Ultrastructure and motion analysis of permeabilized paramecium capable of motility and regulation of motility
- 1 January 1988
- journal article
- research article
- Published by Wiley in Cell Motility
- Vol. 9 (1) , 73-84
- https://doi.org/10.1002/cm.970090108
Abstract
Structural and behavioral features of intact and permeabilized Paramecium tetraurelia have been defined as a basis for study of Ca2+ control of ciliary reversal. Motion analysis of living paramecia shows that all the cells in a population swim forward with gently curving spirals at speeds averaging 369 ± 19 μm/second. Ciliary reversal occurs in 10% of the cell population per second. Living paramecia, quick-fixed for scanning electron microscopy (SEM), show metachronal waves and an effective stroke obliquely toward the posterior end of the cell. Upon treatment with Triton X-100, swimming ceases and both scanning and transmission electron microscopy reveal cilia that uniformly project perpendicularly from the cell surface. Thin sections of these cells indicate that the ciliary, cell, and outer alveolar membranes are greatly disrupted or entirely missing and that the cytoplasm is also disrupted. These permeabilized paramecia can be reactivated and are capable of motility and regulation of motility. Motion analysis of cells reactivated with Mg2+ and ATP in low Ca2+ buffer (pCa7) shows that 71% swim forward in straight or curved paths at speeds averaging 221 ± 20 μm/second. When these cells are quick-fixed for SEM the metachronal wave patterns of living, forward swimming cells reappear. Motion analysis of permeabilized cells reactivated in high Ca2+ buffers (pCa 5.5) shows that 94% swim backward in tight spirals at a velocity averaging 156 ± 7 μm/second. SEM reveals a metachronal wave pattern with an effective stroke toward the anterior region. Although the permeabilized cells do not reverse spontaneously, the pCa response is preserved and the Ca2+ switch remains intact. The ciliary axonemes are largely exposed to the external environment. Therefore, the behavioral responses of these permeabilized cells depend on interaction of Ca2+ with molecules that remain bound to the axonemes throughout the extraction and reactivation procedures.Keywords
This publication has 25 references indexed in Scilit:
- Isolation of newt lung ciliated cell models: Characterization of motility and coordination thresholdsCell Motility, 1985
- Trifluoperazine‐induced changes in swimming behavior of paramecium: Evidence for two sites of drug actionCell Motility, 1984
- Microtubule capping structures at the tips of tracheal cilia: Evidence for their firm attachment during ciliary bend formation and the restriction of microtubule slidingCell Motility, 1982
- Presence and indirect immunofluorescent localization of calmodulin in Paramecium tetraurelia.The Journal of cell biology, 1981
- Hydrostatic Pressure Reversibly Blocks Membrane Control of Ciliary Motility in ParameciumScience, 1979
- Calcium control of ciliary arrest in mussel gill cells.The Journal of cell biology, 1978
- THE CONTRACTILE PROCESS IN THE CILIATE, STENTOR COERULEUS The Journal of cell biology, 1973
- CORTICAL ULTRASTRUCTURE OF PARAMECIUM AURELIA The Journal of cell biology, 1969
- Growth of Particle‐Bearing and Particle‐Free Paramecium aurelia in Axenic Culture*The Journal of Protozoology, 1966
- THE FINE STRUCTURE OF CORTICAL COMPONENTS OF PARAMECIUM MULTIMICRONUCLEATUMThe Journal of cell biology, 1955