitution.
引用
收藏
页码:47 / 57
页数:11
相关论文
共 50 条
  • [21] CRYOELECTRON MICROSCOPY OF VITRIFIED SPECIMENS - STUDY OF RAT TAIL TENDON
    LEPAULT, J
    INSTITUTE OF PHYSICS CONFERENCE SERIES, 1988, (93): : 21 - 23
  • [22] Colloquium: Time-resolved scanning tunneling microscopy
    van Houselt, Arie
    Zandvliet, Harold J. W.
    REVIEWS OF MODERN PHYSICS, 2010, 82 (02) : 1593 - 1605
  • [23] TIME-RESOLVED MICROSCOPY ADDS AN EXTRA DIMENSION
    NUNES, G
    FREEMAN, MR
    BOZARTH, J
    LASER FOCUS WORLD, 1994, 30 (04): : 121 - &
  • [24] Novel setup for time-resolved fluorescence microscopy
    Gundlach, Lars
    Piotrowiak, Piotr
    PHYSICAL CHEMISTRY OF INTERFACES AND NANOMATERIALS VI, 2007, 6643
  • [25] Probing excitons with time-resolved momentum microscopy
    Reutzel, Marcel
    Jansen, G. S. Matthijs
    Mathias, Stefan
    ADVANCES IN PHYSICS-X, 2024, 9 (01):
  • [26] The effect of anisotropy in time-resolved acoustic microscopy
    Knauss, D
    Briggs, GAD
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1996, 29 (04) : 1093 - 1099
  • [27] ULTRAFAST TIME-RESOLVED LASER SCANNING MICROSCOPY
    BERGNER, H
    STAMM, U
    HEMPEL, K
    KEMPE, M
    KRAUSE, A
    WABNITZ, H
    INSTITUTE OF PHYSICS CONFERENCE SERIES, 1992, (126): : 143 - 146
  • [28] TIME-RESOLVED CRYOTRANSMISSION ELECTRON-MICROSCOPY
    TALMON, Y
    BURNS, JL
    CHESTNUT, MH
    SIEGEL, DP
    JOURNAL OF ELECTRON MICROSCOPY TECHNIQUE, 1990, 14 (01): : 6 - 12
  • [29] Time-Resolved X-Ray Microscopy
    Lider, V. V.
    JOURNAL OF SURFACE INVESTIGATION, 2021, 15 (01): : 28 - 38
  • [30] Time-Resolved X-Ray Microscopy
    V. V. Lider
    Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques, 2021, 15 : 28 - 38