The influence of habitat structure on abundance and taxonomic richness of epibenthic harpacticoid copepods in seagrass beds of Port Phillip Bay, Australia was investigated using artificial seagrass plants. The density and length of artificial seagrass plants was manipulated at three sites over two sampling times. Results for artificial plants were also compared with controls without plants. The presence of habitat structure in the form of artificial seagrass resulted in a significant increase in harpacticoid abundance at all sites and taxonomic richness at one site. In terms of artificial seagrass treatments, higher blade density resulted in higher harpacticoid abundance, but blade length and surface area had no significant effect. Taxonomic richness did not vary amongst artificial seagrass treatments. At the site where taxonomic richness was increased in the presence of artificial seagrass, rarefaction showed that the result was consistent with a passive increase related to increased sample size. In contrast, although abundances in artificial seagrass were significantly higher than in controls at the other two sites, the taxonomic richness was similar to controls, suggesting that the full range of taxa available was represented in control samples. This study shows that structural aspects of complexity can have importance beyond the simple provision of complexity in the form of increased surface area of habitat, and may depend on the scale examined. Further, the study emphasises the importance of spatial and temporal replication of experiments to give generality to results.
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http://dx.doi.org/10.1007/s00442-002-0911-y | DOI Listing |
Environ Evid
December 2024
Duke University Marine Lab, 135 Marine Lab Road, Beaufort, NC, 28516, USA.
Ecol Appl
January 2025
Department of Ecology and Evolutionary Biology, University of Michigan, Ann Arbor, Michigan, USA.
Sci Rep
November 2024
Université des Antilles, Équipe Biologie de la Mangrove, Institut de Systématique, Évolution, Biodiversité, ISYEB, UMR 7205, UFR SEN, 97100, Pointe-à-Pitre, France.
Since 2011, holopelagic Sargassum have been massively stranding in the coastal environments of the Caribbean Islands inducing damages to coastal ecosystems, public health and the economy. To limit the risks associated with Sargassum stranding, floating barriers with nets can be placed in front of sensitive areas, to divert Sargassum away from the coast. To evaluate the potential transfer of metallic trace element (MTE) from Sargassum to adjacent marine life, seagrasses (Halophila stipulacea, Thalassia testidinum) and urchin (Lytechinus variegatus) were sampled, both close (0 m) and far (200 m) from barriers installed during 4 years in two bays: Baie Cayol (BC) and Cap Est (CE) in Martinique (FWI).
View Article and Find Full Text PDFSci Total Environ
December 2024
Departamento de Ciencias del Mar y Biología Aplicada, Universidad de Alicante, Alicante, Spain; Laboratory of Aquatic Environmental Research, HUB AMBIENTAL UPLA, Universidad de Playa Ancha, Valparaíso, Chile; Departamento de Ciencias y Geografía, Facultad de Ciencias Naturales y Exactas, Universidad de Playa Ancha, Valparaíso, Chile. Electronic address:
Seagrasses have adapted to a submerged lifestyle in seawater through a complex set of evolutionary processes. However, they show sensitivity to increases in natural salinity levels such as those commonly found in discharges of desalination plants, which have exponentially grown due to water scarcity in highly populated temperate areas, such as the Mediterranean basin. This study assessed the effects of brine-derived hypersalinity on the Mediterranean seagrass Posidonia oceanica, focusing on the metabolic responses of shoot apical meristems (SAMs).
View Article and Find Full Text PDFEnviron Monit Assess
October 2024
Keifuku Consultant Co., Ltd, 11-2-1 Tada, Obama, Fukui, 917-0026, Japan.
The threat of declining seaweed beds has been a concern around the world. Seagrass and seaweed (brown algae) beds are essential habitats supporting fisheries. However, approximately 22% of these habitats have been lost in Japan due to increased coastal landfill sites and ports.
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