The Response of Contractile and Non‐Contractile Vacuoles of Paramecium calkinsi to Widely Varying Salinities
- 1 November 1991
- journal article
- Published by Wiley in The Journal of Protozoology
- Vol. 38 (6) , 565-573
- https://doi.org/10.1111/j.1550-7408.1991.tb06081.x
Abstract
Paramecium calkinsi from tidal marshes survive a wide salinity range. Fluid output of contractile vacuoles of these cells decreased as salinity of the medium to which they were acclimated increased, and both pulse rate and vacuole volume were used to regulate output. When cells were first exposed to more dilute medium, contractile vacuoles greatly increased volume so that fluid output increased even though pulse rate decreased. In cells shifted to a more concentrated medium, contractile vacuole output decreased by decreasing pulse rate. The contractile vacuole is surrounded by a set of collecting structures which change form as the salinity changes. Distensible ampullae are found in media of low salinity and collecting canals are found in media of high salinity. When cells are shifted from high salinity to low, the number of ampullae increases and the number of canals decreases. When cells are shifted from low salinity to high, the number of ampullae decreases and the number of canals decreases. Other non-contracting vacuoles also appear in response to a hypoosmotic shock. These include vacuoles within the cell as well as "blisters" on the surface. The number and frequency of blisters increases with the size of the hypoosmotic shock. They detach from cells without resulting in any visible loss of cytoplasm. Non-contractile vacuoles may play a role in sequestering and removing excess water that the contractile vacuoles cannot handle.Keywords
This publication has 25 references indexed in Scilit:
- Membrane Dynamics of the Contractile Vacuole Complex of Paramecium1The Journal of Protozoology, 1988
- Morphological and physiological studies of rat kidney cortex slices undergoing isosmotic swelling and its reversal: A possible mechanism for ouabain-resistant control of cell volumeThe Journal of Membrane Biology, 1985
- Dimensionality and contractile vacuole function in ciliated protozoaJournal of Experimental Zoology, 1982
- Ouabain-resistant mechanism of volume control and the ultrastructural organization of liver slices recovering from swellingin vitroThe Journal of Membrane Biology, 1981
- Ciliary membranes in water transportJournal of Experimental Zoology, 1978
- PERMEABILITY MODULATING MEMBRANE COATSThe Journal of cell biology, 1974
- OSMOREGULATION IN A MARINE CILIATE,MIAMIENSIS AVIDUS. I. REGULATION OF INORGANIC IONS AND WATERThe Biological Bulletin, 1969
- Elektronenmikroskopische Untersuchungen über das Nephridialsystem von Paramaecium.The Journal of Protozoology, 1960
- Regulation of the water content of amoeba mira and adaptation to changes in the osmotic concentration of the surrounding mediumJournal of Cellular and Comparative Physiology, 1941
- The Occurrence of Conjugation in Paramecium calkinsiScience, 1928