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B A Fisher

Publications and source records attributed to B A Fisher.

4 recordsLinked to original sources

Effects of DMSO, pH, stretch and calcium on the thick filaments in an amphibian smooth muscle.

Conventional fixation with glutaraldehyde fixatives at pH 7.4 did not preserve/promote thick filaments in Bufo smooth muscle. However, if pH was lowered to 6.0, thick filaments were present and addition of dimethyl sulfoxide (DMSO) led to a greater number of thick filaments. Stretch alone had little effect on the presence of thiber seen. Calcium had little effect on the numbers of thick filaments, but it affected the appearance of the thick filaments. Low calcium (10(-7) M) caused a higher proportion of rod-shaped filaments, while in high calcium (10(-3) M) most thick filaments were ribbons. The great lability of the thick filaments in amphibian smooth muscles makes them ideal for studying factors which affect the appearance of thick filaments in smooth muscle, but it also raises the question of the degree of aggregation of myosin in the living cell.

Animals

Reorientation of myofilaments during contraction of a vertebrate smooth muscle.

The purpose of the investigation was to determine whether filaments within smooth muscle cells changed their orientation (with respect to the main axis of the cell) during contraction. The stomach muscle of Bufo marinus was used, since its cells may be easily isolated, enabling direct observation in living cells. In addition to still micrography, cinemicrography was used to record continuously during contraction. Polarization microscopy revealed a change in birefringence after contraction, with relaxed cells exhibiting uniform birefringence while contracted cells displayed a discontinuous pattern. Movies revealed a progressive change in orientation of birefringent elements from nearly parallel to the cell's main axis in relaxed cells to increasingly larger angles to the cell's axis as contraction progressed. Phase-contrast microscopy revealed a change in filamentous components, from being parallel to the cell's axis in relaxed cells to being in an undulating or helical pattern during concentration. Cell shape tended to follow the configuration of the filamentous component. Electron microscopy of muscle strips corroborated the observations of living cells and substantiated the conclusion that filaments change their orientation from parallel to oblique (with respect to the cell's axis) during shortening with an undulating or helical pattern of filaments in shortened muscles.

Animals