M-band: a safeguard for sarcomere stability?

被引:0
|
作者
Irina Agarkova
Elisabeth Ehler
Stephan Lange
Roman Schoenauer
Jean-Claude Perriard
机构
[1] Institute of Cell Biology,ETH
关键词
Eccentric Contraction; Muscle Type; Embryonic Heart; Nebulin; Titin Molecule;
D O I
暂无
中图分类号
学科分类号
摘要
The sarcomere of striated muscle is a very efficient machine transforming chemical energy into movement. However, a wrong distribution of the generated forces may lead to self-destruction of the engine itself. A well-known example for this is eccentric contraction (elongation of the sarcomere in the activated state), which damages sarcomeric structure and leads to a reduced muscle performance. The goal of this review is to discuss the involvement of different cytoskeletal systems, in particular the M-band filaments, in the mechanisms that provide stability during sarcomeric contraction. The M-band is the transverse structure in the center of the sarcomeric A-band, which is responsible both for the regular packing of thick filaments and for the uniform distribution of the tension over the myosin filament lattice in the activated sarcomere. Although some proteins from the Ig-superfamily, like myomesin and M-protein, are the major candidates for the role of M-band bridges, the exact molecular organisation of the M-band is not clear. However, the protein composition of the M-band seems to modulate the mechanical characteristics of the thick filament lattice, in particular its stiffness, adjusting it to the specific demands in different muscle types. The special M-band design in slow fibers might be part of structural adaptations, favouring sarcomere stability for a continuous contractile activity over a broad working range. In conclusion, we discuss why the interference with M-band structure might have fatal consequences for the integrity of the working sarcomere.
引用
收藏
页码:191 / 203
页数:12
相关论文
共 50 条
  • [21] Mislocalization of SMN from the I-band and M-band in human skeletal myofibers in spinal muscular atrophy associates with primary structural alterations of the sarcomere
    Berciano, Maria T.
    Castillo-Iglesias, Maria S.
    Fernando Val-Bernal, J.
    Lafarga, Vanesa
    Rodriguez-Rey, Jose C.
    Lafarga, Miguel
    Tapia, Olga
    CELL AND TISSUE RESEARCH, 2020, 381 (03) : 461 - 478
  • [22] THEORY OF ORTHONORMAL M-BAND WAVELET PACKETS
    Zhang Jiankang Bao Zheng Jiao Licheng (Key Lab. for Radar Signal Processing
    Journal of Electronics(China), 1998, (03) : 193 - 198
  • [23] The relationship of calpain 3 and titin in the M-band
    Charton, K.
    Sarparanta, J.
    Vihola, A.
    Suel, L.
    Daniele, N.
    Hackman, P.
    Udd, B.
    Richard, I.
    NEUROMUSCULAR DISORDERS, 2014, 24 (9-10) : 885 - 885
  • [24] Construction of compactly supported M-band wavelets
    Bi, N
    Dai, XR
    Sun, QY
    APPLIED AND COMPUTATIONAL HARMONIC ANALYSIS, 1999, 6 (02) : 113 - 131
  • [25] THEORY AND APPLICATION OF M-BAND WAVELET TRANSFORM
    朱宏擎
    经致远
    林良明
    颜国正
    JournalofShanghaiJiaotongUniversity, 1999, (01) : 29 - 31
  • [26] The M-band cardinal orthogonal scaling function
    Wu, Guochang
    Li, Dengfeng
    Xiao, Huimin
    Liu, Zhanwei
    APPLIED MATHEMATICS AND COMPUTATION, 2010, 215 (09) : 3271 - 3279
  • [27] M-band wavelet discrimination of natural textures
    Chitre, Y
    Dhawan, AP
    PATTERN RECOGNITION, 1999, 32 (05) : 773 - 789
  • [28] M-band wavelet discrimination of natural textures
    Department of Radiology, University of Chicago, Chicago, IL 60637, United States
    不详
    Pattern Recogn., 5 (773-789):
  • [29] M-band filtering and nonredundant directional wavelets
    Durand, Sylvain
    APPLIED AND COMPUTATIONAL HARMONIC ANALYSIS, 2007, 22 (01) : 124 - 139
  • [30] Myofibrillogenesis in cardiomyocytes in situ and the role of the M-band
    Perriard, JC
    Ehler, E
    Agarkova, I
    Auerbach, D
    Giro, P
    Leu, M
    Nemir, M
    MOLECULAR BIOLOGY OF THE CELL, 1999, 10 : 168A - 168A