Mytilicola orientalis

Springer Science and Business Media LLC - Tập 30 - Trang 2741-2749 - 2022
Yannick Borkens1, Paul Koppe2
1College of Public Health, Medical and Veterinary Science, James Cook University, Townsville, Australia
2College of Science and Engineering, James Cook University, Townsville, Australia

Tóm tắt

Neozoa are invasive species that enter faunal communities as new species. Not infrequently, they pose a threat to local ecosystems. Climate change could further promote these developments or favor neozoa. Thus, they represent a relevant threat in the future. One of these neozoa is the copepod parasite Mytilicola orientalis. This parasite originates from Asia and infects a wide variety of bivalves like mussels and oysters. However, as an invasive species, it can be found more and more frequently in Europe, especially in the North and Baltic Seas. There, M. orientalis poses a real threat to mussels in aquaculture and thus also to the local economy.

Tài liệu tham khảo

Alaska Center for Conservation Science (2017) Bering Sea Marine Invasive Species Assessment. Alaska Center for Conservation Science. https://accs.uaa.alaska.edu/wp-content/uploads/mytilicolaorientalis.pdf. Accessed 15 June 2022 Bernanke J, Köhler HR (2009) The impact of environmental chemicals on wildlife vertebrates. Rev Environ Contam Toxicol 198:1–47 Bernard FR (2011) The parasitic copepod Mytilicola orientalis in British Columbia Bivalves. J Fish Res Board Can 26(1):190–191 Borrelli P, Robinson DA, Panagos P, Lugato E, Yang JE, Alewell C, Wuepper D, Montanarella L, Ballabio C (2020) Land use and climate change impacts on global soil erosion by water (2015–2070). Proc Natl Acad Sci U S A 117(36):21994–22001 Bradley W, Siebert AE (1978) Infection of Ostrea lurida and Mytilus edulis by the parasitic copepod Mytilicola orientalis in San Francisco Bay, California. Veliger 21:131–134 Campbell SA (1970) The occurrence and effects of Mytilicola intestinalis in Mytilus edulis. Mar Biol 5:89–95 de Carvalho NM, Madureira AR, Pintado ME (2020) The potential of insects as food sources – a review. Crit Rev Food Sci Nutr 60(21):3642–3652 Davey JT, Gee JM (1976) The occurrence of Mytilicola intestinalis Steuer, an intestinal copepod parasite of Mytilus, in the south-west of England. J Mar Biolog Assoc 56:85–94 Davey JT, Gee JM (1988) Mytilicola intestinalis, a copepod parasite of blue mussels. Am Fish Soc Spec Publ 18:64–73 Dethlefsen V (1972) Zur Parasitologie der Miesmuschel (Mytilus edulis L., 1758). Ber Deut Wiss Komm Meeresforsch 22:344–371 Dollfus RP (1951) Le copépod Mytilicola intestinalis A. Steuer peut-il être la cause d´une maladie épidémique des moules? Revue Travail Official (scient tech) Pêches maritimes 17(2):81–84 Elhassan M, Wendin K, Olsson V, Langton M (2019) Quality aspects of insects as food-nutritional, sensory, and related concepts. Foods 8(3):95 Elsner NO, Jacobsen S, Thieltges DW, Reise K (2011) Alien parasitic copepods in mussels and oysters of the Wadden Sea. Helgol Mar Res 65:299–307 Figueras AJ, Jardon CF, Caldas JR (1991) Diseases and parasites of rafted mussels (Mytilus galloprovincialis Lmk): preliminary results. Aquaculture 99:17–33 Ferguson-Cradler G (2021) The overfishing problem: natural and social categories in early twentieth-century fisheries science. J Hist Biol 54(4):719–738 Gee JM, Davey JT (1986) Experimental studies on the infestation of Mytilus edulis (L.) by Mytilicola intestinalis Steuer (Copepod, Cyclopoidea). J Cons Int Explor Mer 42:265–271 Goedknegt MA, Thieltges DW, van der Meer J, Wegener KM, Luttikhuizen PC (2018) Cryptic invasion of a parasitic copepod: compromised identification when morphologically similar invaders co-occur in invaded ecosystems. PLoS ONE 13(3):e0193354 Haberl H, Erb KH, Krausmann F, Bondeau A, Lauk C, Müller C, Plutzar C, Steinberger JK (2011) Global bioenergy potentials from agricultural land in 2050: sensitivity to climate change, diets and yields. Biomass Bioenergy 35(12):4753–4769 Hockley AR (1951) On the biology of Mytilicola intestinalis (Steuer). J Mar Biolog Assoc 30(2):223–232 Kobayashi M, Msangi S, Batka M, Vannuccini S, Dey MM, Anderson JL (2015) Fish to 2030: the role and opportunity for aquaculture. Aquac Econ Manag 19(3):282–300 Kovačić I, Pavičić-Hamer D, Pfannkuchen M, Usich M (2017) Mytilus galloprovincialis (Lamarck, 1819) as host of Mytilicola orientalis (Mori, 1935) in the northern Adriatic Sea: presence and effect. Aquacult Int 25(1):211–221 Kovak E, Blaustein-Rejto D, Qaim M (2022) Genetically modified crops support climate change mitigation. Trends Plant Sci. https://doi.org/10.1016/j.tplants.2022.01.004 Lucas J (2015) Aquaculture. Curr Biol 25(22):R1064–R1065 Maulu S, Hasimuna OJ, Haambiya LH, Monde C, Musuka CG, Makorwa TH, Munganga BP, Phiri KJ, Nsekanabo JD (2021) Climate change effects on aquaculture production: sustainability implications, mitigation, and adaptions. Front Sustain Food Syst 5:609097 Mennerat A, Nilsen F, Ebert D, Skorping A (2010) Intensive farming: evolutionary implications for parasites and pathogens. Evol Biol 37(2):59–67 Meyer PF, Mann H (1950) Beiträge zur Epidemiologie und Physiologie des parasitischen Copepoden Mytilicola intestinalis. Arch Fischereiwiss 2(3–4):120–134 Meyer FP (1991) Aquaculture disease and health management. J Anim Sci 69(10):4201–4208 Moore MN, Lowe DM, Gee JM (1978) Histopathological effects induced in Mytilus edulis by Mytilicola intestinalis and the histochemistry of the copepod intestinal cells. J Cons Int Explor Mer 38:6–11 Morro B, Davidson K, Adams TP, Falconer L, Holloway M, Dale A, Aleynik D, Thies PR, Khalid F, Hardwick J, Smith H, Gillibrand PA, Rey-Planellas S (2021) Offshore aquaculture of finfish: big expectations at sea. Rev Aquac 14(2):791–815 Mori T (1935) Mytilicola orientalis, a new species of parasitic copepod. Zool Soc Jpn 47(564):687–693 Naylor RL, Hardy RW, Buschmann AH, Bush SR, Cao L, Klinger DH, Little DC, Lubchenco J, Shumway SE, Troell M (2021) A 20-year retrospective review of global aquaculture. Nature 591:551–563 Paisley LG, Ariel E, Lyngstad T, Jónsson G, Vennerström P, Hellström A, Østergaard P (2010) An overview of aquaculture in the Nordic countries. J World Aquac Soc 41(1):1–17 Paterson S, Vogwill T, Buckling A, Benmayor R, Spiers AJ, Thomson NR, Quail M, Smith F, Walker D, Libberton B, Fenton A, Hall N, Brockhurst MA (2010) Antagonistic coevolution accelerates molecular evolution. Nature 464(7286):275–278 Rb (2015) Viren, Pilze, Parasiten: Vierbeiner als Risiko. Heilberufe 67(7–8):24–25 Reise K (1998) Pacific oysters invade mussel beds in the European Wadden Sea. Senckenb Marit 28(4/6):167–175 Rocha CP, Cabral HN, Marques JC, Gonçalves AMM (2022) A global overview of aquaculture food production with a focus on the activity´s development in transitional systems – the case study of a South European Country (Portugal). J Mar Sci Eng 10:417 Robinson TB, Martin N, Loureiro TG, Matikinca P, Robertson MP (2020) Double trouble: the implications of climate change for biological invasions. NeoBiota 62:463–487 Robledo JAF, Santarém MM, Figueras A (1994) Parasite loads of rafted blue mussels (Mytilus galloprovincialis) in Spain with special reference to the copepod, Mytilicola intestinalis. Aquaculture 127:287–302 Shim WJ, Thompson RC (2015) Microplastic in the ocean. Arch Environ Contam Toxicol 69(3):265–268 van Stenten J, Smith MA, Engle CR (2020) Impacts of COVID-19 on U.S. aquaculture, aquaponics, and allied businesses. J World Aquac Soc 51(3):574–577 Steuer A (1902) Mittheilungen aus der k. k. zoologischen Station in Triest No. 6. 7. Mytilicola intestinalis n. gen. n. sp. aus dem Darme von Mytilus galloprovincialis Lam. (Vorläufige Mittheilung.). Zool Anz 25(659–684):635–637 Stock JH (1993) Copepoda (Crustacea) associated with commercial and non-commercial Bivalvia in the East Scheldt. The Netherlands Bijdr Dierkd 63(1):61–64 Tacon AGJ (2019) Trends in global aquaculture and aquafeed production: 2000–2017. Rev Fish Sci Aquac 28(1):43–56 Tengs T, Rimstad E (2017) Emerging pathogens in the fish farming industry and sequencing-based pathogen discovery. Dev Comp Immunol 75:109–119 Thieltges DW, Hussel B, Hermann J, Jensen KT, Krakau M, Taraschewski H, Reise K (2008) Parasites in the northern Wadden Sea: a conservative ecosystem component over 4 decades. Helgol Mar Res 62:37–47 Villalba A, Mourelle SG, Carballal MJ, López C (1997) Symbionts and diseases of farmed mussels Mytilus galloprovincialis throughout the culture process in the Rías of Galicia (NW Spain). Dis Aquat Organ 31:127–139 Williams CS (1967) The parasitism of young mussels by Mytilicola intestinalis. J Nat Hist 1:299–301 Yazdi SK, Shakouri B (2010) The effects of climate change on aquaculture. Int J Environ Sci 1(5):378–382 Yılmaz H, Genc E, Mine EÜ, Yıldırım S, Keskin E (2020) Molecular identification of parasites isolated from Mediterranean mussel (Mytilus galloprovincialis Lamarck 1819) specimens. Ecological Life Sciences 15(2):61–71