NATURE AND ORIGIN OF GAP FILAMENTS IN STRIATED-MUSCLE

被引:0
|
作者
TROMBITAS, K
BAATSEN, PHWW
KELLERMAYER, MSZ
POLLACK, GH
机构
关键词
ELASTIC FILAMENT; TITIN; SKELETAL MUSCLE; IMMUNOELECTRON MICROSCOPY;
D O I
暂无
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Immunoelectron microscopy was used to study the nature and origin of 'gap' filaments in frog semitendinosus muscle. Gap filaments are fine longitudinal filaments observable only in sarcomeres stretched beyond thick/thin filament overlap: they occupy the gap between the tips of thick and thin filaments. To test whether the gap filaments are part of the titin-filament system, we employed monoclonal antibodies to titin (T-11, Sigma) and observed the location of the epitope at a series of sarcomere lengths. At resting sarcomere length, the epitope was positioned in the 1-band approximately 50 nm beyond the apparent ends of the thick filament. The location did not change perceptibly with increasing sarcomere length up to 3.6-mu-m. Above 3.6-mu-m, the span between the epitope and the end of the A-band abruptly increased, and above 4-mu-m, the antibodies could be seen to decorate the gap filaments. Between 5 and 6-mu-m, the epitope remained approximately in the middle of the gap. Even with this high degree of stretch, the label remained more or less aligned across the myofibril. The abrupt increase of span beyond 3.6-mu-m implies that the A-band domain of titin is pulled free of its anchor points along the thick filament, and moves toward the gap. Although this domain is functionally inextensible at physiological sarcomere length, the epitope movement in extremely stretched muscle shows that it is intrinsically elastic. Thus, the evidence confirms that gap filaments are clearly part of the titin-filament system. They are derived not only from the I-band domain of titin, but also from its A-band domain.
引用
收藏
页码:809 / 814
页数:6
相关论文
共 50 条
  • [31] LOCATION OF PARAMYOSIN IN RELATION TO THE SUBFILAMENTS WITHIN THE THICK FILAMENTS OF SCALLOP STRIATED-MUSCLE
    CASTELLANI, L
    VIBERT, P
    JOURNAL OF MUSCLE RESEARCH AND CELL MOTILITY, 1992, 13 (02) : 174 - 182
  • [32] REQUIREMENTS FOR INVITRO SHORTENING AND LENGTHENING OF ISOLATED THICK FILAMENTS OF LIMULUS STRIATED-MUSCLE
    BRANN, L
    DEWEY, MM
    BALDWIN, EA
    BRINK, P
    WALCOTT, B
    NATURE, 1979, 279 (5710) : 256 - 257
  • [33] BIDIRECTIONAL MOVEMENT OF ACTIN-FILAMENTS ALONG NATIVE THICK FILAMENTS FROM CRAYFISH STRIATED-MUSCLE
    TOYOSHIMA, YY
    JOURNAL OF MUSCLE RESEARCH AND CELL MOTILITY, 1990, 11 (06) : 541 - 541
  • [34] THE FLEXIBILITY OF STRIATED-MUSCLE MYOSIN
    CURRY, JF
    KRAUSE, S
    BIOPHYSICAL JOURNAL, 1990, 57 (02) : A329 - A329
  • [35] PROPERTIES OF SPHINCTERIC STRIATED-MUSCLE
    KRIER, J
    ADAMS, T
    NEWS IN PHYSIOLOGICAL SCIENCES, 1990, 5 : 263 - 267
  • [36] ORIGIN OF MYOGENIC CELL IN ADULT STRIATED-MUSCLE OF MAMMALS - REVIEW AND A HYPOTHESIS
    REZNIK, M
    DIFFERENTIATION, 1976, 7 (01) : 65 - 73
  • [37] NEONATAL GROWTH OF STRIATED-MUSCLE
    ONTELL, M
    JOURNAL OF CELL BIOLOGY, 1977, 75 (02): : A322 - A322
  • [38] THE STRIATED-MUSCLE OF THE RABBIT GUBERNACULUM
    JAMISON, S
    SOMERVILLE, C
    KEOGH, E
    GOLDIE, R
    MACKELLAR, A
    WARTON, A
    WHITAKER, D
    COLE, K
    CURNOW, DH
    CLINICAL AND EXPERIMENTAL PHARMACOLOGY AND PHYSIOLOGY, 1983, 10 (04) : 479 - 479
  • [39] EFFECT OF METRONIDAZOLE ON STRIATED-MUSCLE
    JADHAV, JH
    BALSARA, JJ
    JOSHI, VV
    SALUNKHE, DS
    EUROPEAN JOURNAL OF PHARMACOLOGY, 1974, 25 (02) : 263 - 266
  • [40] SUPERCONTRACTING STRIATED-MUSCLE IN A VERTEBRATE
    RICE, MJ
    NATURE, 1973, 243 (5404) : 238 - 240