Skip to main content
Log in

Assessing the current related heterogeneity and diversity patterns of benthic diatom communities in a turbid and a clear water river

  • Published:
Aquatic Ecology Aims and scope Submit manuscript

Abstract

Benthic diatoms were sampled in two rapids, in a turbid South-Finnish river (R. Keravanjoki, 22 FTU) and a clear water river in eastern Finland (R. Vaikkojoki, 4 FTU), to evaluate the diversity and spatial distribution patterns of diatom communities and especially their relationships to current velocity. In both rapids, epilithic diatoms were sampled in 15 sampling squares within three current velocity classes (10 cm s−1, 40 cm s−1 and 100 cm s−1). The sampling squares had significantly different diatom communities in the three current velocity classes at both sampling sites, however, separation of the communities was much more pronounced in the clear water river (p < 0.001) than in the turbid river (p < 0.05). In the clear water river, communities at the highest velocity were highly different from those at the lower velocities. On the other hand, in the turbid river, communities were more similar at all velocities. Significant (p < 0.05) indicators for highest current velocity in the clear water R. Vaikkojoki were Fragilaria capucina var. gracilis Hustedt, F. capucina var. rumpens Lange-Bertalot and Meridion circulare Agardh. There were no significant indicators for high current velocity in the turbid R. Keravanjoki. Cocconeis placentula Ehr., Cymbella sinuata Gregory and Navicula lanceolata (Agardh) Ehr. were the three most abundant species in the highest velocity. This study showed that diatom community was highly specialized but low in diversity at the highest velocity in the clear water river. This pattern was not seen in the turbid R. Keravanjoki, indicating that the diatom community could withstand at the higher current velocities. In addition, the results show the importance of sampling in a variety of current regimes, particularly in clear water rivers, in order to properly assess the diatom diversity and community of a river section.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Antoine S. and Benson-Evans K. 1982. The effect of current velocity on the rate of growth of benthic algal communities. Int Rev ges Hydrobiol. 67: 575–583.

    Google Scholar 

  • Berry K.J., Kvamme K.L. and Mielke P.W. 1983. Improvements in the permutation test for the spatial analysis of the distribution of artifacts into classes. American Antiquity 48: 547–553.

    Google Scholar 

  • Biggs B.J.F. and Thomsen H.A. 1995. Disturbance of stream periphyton by perturbations in shear stress: time to structural failure and differences in community resistance. J. Phycol. 31: 233–241.

    Google Scholar 

  • Biondini M.E., Bonham C.D. and Redente E.F. 1985. Secondary successional patterns in a sagebrush (Artemisia tridentata) community as they relate to soil disturbance and soil biological activity. Vegetatio 60: 25–36.

    Google Scholar 

  • Blum J.L. 1956. The ecology of the river algae. Bot. Rev. 22: 291–341.

    Article  CAS  Google Scholar 

  • Butcher R.W. 1940. Studies in the ecology of rivers IV: Observations on the growth and distribution of the sessile algae in the river Hull, Yorkshire. J. Ecol. 28: 210–223.

    Google Scholar 

  • Cazaubon A., Rolland T. and Loudiki M. 1995. Heterogeneity of periphyton in French Mediterranean rivers. Hydrobiologia 300/301: 105–114.

    Google Scholar 

  • Dufrene M. and Legendre P. 1997. Species assemblages and indicator species: the need for a flexible asymmetrical approach. Ecol. Monogr. 67: 345–366.

    Google Scholar 

  • Ghosh M. and Gaur J.P. 1998. Current velocity and the establishment of stream algal periphyton communities. Aquat. Bot. 60: 1–10.

    Google Scholar 

  • Keithan E.D. and Lowe R.L. 1985. Primary productivity and spatial structure phytolithic growth in streams in the Great Smoky Mountains National Park, Tennessee. Hydrobiologia 123: 59–68.

    Google Scholar 

  • Krammer K. and Lange-Bertalot H. 1986–1991. Bacillariophyceae. Süßwasserflora von Mitteleuropa, 2 (1–4). Gustav Fischer Verlag, Stuttgart, Germany.

    Google Scholar 

  • Lamb M.A. and Lowe R.L. 1987. Effects of current velocity on the physical structuring of diatom (Bacillariophyceae) communities. Ohio J. Sci. 87: 72–78.

    Google Scholar 

  • Ledger M.E. and Hildrew A.G. 1998. Temporal and spatial variation in the epilithic biofilm of an acid stream. Freshwat. Biol. 40: 655–670.

    Google Scholar 

  • McCune B. and Mefford M.J. 1999. PC-ORD. Multivariate Analysis of Ecological Data, Version 4. MjM Software Design, Gleneden Beach, Oregon, USA.

    Google Scholar 

  • McIntire C.D. 1966. Some effects of current velocity on periphyton communities in laboratory streams. Hydrobiologia 27: 559–570.

    Google Scholar 

  • McIntire C.D. 1968. Physiological-ecological studies on benthic algae in laboratory streams. J. Wat. Poll. Contr. Fed. 40: 1940–1952.

    CAS  Google Scholar 

  • McIntire C.D. 1973. Periphyton dynamics in laboratory streams: a simulation model and its implications. Ecol. Monogr. 43: 399–420.

    Google Scholar 

  • Minchin P.R. 1987. An evaluation of the relative robustness of techniques for ecological ordination. Vegetatio 69: 89–107.

    Google Scholar 

  • Morisawa M. 1968. Streams: Their Dynamics and Morphology. McGraw Hill, New York, USA.

    Google Scholar 

  • Pan Y., Stevenson J., Hill B.H., Kaufmann P.R. and Herlihy A.T. 1999. Spatial patterns and ecological determinants of benthic algal assemblages in Mid-Atlantic streams, USA. J. Phycol. 35: 460–468.

    Google Scholar 

  • Passy S.I. 2001. Spatial paradigms of lotic diatom distribution: a landscape ecology perspective. J. Phycol. 37: 370–378.

    Google Scholar 

  • Patrick R. 1971. The effects of increasing light and temperature on the structure of diatom communities. Limnol. Oceanogr. 16(2): 405–421.

    Article  Google Scholar 

  • Peterson C.G. and Stevenson J.R. 1989. Substratum conditioning and diatom colonization in different current regimes. J. Phycol. 25: 790–793.

    Google Scholar 

  • Peterson C.G. and Stevenson J.R. 1990. Post-spate development of epilithic algal communities in different current environments. Can. J. Bot. 68: 2092–2102.

    Google Scholar 

  • Poff L.N. and Ward J.V. 1995. Herbivory under different flow regimes: A field experiment and test of a model with a benthic stream insect. Oikos 72(2): 179–188.

    Google Scholar 

  • Reiter M.A. 1989. Development of benthic algal assemblages subjected to differing near-substrate hydrodynamic regimes. Can. J. Fish. Aquat. Sci. 46: 1375–1382.

    Article  Google Scholar 

  • Reiter M.A. and Carlson R.E. 1986. Current velocity in streams and the composition of benthic algal mats. Can. J. Fish Aquat. Sci. 43: 1156–1162.

    Article  Google Scholar 

  • Roemer S.C., Hoagland K.D. and Rosowski J.R. 1984. Development of a freshwater periphyton community as influenced by diatom mucilages. Can. J. Bot. 62: 1799–1813.

    Article  Google Scholar 

  • Rosowski J.R., Roemer S.C., Palmer J. and Hoagland K.D. 1986. Extracellular assocition and adaptive significance of the bas-relief mucilage pad of Achnanthes lanceolata (Bacillariophyceae). Diatom Res. 1: 113–129.

    Google Scholar 

  • Shannon C.E. and Weaver W. 1948. A Mathematical Theory of Communication. The University of Illinois Press, Illinois, USA.

    Google Scholar 

  • Silvester N.R. and Sleigh M.A. 1985. The forces on microorganisms at surfaces in flowing water. Freshw. Biol. 15: 433–448.

    Google Scholar 

  • Soininen J. 2003. Heterogeneity of benthic diatom communities in different spatial scales and current velocities in a turbid river. Arch. Hydrobiol. 156: 551–564.

    Google Scholar 

  • Sommer U. 2000. Benthic microalgal diversity enhanced by spatial heterogeneity of grazing. Oecologia 122: 284–287.

    Google Scholar 

  • Stevenson R.J. 1997. Scale-dependent determinants and consequences of benthic algal heterogeneity. J. N. Am. Benthol. Soc. 16: 248–262.

    Google Scholar 

  • Stevenson R.J., Bothwell M.L. and Lowe R.L., (eds) 1996. Algal Ecology. Academic Press Inc, San Diego, USA.

    Google Scholar 

  • Wendker S. 1992. Influence of current velocity on diatoms of a small softwater stream. Diatom. Res. 7(2): 387–396.

    Google Scholar 

  • Whitford L.A. 1960. Current effect and the growth of fresh-water algae. Trans. Am. Microsc. Soc. 79: 302–309.

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Soininen, J. Assessing the current related heterogeneity and diversity patterns of benthic diatom communities in a turbid and a clear water river. Aquat Ecol 38, 495–501 (2005). https://doi.org/10.1007/s10452-005-4089-3

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10452-005-4089-3

Key words

Navigation