Academic literature on the topic 'Non-indigenous decapod'

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Journal articles on the topic "Non-indigenous decapod"

1

Spiridonov, Vassily A., and Anna K. Zalota. "Understanding and forecasting dispersal of non-indigenous marine decapods (Crustacea: Decapoda) in East European and North Asian waters." Journal of the Marine Biological Association of the United Kingdom 97, no. 3 (2017): 591–611. http://dx.doi.org/10.1017/s0025315417000169.

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A survey of publications and collections databases reveals a pattern of non-indigenous decapods distribution in the 13 seas around Russia and adjacent countries. No alien species were reported from Russian territorial waters and exclusive economic zone in the Japan, Okhotsk, west Bering and most of the Siberian shelf Seas. From the seas and their basins in East Europe, 13 alien species have been recorded, with seven of these yet to become established. Established or commonly occurring species can be categorized as: ‘global invaders’ (Chinese mitten crab,Eriocheir sinensisin the White, Baltic,
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2

James, J., J. James, F. Slater, J. James, F. Slater, and J. Cable. "A.L.I.E.N. databases: addressing the lack in establishment of non-natives databases." Crustaceana 87, no. 10 (2014): 1192–99. http://dx.doi.org/10.1163/15685403-00003329.

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Among the principal threats to the conservation of global biodiversity are biological invasions. To monitor their range expansion and develop control programmes, comprehensive, national species’ databases need to be created and maintained. This is particularly important for invaders that are known to cause broad and significant ecological problems, such as decapod crustaceans, in particular crayfish. Initiatives such as the U.K. National Biodiversity Network have recognised the need to promote data exchange and are a valuable resource for collating individual survey records. However, for these
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3

Kvach, Yuriy, Halyna Gabrielczak, Anastasiia Lepekha, Mikhail O. Son, and Sergii Khutornoi. "The Chesapeake blue crab, Callinectes sapidus Rathbun, 1896: new finding, origin, and further spread in the Ukrainian part of the Black Sea." Aquatic Invasions 20, no. (2) (2025): 199–214. https://doi.org/10.3391/ai.2025.20.2.154614.

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Biological invasions pose a significant threat to aquatic ecosystems, and the spread of uncontrolled non-indigenous species can have detrimental effects on biodiversity, ecosystem processes, and economic activities. The Chesapeake blue crab, <i>Callinectes sapidus</i>, native to the western Atlantic Ocean, is non-indigenous in the Black Sea region. This study presents novel findings on its presence and breeding in the Black Sea, particularly in North-Western part within the territorial confines of Ukraine. The study provides evidence of successful reproduction by a female blue crab with eggs i
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Panteleeva, Ninel N., Alexander G. Dvoretsky, and Vladimir G. Dvoretsky. "First Record of Sarsia tubulosa (M. Sars, 1835) (Cnidaria, Hydrozoa) on Red King Crabs in the Coastal Barents Sea." Diversity 16, no. 1 (2024): 72. http://dx.doi.org/10.3390/d16010072.

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Sarsia tubulosa (M. Sars, 1835), a colonial hydrozoan of the family Corynidae, is common in the Barents Sea. This study provides new evidence that the species acts as an epibiont of the red king crab Paralithodes camtschaticus, a non-indigenous but remarkably abundant decapod crustacean of immense commercial value in the coastal regions of the sea. This finding adds to the current collection of identified epibionts on the red king crab and highlights the prospect of ongoing symbiotic relationships between the crab and the regional fauna. We also provide photographic evidence of S. tubulosa col
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Tummon Flynn, Paula, Keegan McCarvill, K. Devon Lynn, and Pedro A. Quijón. "The positive effect of coexisting ecosystem engineers: a unique seaweed-mussel association provides refuge for native mud crabs against a non-indigenous predator." PeerJ 8 (December 21, 2020): e10540. http://dx.doi.org/10.7717/peerj.10540.

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In marine sedimentary bottoms, mussels and macroalgae have long been recognized as important autogenic engineers that create habitat and modify abiotic conditions. The structural complexity added by bivalves and macroalgae may also mediate intraguild predation amongst marine decapod crustaceans. While spatial distributions of these ecosystem engineers frequently overlap, there is limited understanding of compounded effects when more than one engineer is present. Here we demonstrate that the coexistence of two ecosystem engineers may create habitat valuable for the survival of a small native sp
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Dauvin, Jean-Claude, Maël Deloor, Jean-Philippe Pezy, Aurore Raoux, Pascal Claquin, and Aurélie Foveau. "Four-Year Temporal Study of an Intertidal Artificial Structure in the English Channel." Journal of Marine Science and Engineering 9, no. 11 (2021): 1174. http://dx.doi.org/10.3390/jmse9111174.

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An experimental artificial structure was deployed in March 2014 on the intertidal zone of the Bay of Seine (eastern part of the English Channel), at intervals of one year until April 2018, i.e., from February 2015 onwards, two blocks were collected in April each year. This study provides an inventory of sessile and motile invertebrates living on the artificial hard-bottom and describes the stages of colonization and succession during the four-year study. A total of 84 taxa were identified including 13 sessile and 71 motile taxa. For the sessile fauna, only two taxa Balanus crenatus and Mytilus
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7

Cioni, Astra, and Francesca Gherardi. "Agonism and interference competition in freshwater decapods." Behaviour 141, no. 10 (2004): 1297–324. http://dx.doi.org/10.1163/1568539042729702.

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AbstractWe tested the hypothesis that agonistic behavior and interference competition induce species replacements in freshwater decapods. Our model organisms were two crayfish (the indigenous Austropotamobius italicus and the non-indigenous and invasive Procambarus clarkii) and the indigenous river crab Potamon fluviatile. A first experiment was aimed at analyzing the agonistic behavior of similarly-sized males in pairs of the three species combinations. Records were taken for an hour per day during five consecutive days of combats. Results showed that P. fluviatile was dominant over the two c
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8

Mcdermott, John J. "Ectosymbionts of the non-indigenous Asian shore crab, Hemigrapsus sanguineus (Decapoda: Varunidae), in the western north Atlantic, and a search for its parasites." Journal of Natural History 41, no. 37-40 (2010): 2379–96. https://doi.org/10.1080/00222930701630691.

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Mcdermott, John J. (2007): Ectosymbionts of the non-indigenous Asian shore crab, Hemigrapsus sanguineus (Decapoda: Varunidae), in the western north Atlantic, and a search for its parasites. Journal of Natural History 41 (37-40): 2379-2396, DOI: 10.1080/00222930701630691, URL: http://dx.doi.org/10.1080/00222930701630691
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9

Breen, E., and A. Metaxas. "Overlap in the distributions between indigenous and non-indigenous decapods in a brackish micro-tidal system." Aquatic Biology 8 (December 28, 2009): 1–13. http://dx.doi.org/10.3354/ab00195.

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10

Pipitone, Carlo, Arturo Zenone, Fabio Badalamenti, and Giovanni D'Anna. "First record of the blue crab Callinectes sapidus (Crustacea, Decapoda, Portunidae), a non-indigenous species in the central/southern Tyrrhenian Sea." Acta Adriatica 61, no. 1 (2020): 101–6. http://dx.doi.org/10.32582/aa.61.1.8.

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Four individuals of the non-indigenous blue crab, Callinectes sapidus Rathbun, 1896 (Crustacea, Decapoda, Portunidae) were collected during commercial trammel net operations in fall 2019 and winter 2020 along the coast of NW Sicily. The crabs were collected in very shallow waters on a sandy bottom close to the coast. Although blue crabs are now widespread along most eastern, western and northern Mediterranean coasts, this is the first record of this species from the central and southern Tyrrhenian Sea
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