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Testing for longitudinal zonation of macroinvertebrate fauna along a small upland headwater stream in two seasons

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The effect of longitudinal zonation patterns and macroinvertebrate responses to changes in habitat characteristics have been given a lot of attention. But studies of changes in macroinvertebrate assemblages along small upland undisturbed watercourses are still lacking. The aim of the study is to analyse variability in macroinvertebrate communities between two different habitats/morphological sequences — shallow (riffle/run/step/) and deeper (pool) channel-bed morphological units on the background of the environmental parameters (local relief, slope, channel confinement ratio, channel-valley walls connectivity, floodplain continuity and channel abut, channel sinuosity and predominant land cover of riparian zone) of seven valley segments (functional process zones) in two seasons of the year (spring and autumn). The longitudinal-downstream gradient research was conducted on the semi-natural upland headwater brook in the Little Carpathians (9,330 m long, average gradient 2.8%) at 15 morphological sequences (30 sampling points). Each sampling point in spring as well as in autumn was characterised by mean flow velocity, discharge, water depth, channel width, channel bottom particle size, and flow types. Selected physico-chemical variables: pH, dissolved oxygen content (DO), oxygen saturation (DO %), temperature (t) conductivity and total dissolved solids (TDS) were measured directly in the field using the multisonde measuring device. Organisms were identified into the family level. The results showed that differences in zonation of benthic invertebrates between seasons are more apparent than seasonal variability between pools and riffles. Spring samples followed the increasing gradient of total dissolved solids downstream with characteristic families for upper and lower stretch. The disruption of macroinvertebrates zonation was more evident in autumn samples with greatest effects in pools. Based on RDA, the distribution of families was driven by three significant variables in riffles and four in pools. Alike environmental factors of pool sequences in the middle and upper reaches were responsible for similarity in macroinvertebrate structure. In conclusion, the distribution pattern of benthic invertebrates of the natural part of the small headwater stream in terms of abundance of macroinvertebrate families followed the longitudinal zonation in spring, but in autumn were the local habitat conditions more important.

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References

  • Beisel J.N., Useglio-Polatera P., Thomas S. & Moreteau J.C. 1998a. Stream community structure in relation to spatial variation: the influence of mesohabitat characteristics. Hydrobiologia 389 (1): 73–88 DOI: 10.1023/A:1003519429979

    Article  Google Scholar 

  • Beisel J.N., Usseglio-Polatera P., Thomas S. & Moreteau J.C. 1998b. Effects of mesohabitat sampling strategy on the assessment of stream quality with benthic invertebrate assemblages. Arch. Hydrobiol. 142 (4): 493–510

    Article  Google Scholar 

  • Beisel J.N., Usseglio-Polatera P. & Moreteau J.C. 2000. The spatial heterogeneity of a river bottom: a key factor determining macroinvertebrates community. Hydrobiologia 422–423: 163–171. DOI: 10.1023/A:1017094606335

    Article  Google Scholar 

  • Beracko P. & Košel V. 2011. Life cycle and feeding habits of Dina punctata Johansson, 1927 (Erpobdellidae, Hirudinea) in a Small Carpathian Stream. Int. Rev. Hydrobiol. 96 (1): 39–47 DOI: 10.1002/iroh.201011260

    Article  Google Scholar 

  • Brooks A.J., Haeusler T., Reinfelds I. & Williams S. 2005. Hydraulic microhabitats and the distribution of macroinvertebrate assemblages in riffles. Freshwater Biol. 50 (2): 331–344 DOI: 10.1111/j.1365-2427.2004.01322.x

    Article  Google Scholar 

  • Brown A.V. & Brussock P.P. 1991. Comparisons of benthic invertebrates between riffles and pools. Hydrobiologia 220 (2): 99–108 DOI: 10.1007/BF00006542

    Article  Google Scholar 

  • Buss D.F., Baptista D.F., Nessiamian J.L. & Egler M. 2004. Substrate specificity, environmental degradation and disturbance structuring macroinvertebrate assemblages in neotropical streams. Hydrobiologia 518 (1): 179–188 DOI: 10.1023/B: HYDR.0000025067.66126.1c

    Article  Google Scholar 

  • Clarke A., Mac Nally R., Bond N. & Lake P.S. 2008. Macroinvertebrate diversity in headwater streams: a review. Freshwater Biol. 53 (9): 1707–1721 DOI: 10.1111/j.1365-2427.2008.02041.x

    Article  Google Scholar 

  • Cummins K.W. 1964. Factors limiting the microdistribution of larvae of the caddisflies Pycnopsyche lepida (Hagen) and Pycnopsyche guttifer (Walker) in a Michigan stream (Trichoptera: Limnephilidae). Ecol. Monogr. 34 (3): 271–295 DOI: 10.2307/1948503

    Article  Google Scholar 

  • Čiliak M., Novikmec M. & Svitok M. 2014. Biological zonation of the last unbound big river in the West Carpathians: reference scheme based on caddisfly communities. Knowledge and Management of Aquatic Ecosystems 415, Art. No. 04, 17 pp. DOI: 10.1051/kmae/2014028

    Google Scholar 

  • Gebler J.B. 2004. Mesoscale variability of selected aquatic invertebrate community metrics from a minimally impaired stream segment. J. N. Am. Benthol. Soc. 23 (3): 616–633 DOI: 10.1899/0887-3593(2004)023<0616:MSVOSA>2.0.CO;2

    Article  Google Scholar 

  • Gomi T., Sidle R.C. & Richardson J.S. 2002. Understanding processes and downstream linkages of headwater systems. Bioscience 52 (10): 905–916 DOI: 10.1641/00063568(2002)052[0905:UPADLO]2.0.CO;2

    Article  Google Scholar 

  • Halwas K., Church M. & Richardson J.S. 2005. Benthic assemblage variation among channel units in high-gradient streams on Vancouver Island, British Columbia. J. N. Am. Benthol. Soc. 24 (3): 478–494 DOI: doi:10.1899/02-075.1

    Article  Google Scholar 

  • Husárová-Dudíková A. 1960. Príspevok k poznaniu bentálnej fauny potoka Bystrica v Malých Karpatoch [Beitrag zur Benthosfauna im Bach Bystrica in den Klein — Karpathen]. Acta Fac. Rerum Nat. Univ. Comenianae Zool. 4 (6–8): 415–436.

    Google Scholar 

  • Hynes H.B.N. 1970. The Ecology of Running Waters. University of Toronto Press, Toronto, 555 pp. ISBN-10: 0802016898, ISBN-13: 9780802016898

    Google Scholar 

  • Hyslop E.J. & Hunte-Brown M. 2012. Longitudinal variation in the composition of the benthic macroinvertebrate fauna of a typical North coast Jamaican river. Rev. Biol. Trop. (Int. J. Trop. Biol.) 60 (1): 291–303 PMID: 22458225

    Google Scholar 

  • Illéšová D., Halgoš J. & Krno I. 2008. Black fly assemblage (Diptera, Simuliidae) of the Carpathian river: habitat characteristics, longitudinal zonation and eutrophication. Hydrobiologia 598 (1): 163–174 DOI: 10.1007/s10750-007-9148-4

    Article  Google Scholar 

  • Jiang X., Xiong J., Xie Z. & Chen Y. 2011. Longitudinal patterns of macroinvertebrate functional feeding groups in a Chinese river system: A test for river continuum concept (RCC). Quaternary International 244 (2): 289–295 DOI: 10.1016/j.quaint.2010.08.015

    Article  Google Scholar 

  • Kobayashi S. & Kagaya T. 2002. Differences in litter characteristic and macroinvertebrate assemblages between litter patches in pool and riffles in a headwater stream. Limnology 3 (1): 37–42 DOI: 10.1007/s102010200004

    Article  CAS  Google Scholar 

  • Krno I. 1984. Vplyv znečistenia na taxocenózu pošvatiek (Plecoptera) potoka Vydrica (Malé Karpaty). Acta Fac. Rerum Nat. Univ. Comenianae Zool. 27: 41–56

    Google Scholar 

  • Krno I. 1986. Stoneflies (Plecoptera) of the Bratislava forest-park (Little Carpathians). Biologia 41 (2): 115–125

    Google Scholar 

  • Krno I. & Hullová D. 1988. Influence of the water pollution on the structure and dynamics of benthos in the stream Vydrica (Small Carpathians). Biologia 43 (6): 513–526

    Google Scholar 

  • Maiolini B. & Lencioni V. 2001. Longitudinal distribution of macroinvertebrate assemblages in a glacially influenced stream system in the Italian Alps. Freshwater Biol. 46 (12): 1625–1639 DOI: 10.1046/j.1365-2427.2001.00849.x

    Article  Google Scholar 

  • Mérigoux S. & Dolédec S. 2004. Hydraulic requirements of stream communities: a case study on invertebrates. Freshwater Biol. 49 (5): 600–613 DOI: 10.1111/j.1365-2427.2004.01214.x

    Article  Google Scholar 

  • Mermillod-Blondin F., Creuse des Chatteliers M., Marmonier P. & Dole-Olivier M. J. 2000. Distribution of solutes, microbes and invertebrates in river sediments along a rifflepool-riffle sequence. Freshwater Biol. 44 (2): 255–269 DOI: 10.1046/j.1365-2427.2000.00562.x

    Article  CAS  Google Scholar 

  • Mesa L.M. 2010. Hydraulic parameters and longitudinal distribution of macroinvertebrates in a subtropical andean basin. Interciencia 35 (10): 759–764

    Google Scholar 

  • Montgomery D.R. 1999. Process domains and the river continuum. J. Am. Water Resour. Assoc. 35 (2): 397–410 DOI: 10.1111/j.1752-1688.1999.tb03598.x

    Article  Google Scholar 

  • Nautiyal P. & Mishra S. 2012. Longitudinal distribution of benthic macroinvertebrate fauna in a Vindhyan River, India. Int. J. Envir. Sci. 1 (3): 150–158

    Google Scholar 

  • Parasiewicz P. 2001. MesoHABSIM: A concept for application of instream flow models in river restoration planning. Fisheries 26 (9): 6–13 DOI: 10.1577/1548-8446(2001)026<0006:M>2.0.CO;2

    Article  Google Scholar 

  • Pardo L. & Armitage P.D. 1997. Species assemblages as descriptors of mesohabitats. Hydrobiologia 344 (1): 111–128 DOI: 10.1023/A:1002958412237

    Article  Google Scholar 

  • Poole G.C. 2002. Fluvial landscape ecology: Addressing uniqueness within the river discontinuum. Freshwater Biol. 47 (4): 641–660 DOI: 10.1046/j.1365-2427.2002.00922.x

    Article  Google Scholar 

  • Schmera D. & Erős T. 2004. Effect of riverbed morphology, stream order and season on the structural and functional attributes of caddisfly assemblages (Insecta: Trichoptera). Annal. Limnol. — Int. J. Limnol. 40 (3): 193–200 DOI: 10.1051/limn/2004017

    Article  Google Scholar 

  • StatSoft, Inc. 2010. STATISTICA Cz. Statistical software for data analysis (Version 10) http://www.statsoft.com/Products/STATISTICA-Features/Version-10

    Google Scholar 

  • Števove B. & Bulánková E. 2010. Makrozoobentos stredného úseku potoka Vydrica — porovnanie po 50 a 25 rokoch [Macro-zoobenthos of the middle part of the Vydrica stream — comparison after 50 and 25 years]. Fol. Faun. Slov. 15 (3): 19–24

    Google Scholar 

  • Ter Braak C.J.F. & Šmilauer P. 2002. CANOCO Reference Manual and CanoDraw for Windows User’s Guide: Software for Canonical Community Ordination (version 4.5). Microcomputer Power, Ithaca NY, USA, 500 pp.

    Google Scholar 

  • Thorp J.H., Thoms M.C. & Delong M.D. 2008. The Riverine Ecosystem Synthesis. 1st Edition Academic Press, Amsterdam, 232 pp. ISBN: 9780123706126

    Book  Google Scholar 

  • Tomanova S., Tedesco P.A., Campero M., Van Damme P.A., Moya N. & Oberdorf T. 2007. Longitudinal and altitudinal changes of macroinvertebrate functional feeding groups in Neotropical streams. A test of the River Continuum Concept. Fundam. Appl. Limnol., Arch. Hydrobiol. 170 (3): 233–241 DOI: 10.1127/1863-9135/2007/0170-0233

    Article  Google Scholar 

  • Turner D., Williams D.D. & Alkin-Koo M. 2008. Longitudinal changes in benthic community composition in four neotropical streams. Caribbean Journal of Science 44 (3): 380–394 DOI: doi:10.18475/cjos.v44i3.a13

    Article  Google Scholar 

  • Vannote R.L., Minshall G.W., Cummins K.W., Sedell J.R. & Cushing C.E. 1980. The river continuum concept. Can. J. Fish. Aquat. Sci. 37 (1): 130–137 DOI: 10.1139/f80-017

    Article  Google Scholar 

  • Wetzel R.G. 2001. Limnology. Lake and River Ecosystems. Third edition, Academic press, an Elsevier Science Imprint, 1006 pp. ISBN: 0-12-744760-1

    Google Scholar 

  • Wohl D.L., Wallace B.J. & Meyer J.L. 1995. Benthic macroinvertebrate community structure, function and production with respect to habitat type, reach and drainage basin in the southern Appalachians (U.S.A.). Freshwater Biol. 34 (3): 447–464 DOI: 10.1111/j.1365-2427.1995.tb00902.x

    Article  Google Scholar 

  • Wood P. 1998. Reach-scale mesohabitat variations in a small chalk steam under low flow conditions, pp. 31–38. In: Bretschko G. & Helešic J. (eds), Advances in River Bottom Ecology, Blackhaus Publishers, Leiden, 344 pp. ISBN: 90-73348-87-0

    Google Scholar 

  • Wright K.K. & Li J.L. 2002. From continua to patches: examining stream community structure over large environmental gradients. Can. J. Fish. Aquat. Sci. 59 (8): 1404–1417 DOI: 10.1139/f02-113

    Article  Google Scholar 

  • Yoshimura M. 2008. Longitudinal patterns of benthic invertebrates along a stream in the temperate forest in Japan: in relation to humans and tributaries. Insect Conserv. Diver. 1 (2): 95–107 DOI: 10.1111/j.1752-4598.2007.00012.x

    Article  Google Scholar 

  • Wentworth C.K. 1922. A scale of grade and class terms for clastic sediments. J. Geol. 30 (5): 377–392 DOI: 10.1086/622910

    Article  Google Scholar 

  • Wolman M.G. 1954. A method of sampling coarse bed material. American Geophysical Union, Transactions 35 (6): 951–956 DOI: 10.1029/TR035i006p00951

    Article  Google Scholar 

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Acknowledgements

The study was supported by the Slovak Grant Agency for Science No 1/0255/15, No 2/0020/15 and No 1/0119/16. Thanks are due to Mgr. Ján Novotný, PhD. for his help during field campaigns and two anonymous reviewers for comments on the manuscript. We wish also to thank Mgr. Michaela Partlová and Mgr. Tomáš Navara for some additional benthic invertebrates data.

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Correspondence to Milan Lehotský.

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Lehotský, M., Pastuchová, Z., Bulánková, E. et al. Testing for longitudinal zonation of macroinvertebrate fauna along a small upland headwater stream in two seasons. Biologia 71, 574–582 (2016). https://doi.org/10.1515/biolog-2016-0065

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