Protoplasma

, Volume 107, Issue 1–2, pp 47–61 | Cite as

Fine structure study on the development of trabeculae in the siphonous green algaCaulerpa simpliciuscula C. Ag.

  • D. Menzel
  • B. R. Grant
Article

Summary

Bundles of fibrils and tubular structures were found to be associated with growing trabeculae ofCaulerpa simpliciuscula. In the rhizome tips, the bundles had an average diameter of 0.1 to 0.3 μm, and a length greater than 10 μm. The fibrils in the bundles were oriented in a strictly parallel fashion, with an individual thickness of 3–8 nm. The development of trabeculae started with the apposition of material of low electron density onto the bundles, which in this way became the inner skeleton of the trabeculae.

Although fibre bundles with the same internal structure also occurred in the frond tip, these rarely contributed to trabecula formation. In the frond tips a different type of bundle with paracrystalline structure was found associated with the trabecular surface, forming a temporary connection between adjacent trabeculae. Permanent connection was achieved by deposition of further layers of trabecular material. These bundles in the frond tip consisted of two layers of tubular elements with a wall thickness of 80 Å and an inner diameter of 20–25 nm.

Both fibre bundles and tubular bundles appear to contribute to trabecula formation. The similarity of these structures to the vacuolar inclusions observed in other siphonous algae is discussed.

Keywords

Caulerpa Fibre bundles Siphonous algae Trabeculae 

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References

  1. Borowitzka, M. A., Larkum, A. W. D., 1977: Calcification in the green algaHalimeda. I. Ultrastructural study of thallus development. J. Phycol.13, 6–16.Google Scholar
  2. Burr, F. A., West, J. A., 1971: Protein bodies inBryopsis hypnoides: Their relationship to wound-healing and branch system development. J. Ultrastruct. Res.35, 476–498.Google Scholar
  3. Colombo, P. M., 1978: An ultrastructural study of the thallus organization inUdotea petiolata. Phycologia17, 227–235.Google Scholar
  4. Correns, C., 1894: Über die Membran vonCaulerpa. Ber. deutsch. bot. Ges.12, 335–367.Google Scholar
  5. Dawes, C. J., Barilotti, D. C., 1969: Cytoplasmic organization and rhythmic streaming in growing blades ofCaulerpa prolifera. Amer. J. Bot.56, 8–15.Google Scholar
  6. —,Rhamstine, E. I., 1967: An ultrastructural study of the giant green algal coenocyteCaulerpa prolifera. J. Phycol.3, 117–126.Google Scholar
  7. Dreher, T. W., Grant, B. R., Wetherbee, R., 1978: The wound response in the siphonous green algaCaulerpa simpliciuscula C. Ag.: Fine structure and cytology. Protoplasma96, 189–203.Google Scholar
  8. Fritsch, F. E., 1948: The structure and reproduction of the algae, Vol. I. Cambridge: University Press.Google Scholar
  9. Hepler, P. K., Palevitz, B. A., 1974: Microtubules and microfilaments. Ann. Rev. Plant Physiol.25, 309–362.Google Scholar
  10. Hori, T., Ueda, R., 1967: Electron microscope studies on the fine structure of plastids in siphonous green algae with special reference to their phylogenetic relationship. Sci. Rept. Tokyo Kyoiku Diagaku Sect. B12, 225–244.Google Scholar
  11. Janse, J. M., 1890: Die Bewegung des Protoplasmas vonCaulerpa prolifera. Jahrbuch wiss. Bot.21, 163–284.Google Scholar
  12. Menzel, D., 1979: Accumulation of peroxidase in the cap rays ofAcetabularia during the development of gametangia. J. Histochem. Cytochem.27, 1003–1010.Google Scholar
  13. Mishra, A. K., 1969: Fine structure of the growing point of the coenocyte algaCaulerpa sertularioides. Can. J. Bot.47, 1599–1603.Google Scholar
  14. Noll, F., 1888: Über die Funktion der Zellstoff-Fasern derCaulerpa prolifera. Arb. Bot. Inst. Würzburg3, 459–465.Google Scholar
  15. Oltmanns, F., 1922: Morphologie und Biologie der Algen, Vol. I,Chrysophyceae-Chlorophyceae. Jena: G. Fischer.Google Scholar
  16. Roth, W. C.,Friedmann, E. J., 1980: Taxonomic significance of nuclear features in siphonous green algae. J. Phycology16, Suppl. 36.Google Scholar
  17. Sabnis, D. D., 1969: Observations on the ultrastructure of the coenocyte marine algaCaulerpa prolifera with particular reference to some unusual cytoplasmic components. Phycologia7, 24–42.Google Scholar
  18. —,Jacobs, W. P., 1967: Cytoplasmic streaming and microtubules in the coenocyte marine algaCaulerpa prolifera. J. Cell Sci.2, 465–472.Google Scholar
  19. Strasburger, E., 1882: Ober den Bau und das Wachstum der Zellhäute. Jena: G. Fischer.Google Scholar
  20. Turner, J. B., Friedmann, E. I., 1974: Finestructure of capitular filaments in the coenocytic green algaPenicillus. J. Phycol.10, 125–134.Google Scholar
  21. Williamson, R. E., 1979: Filaments associated with the endoplasmic reticulum in the streaming cytoplasm ofChara corallina. Eur. J. Cell Biol.20, 177–183.Google Scholar
  22. Zafaralla, M. T., Pantastico, J. B., 1971: Cytochemical and developmental studies on callose formation in three species ofCaulerpa. Philippine Argicult.54, 1971–1977.Google Scholar

Copyright information

© Springer-Verlag 1981

Authors and Affiliations

  • D. Menzel
    • 1
  • B. R. Grant
    • 2
  1. 1.Department of Fine Structure Research, Institute of Plant Physiology and Cell BiologyFree University BerlinGermany
  2. 2.Russell Grimwade School of BiochemistryUniversity of MelbourneParkvilleAustralia

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