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Structure and behavior of contractile vacuoles inChlamydomonas reinhardtii

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Summary

The contractile vacuole (CV) cycle ofChlamydomonas reinhardtii has been investigated by videomicroscopy and electron microscopy. Correlation of the two kinds of observation indicates that the total cycle (15 s under the hypo-osmotic conditions used for videomicroscopy) can be divided into early, middle, and late stages. In the early stage (early diastole, about 3 s long) numerous small vesicles about 70–120 nm in diameter are present. In the middle stage (mid-diastole, about 6 s long), the vesicles appear to fuse with one another to form the contractile vacuole proper. In the late stage (late diastole, also about 6 s long), the CV increases in diameter by the continued fusion of small vesicles with the vacuole, and makes contact with the plasma membrane. The CV then rapidly decreases in size (systole, about 0.2 s). In isosmotic media, CVs do not appear to be functioning; under these conditions, the CV regions contain numerous small vesicles typical of the earliest stage of diastole. Fine structure observations have provided no evidence for a two-component CV system such as has been observed in some other cell types. Electron microscopy of cryofixed and freeze-substituted cells suggests that the irregularity of the profiles of larger vesicles and vacuoles and some other morphological details seen in conventionally fixed cells may be shrinkage artefacts. This study thus defines some of the membrane events in the normal contractile vacuole cycle ofChlamydomonas, and provides a morphological and temporal basis for the study of membrane fusion and fluid transport across membranes in a cell favorable for genetic analysis.

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Abbreviations

CV:

contractile vacuole

PM:

plasma membrane

References

  • de Chastellier C, Quiviger B, Ryter A (1978) Observations on the functioning of the contractile vacuole ofDictyostelium discoideum with the electron microscope. J Ultrastruct Res 62: 220–227

    PubMed  Google Scholar 

  • Denning GM, Fulton AB (1989) Electron microscopy of a contractile-vacuole mutant ofChlamydomonas moewusii (Chlorophyta) defective in the late stages of diastole. J Phycol 25: 667–672

    Google Scholar 

  • Ettl H (1976) Die Gattung Chlamydomonas Ehrenberg. Beih Nova Hedwigia 49: 1–1122

    Google Scholar 

  • Gruber HE, Rosario B (1979) Ultrastructure of the Golgi apparatus and contractile vacuole inChlamydomonas reinhardi. Cytologia 44: 505–526

    Google Scholar 

  • Harris EH (1989) The Chlamydomonas sourcebook. Academic Press, San Diego

    Google Scholar 

  • Hausmann K, Patterson DJ (1984) Contractile vacuole complexes in algae. In: Wiessner W, Robinson D, Starr RC (eds) Compartments in algal cells and their interaction. Springer, Berlin Heidelberg New York Tokyo, pp 139–146

    Google Scholar 

  • Hellebust JA, Mérida T, Ahmad I (1989) Operation of contractile vacuoles in the euryhaline green flagellateChlamydomonas pulsatilla (Chlorophyceae) as a function of salinity. Mar Biol 100: 373–379

    Google Scholar 

  • Heuser JE, Reese TS (1973) Evidence for recycling of synaptic vesicle membrane during transmitter release at the frog neuromuscular junction. J Cell Biol 57: 315–344

    PubMed  Google Scholar 

  • —, Zhu Q, Clarke M (1993) Proton pumps populate the contractile vacuoles ofDictyostelium amoebae. J Cell Biol 121: 1311–1327

    PubMed  Google Scholar 

  • Huang BP-H (1986)Chlamydomonas reinhardtii: a model system for the genetic analysis of flagellar structure and motility. Int Rev Cytol 99: 181–215

    Google Scholar 

  • Ishida M, Aihara MS, Allen RD, Fok AK (1993) Osmoregulation inParamecium: the locus of fluid segregation in the contractile vacuole complex. J Cell Sci 106: 693–702

    PubMed  Google Scholar 

  • —, Fok AK, Aihara MS, Allen RD (1996) Hyperosmotic stress leads to reversible dissociation of the proton pump-bearing tubules from the contractile vacuole complex inParamecium. J Cell Sci 109: 229–237

    PubMed  Google Scholar 

  • Kitching JA (1938) Contractile vacuoles. Biol Rev 13: 403–444

    Google Scholar 

  • Kushida H (1966) Block staining with lead acetate. J Electron Microsc 15: 90–91

    Google Scholar 

  • Leedale GF (1967) Euglenoid flagellates. Prentice-Hall, Englewood Cliffs

    Google Scholar 

  • Linder JC, Staehelin LA (1979) A novel model for fluid secretion by the trypanosomatid contractile vacuole apparatus. J Cell Biol 83: 371–382

    PubMed  Google Scholar 

  • Lynn DH (1982) Dimensionality and contractile vacuole function in ciliated protozoa. J Exp Zool 233: 219–229

    Google Scholar 

  • Manton I (1964) Observations on the fine structure of the zoospore and young germling ofStigeoclonium. J Exp Bot 15: 399–411

    Google Scholar 

  • McKanna JA (1973) Membrane recycling: vesiculation of the amoeba contractile vacuole at systole. Science 179: 88–90

    PubMed  Google Scholar 

  • — (1974) Permeability modulating membrane coats. I. Fine structure of fluid segregation organelles of peritrich contractile vacuoles. J Cell Biol 63: 317–322

    PubMed  Google Scholar 

  • — (1976) Fine structure of fluid segregation organelles ofParamecium contractile vacuoles. J Ultrastruct Res 54: 1–10

    PubMed  Google Scholar 

  • Morré DJ (1985) Exocytosis, endocytosis, and recycling of membranes. In: Benga G (ed) Structure and properties of cell membranes, vol II. CRC Press, Boca Raton, pp 181–213

    Google Scholar 

  • Nolta KV, Steck TL (1994) Isolation and characterization of the bipartite contractile vacuole complex fromDictyostelium discoideum. J Biol Chem 269: 2225–2233

    PubMed  Google Scholar 

  • Patterson DJ (1980) Contractile vacuoles and associated structures: their organization and function. Biol Rev 55: 1–46

    Google Scholar 

  • Rochaix J-D (1995)Chlamydomonas reinhardtii as the photosynthetic yeast. Annu Rev Genet 29: 209–230

    PubMed  Google Scholar 

  • Südhof TC (1995) The synaptic vesicle cycle: a cascade of protein-protein interactions. Science 375: 645–653

    Google Scholar 

  • Weiss RL (1983) Coated vesicles in the contractile vacuole/mating structure region ofChlamydomonas. J Ultrastruct Res 85: 33–44

    Google Scholar 

  • —, Goodenough DA, Goodenough UW (1977) Membrane particle arrays associated with the basal body and with contractile vacuole secretion inChlamydomonas. J Cell Biol 72: 133–143

    PubMed  Google Scholar 

  • Wessel G, Robinson DG (1979) Studies on the contractile vacuole ofPoterioochromonas malhamensis Peterfi. I. The structure of alveolate vesicles. Eur J Cell Biol 19: 60–66

    Google Scholar 

  • Zhang Y-H, Robinson DG (1986) On the fixation ofChlamydomonas reinhardtii. Ber Deutsch Bot Ges 99: 179–188

    Google Scholar 

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Luykx, P., Hoppenrath, M. & Robinson, D.G. Structure and behavior of contractile vacuoles inChlamydomonas reinhardtii . Protoplasma 198, 73–84 (1997). https://doi.org/10.1007/BF01282133

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  • DOI: https://doi.org/10.1007/BF01282133

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