Prevalence of Anisakis Larvae in Different Fish Species in Southern Albania: Five-Year Monitoring (2016–2020)
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sampling
2.2. Fish Inspection
2.3. Morphological Identification of Anasikid L3
2.4. Data Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
- Kumar Maurya, A.; Faizabad Uttar Pradesh, K.; Hari Om Verma, I.; Pandey, G.; Pal, J.; Shukla, B.; Om Verma, H. A review on role of fish in human nutrition with special emphasis to essential fatty acid. Int. J. Fish. Aquat. Stud. 2018, 6, 427–430. [Google Scholar]
- FAO—Food and Agricolture Organizations. The State of World Fisheries and Aquaculture 2018—Meeting the Sustainable 340 Development Goals; FAO: Rome, Italy; Available online: http://www.fao.org/3/i9540en/i9540en.pdf (accessed on 4 October 2021)2018.
- WHO—World Health Organization. Soil-Transmitted Helminths; World Health Organization: Geneva, Switzerland, 2012; Available online: http://www.who.int/intestinal_worms/en/ (accessed on 4 October 2021).
- Caldeira, A.J.R.; Pereira Alves, C.P.; Santos, M.J. Anisakis notification in fish: An assessment of the cases reported in the European Union rapid alert system for food and feed (RASFF) database. Food Control 2021, 124, 107913. [Google Scholar] [CrossRef]
- Orphanet Report Series Prevalence and incidence of rare diseases. Orphanet Rep. Ser. Rare Dis. Collect. 2020, 1, 1–94.
- Aibinu, I.E.; Smooker, P.M.; Lopata, A.L. Anisakis Nematodes in Fish and Shellfish- from infection to allergies. Int. J. Parasitol. Parasites Wildl. 2019, 9, 384–393. [Google Scholar] [CrossRef]
- Mattiucci, S.; Fazii, P.; De Rosa, A.; Paoletti, M.; Megna, A.S.; Glielmo, A.; De Angelis, M.; Costa, A.; Meucci, C.; Calvaruso, V.; et al. Anisakiasis and gastroallergic reactions associated with Anisakis pegreffii infection, Italy. Emerg. Infect. Dis. 2013, 19, 496. [Google Scholar] [CrossRef]
- Mattiucci, S.; Cipriani, P.; Levsen, A.; Paoletti, M.; Nascetti, G. Molecular epidemiology of anisakis and anisakiasis: An ecological and evolutionary road map. Adv. Parasitol. 2018, 99, 93–263. [Google Scholar] [CrossRef]
- Mattiucci, S.; Cipriani, P.; Paoletti, M.; Levsen, A.; Nascetti, G. Reviewing biodiversity and epidemiological aspects of anisakid nematodes from the North-east Atlantic Ocean. J. Helminthol. 2017, 91, 422–439. [Google Scholar] [CrossRef]
- Nieuwenhuizen, N.E.; Lopata, A.L. Anisakis—A food-borne parasite that triggers allergic host defences. Int. J. Parasitol. 2013, 43, 1047–1057. [Google Scholar] [CrossRef]
- Buchmann, K.; Mehrdana, F. Effects of anisakid nematodes Anisakis simplex (s.l.), Pseudoterranova decipiens (s.l.) and Contracaecum osculatum (s.l.) on fish and consumer health. Food Waterborne Parasitol. 2016, 4, 13–22. [Google Scholar] [CrossRef] [Green Version]
- Kassai, T.; Cordero Del Campillo, M.; Euzeby, J.; Gaafar, S.; Hiepe, T.; Himonas, C.A. Standardized nomenclature of animal parasitic diseases (SNOAPAD). Vet. Parasitol. 1988, 29, 299–326. [Google Scholar] [CrossRef]
- Bao, M.; Pierce, G.J.; Strachan, N.J.C.; Pascual, S.; González-Muñoz, M.; Levsen, A. Human health, legislative and socioeconomic issues caused by the fish-borne zoonotic parasite Anisakis: Challenges in risk assessment. Trends Food Sci. Technol. 2019, 86, 298–310. [Google Scholar] [CrossRef]
- Audicana, M.T.; Kennedy, M.W. Anisakis simplex: From obscure infectious worm to inducer of immune hypersensitivity. Clin. Microbiol. Rev. 2008, 21, 360–379. [Google Scholar] [CrossRef] [Green Version]
- Audicana, M.T.; Ansotegui, I.J.; De Corres, L.F.; Kennedy, M.W. Anisakis simplex: Dangerous—dead and alive? Trends Parasitol. 2002, 18, 20–25. [Google Scholar] [CrossRef]
- Serrano-Moliner, M.; Morales-Suarez-Varela, M.; Valero, M.A. Epidemiology and management of foodborne nematodiasis in the European Union, systematic review 2000–2016. Pathogens Global Health 2018, 112, 249–258. [Google Scholar] [CrossRef] [PubMed]
- Deardoff, T.L.; Overstreet, R.M. Review of Hysterothylacium and Iberingascaris (both previously Thynnascaris) (Nematoda: 372 Anisakidae) from the northern gulf of Mexico. Proc. Biol. Soc. Wash. 1980, 93, 1035–1079. [Google Scholar]
- EFSA Panel on Biological Hazards (BIOHAZ). Scientific opinion on risk assessment of parasites in fishery products. EFSA J. 2010, 8, 1543. [Google Scholar] [CrossRef]
- Kim, S.H.; Park, C.W.; Kim, S.K.; Won, S.; Park, W.K.; Kim, H.R.; Nam, K.W.; Lee, G.S. A case of anisakiasis invading the stomach and the colon at the same time after eating anchovies. Clin. Endosc. 2013, 46, 293–296. [Google Scholar] [CrossRef] [PubMed]
- Hochberg, N.S.; Hamer, D.H.; Hughes, J.M.; Wilson, M.E. Anisakidosis: Perils of the Deep. Clin. Infect. Dis. 2010, 51, 806–812. [Google Scholar] [CrossRef]
- Brokaj, M. The Impact of the Gastronomic Offer in Choosing Tourism Destination: The Case of Albania. Acad. J. Interdiscip. Stud. 2014, 3, 249–258. [Google Scholar] [CrossRef] [Green Version]
- Moravec, F. Parasitic Nematodes of Freshwater Fishes of Europe; Academia: Prague, Czech Republic; Kluwer Academic Publishers: Dordrecht, The Netherlands, 1994; Volume 385, p. 473. [Google Scholar]
- Llarena-Reino, M.; Piñeiro, C.; Antonio, J.; Outeriño, L.; Vello, C.; González, F.; Pascual, S. Optimization of the pepsin digestion method for anisakids inspection in the fishing industry. Vet. Parasitol. 2013, 191, 276–283. [Google Scholar] [CrossRef] [Green Version]
- ISS-Istituto Superiore di Sanità. European Union Reference Laboratory for Parasites. 2013. Available online: https://ec.europa.eu/food/system/files/2016-10/oc_eurl_wp_2013_parasites_in_particular_trichinella_echinococcus_and_anisakis.pdf (accessed on 4 October 2021).
- Bush, A.O.; Lafferty, K.D.; Lotz, J.M.; Shostak, A.W. Parasitology meets ecology on its own terms: Margolis et al. revisited. J. Parasitol. 1997, 83, 575–583. [Google Scholar] [CrossRef] [PubMed]
- Debenedetti, Á.L.; Madrid, E.; Trelis, M.; Codes, F.J.; Gil-Gómez, F.; Sáez-Durán, S.; Fuentes, M.V. Prevalence and risk of anisakid larvae in fresh fish frequently consumed in Spain: An overview. Fishes 2019, 4, 13. [Google Scholar] [CrossRef] [Green Version]
- Rozsa, L.; Reiczigel, J.; Majoros, G. Quantifying parasites in samples of hosts. J. Parasitol. 2000, 86, 228. [Google Scholar] [CrossRef]
- Herrador, Z.; Daschner, Á.; Perteguer, M.J.; Benito, A. Epidemiological scenario of anisakidosis in Spain based on associated hospitalizations: The tip of the iceberg. Clin. Infect. Dis. 2019, 69, 69–76. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bao, M.; Pierce, G.J.; Pascual, S.; González-Munõz, M.; Mattiucci, S.; Mladineo, I.; Cipriani, P.; Bušelić, I.; Strachan, N.J.C. Assessing the risk of an emerging zoonosis of worldwide concern: Anisakiasis. Sci. Rep. 2017, 7, 1–17. [Google Scholar] [CrossRef] [Green Version]
- Sánchez-Alonso, I.; Carballeda-Sangiao, N.; González-Muñoz, M.; Navas, A.; Arcos, S.C.; Mendizábal, A.; Tejada, M.; Careche, M. Pathogenic potential of Anisakis L3 after freezing in domestic freezers. Food Control 2018, 84, 61–69. [Google Scholar] [CrossRef]
- Brutti, A.; Rovere, P.; Cavallero, S.; D’Amelio, S.; Danesi, P.; Arcangeli, G. Inactivation of Anisakis simplex larvae in raw fish using high hydrostatic pressure treatments. Food Control 2010, 21, 331–333. [Google Scholar] [CrossRef]
- Tejada, M.; Olivares, F.; de las Heras, C.; Careche, M.; Solas, M.T.; García, M.L.; Fernandez, A.; Mendizábal, A.; Navas, A.; Rodríguez-Mahillo, A.I.; et al. Antigenicity of Anisakis simplex s.s. L3 in parasitized fish after heating conditions used in the canning processing. J. Sci. Food Agric. 2015, 95, 922–927. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Keser, R.; Bray, R.A.; Oguz, M.C.; Çelen, S.; Erdoǧan, S.; Doǧuturk, S.; Aklanoğlu, G.; Marti, B. Helminth parasites of digestive tract of some teleost fish caught in the Dardanelles at Çanakkale, Turkey. Helminthologia 2007, 44, 217–221. [Google Scholar] [CrossRef] [Green Version]
- Abdel-Ghaffar, F.; Abdel-Gaber, R.; Bashtar, A.R.; Morsy, K.; Mehlhorn, H.; Al Quraishy, S.; Saleh, R. Hysterothylacium 412 aduncum (Nematoda, Anisakidae) with a new host record from the common sole Solea solea (Soleidae) and its role as a 413 biological indicator of pollution. Parasitol. Res. 2015, 114, 513–522. [Google Scholar] [CrossRef]
- Crotta, M.; Ferrari, N.; Guitian, J. Qualitative risk assessment of introduction of anisakid larvae in Atlantic salmon (Salmo salar) farms and commercialization of products infected with viable nematodes. Food Control 2016, 69, 275–284. [Google Scholar] [CrossRef] [Green Version]
- Skov, J.; Kania, P.W.; Olsen, M.M.; Lauridsen, J.H.; Buchmann, K. Nematode infections of maricultured and wild fishes in Danish waters: A comparative study. Aquaculture 2009, 298, 24–28. [Google Scholar] [CrossRef]
- Marty, G.D. Anisakid larva in the viscera of a farmed Atlantic salmon (Salmo salar). Aquaculture 2008, 279, 209–210. [Google Scholar] [CrossRef]
- Chaligiannis, I.; Lalle, M.; Pozio, E.; Sotiraki, S. Anisakidae infection in fish of the Aegean Sea. Vet. Parasitol. 2012, 184, 362–366. [Google Scholar] [CrossRef] [PubMed]
- Mladineo, I.; Poljak, V. Ecology and genetic structure of zoonotic Anisakis spp. from adriatic commercial fish species. Appl. Environ. Microbiol. 2014, 80, 1281–1290. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Pekmezci, G.Z.; Onuk, E.E.; Bolukbas, C.S.; Yardimci, B.; Gurler, A.T.; Acici, M.; Umur, S. Molecular identification of Anisakis species (Nematoda: Anisakidae) from marine fishes collected in Turkish waters. Vet. Parasitol. 2014, 201, 82–94. [Google Scholar] [CrossRef]
- Piras, M.C.; Tedde, T.; Garippa, G.; Virgilio, S.; Sanna, D.; Farjallah, S.; Merella, P. Molecular and epidemiological data on Anisakis spp. (Nematoda: Anisakidae) in commercial fish caught off northern Sardinia (western Mediterranean Sea). Vet. Parasitol. 2014, 203, 237–240. [Google Scholar] [CrossRef]
- Abattouy, N.; López, A.V.; Maldonado, J.L.; Benajiba, M.H.; Martín-Sánchez, J. Epidemiology and molecular identification of Anisakis pegreffii (Nematoda: Anisakidae) in the horse mackerel Trachurus trachurus from northern Morocco. J. Helminthol. 2014, 88, 257–263. [Google Scholar] [CrossRef]
- Costa, G.; Pontes, T.; Mattiucci, S.; D’Amélio, S. The occurrence and infection dynamics of Anisakis larvae in the black-scabbard fish, Aphanopus carbo, chub mackerel, Scomber japonicus, and oceanic horse mackerel, Trachurus picturatus from Madeira, Portugal. J. Helminthol. 2003, 77, 163–166. [Google Scholar] [CrossRef]
- Cabral, H.N.; Murta, A.G. The diet of blue whiting, hake, horse mackerel and mackerel off Portugal. J. Appl. Ichthyol. 2002, 18, 14–23. [Google Scholar] [CrossRef]
- Manfredi, M.T.; Crosa, G.; Galli, P.; Ganduglia, S. Distribution of Anisakis simplex in fish caught in the Ligurian Sea. Parasitol. Res. 2000, 86, 551–553. [Google Scholar] [CrossRef]
- Tantanasi, J.; Diakou, A.; Tamvakis, A.; Batjakas, I.E. Anisakis spp. burden in Trachurus trachurus. Helminthologia 2012, 49, 16–20. [Google Scholar] [CrossRef] [Green Version]
- Goffredo, E.; Azzarito, L.; Di Taranto, P.; Mancini, M.E.; Normanno, G.; Didonna, A.; Faleo, S.; Occhiochiuso, G.; D’Attoli, L.; Pedarra, C.; et al. Prevalence of anisakid parasites in fish collected from Apulia region (Italy) and quantification of nematode larvae in flesh. Int. J. Food Microbiol. 2019, 292, 159–170. [Google Scholar] [CrossRef] [PubMed]
- Levsen, A.; Cipriani, P.; Mattiucci, S.; Gay, M.; Hastie, L.C.; MacKenzie, K.; Pierce, G.J.; Svanevik, C.S.; Højgaard, D.P.; Nascetti, G.; et al. Anisakis species composition and infection characteristics in Atlantic mackerel, Scomber scombrus, from major European fishing grounds—Reflecting changing fish host distribution and migration pattern. Fish. Res. 2018, 202, 112–121. [Google Scholar] [CrossRef]
- Madrid, E.; Gil, F.; García, M.; Debenedetti, Á.L.; Trelis, M.; Fuentes, M.V. Potential risk analysis of human anisakiasis through the consumption of mackerel, Scomber scombrus, sold at Spanish supermarkets. Food Control 2016, 66, 300–305. [Google Scholar] [CrossRef]
- Cipriani, P.; Sbaraglia, G.L.; Palomba, M.; Giulietti, L.; Bellisario, B.; Bušelić, I.; Mladineo, I.; Cheleschi, R.; Nascetti, G.; Mattiucci, S. Anisakis pegreffii (Nematoda: Anisakidae) in European anchovy Engraulis encrasicolus from the Mediterranean Sea: Fishing ground as a predictor of parasite distribution. Fish. Res. 2018, 202, 59–68. [Google Scholar] [CrossRef]
- Fiovaranti, M.L.; Caffara, M.; Florio, D.; Gustinelli, A.; Marcer, F.; Gradassi, M.; Gavaudan, S.; Paolini, A.; Alessi, A.; Bisceglia, D. Anisakisasis in anchovies (Engraulis encrasicolus) and sardines (Sardina pilchardus) caught along the Adriatic Coast. Parassitologia 2006, 48, 285. [Google Scholar]
- Cipriani, P.; Acerra, V.; Bellisario, B.; Sbaraglia, G.L.; Cheleschi, R.; Nascetti, G.; Mattiucci, S. Larval migration of the zoonotic parasite Anisakis pegreffii (Nematoda: Anisakidae) in European anchovy, Engraulis encrasicolus: Implications to seafood safety. Food Control 2016, 59, 148–157. [Google Scholar] [CrossRef] [Green Version]
- Mladineo, I.; Šegvić, T.; Petrić, M. Do captive conditions favor shedding of parasites in the reared Atlantic bluefin tuna (Thunnus thynnus)? Parasitol. Int. 2011, 60, 25–33. [Google Scholar] [CrossRef] [PubMed]
- Suzuki, J.; Murata, R.; Hosaka, M.; Araki, J. Risk factors for human Anisakis infection and association between the geographic origins of Scomber japonicus and anisakid nematodes. Int. J. Food Microbiol. 2010, 137, 88–93. [Google Scholar] [CrossRef]
- Chen, H.-X.; Zhang, L.-P.; Gibson, D.I.; Lü, L.; Xu, Z.; Li, H.-T.; Ju, H.-D.; Li, L. Detection of ascaridoid nematode parasites in the important marine food-fish Conger myriaster (Brevoort) (Anguilliformes: Congridae) from the Zhoushan Fishery, China. Parasites Vectors 2018, 11, 1–12. [Google Scholar] [CrossRef] [Green Version]
- Karl, H.; Baumann, F.; Ostermeyer, U.; Kuhn, T.; Klimpel, S. Anisakis simplex (s.s.) larvae in wild Alaska salmon: No indication of post-mortem migration from viscera into flesh. Dis. Aquat. Organ. 2011, 94, 201–209. [Google Scholar] [CrossRef] [PubMed]
- Smith, J.W. The abundance of Anisakis simplex L3 in the body-cavity and flesh of marine teleosts. Int. J. Parasitol. 1984, 14, 491–495. [Google Scholar] [CrossRef]
- Karl, H. Nematode larvae in fish on the German market 20 years of consumer related research. Arch. Lebensmittelhyg. 2008, 59, 107–116. [Google Scholar]
Fish Species | No. | Prevalence | Mean Abundance | 95% CI for Mean Abundance | Mean Intensity | Range | Total Number of Larvae |
---|---|---|---|---|---|---|---|
Dicentrarchus labrax | 109 | 9.17% | 1.19 | 0.38–2.01 | 13.00 | 1–23 | 130 |
Engraulis encrasicolus | 112 | 50.00% | 73.42 | 58.39–88.44 | 146.84 | 72–255 | 8223 |
Merluccius merluccius | 112 | 26.79% | 4.57 | 2.93–6.21 | 17.07 | 5–35 | 512 |
Mullus barbatus | 100 | 25.00% | 4.78 | 2.84–6.72 | 19.12 | 2–41 | 478 |
Sardinella aurita | 114 | 10.53% | 0.92 | 0.38–1.46 | 8.75 | 3–15 | 105 |
Scomber japonicus | 108 | 74.07% | 188.24 | 156.53–219.95 | 254.12 | 32–635 | 20,330 |
Scomber scombrus | 100 | 68.00% | 249.82 | 202.13–297.51 | 367.38 | 34–792 | 24,982 |
Solea vulgaris | 100 | 0.00% | 0.00 | 0.00–0.00 | - | - | - |
Sparus aurata | 110 | 4.55% | 0.84 | 0.08–1.59 | 18.40 | 10–24 | 92 |
Trachurus trachurus | 110 | 68.18% | 135.51 | 107.89–163.12 | 198.75 | 30–639 | 14,906 |
Fish Species | Prevalence | Mean Abundance with 95% CI | ||
---|---|---|---|---|
Viscera | Flesh | Viscera | Flesh | |
Dicentrarchus labrax | 9.17% | 7.34% | 1.01 (0.33–1.69) | 0.18 (0.03–0.34) |
Engraulis encrasicolus | 50.00% | 45.54% | 59.79 (47.21–72.36) | 13.63 (9.20–18.06) |
Merluccius merluccius | 26.79% | 18.75% | 4.02 (2.59–5.45) | 0.55 (0.31–0.80) |
Mullus barbatus | 25.00% | 19.00% | 3.76 (2.29–5.23) | 1.02 (0.49–1.55) |
Sardinella aurita | 10.53% | 0.00% | 0.92 (0.38–1.46) | 0.00 |
Scomber japonicus | 74.07% | 65.74% | 179.78 (149.63–209.92) | 8.46 (6.71–10.21) |
Scomber scombrus | 68.00% | 61.00% | 242.16 (195.91–288.41) | 7.66 (5.77–9.55) |
Solea vulgaris | 0.00% | 0.00% | 0.00 | 0.00 |
Spara aurata | 4.55% | 3.64% | 0.66 (0.08–1.25) | 0.17 (0.00–0.35) |
Trachurus trachurus | 68.18% | 59.09% | 129.97 (103.90–156.05) | 5.54 (3.56–7.51) |
Fish Species | Season of Capture | p Value | |||
---|---|---|---|---|---|
Spring (n = 268) | Summer (n = 278) | Autumn (n = 267) | Winter (n = 262) | ||
Dicentrarchus labrax | 11.11 | 14.29 | 7.41 | 3.70 | 0.477 |
Engraulis encrasicolus | 57.14 | 53.33 | 46.43 | 42.31 | 0.684 |
Merluccius merluccius | 28.57 | 32.14 | 25.00 | 21.43 | 0.819 |
Mullus barbatus | 24.00 | 32.00 | 24.00 | 20.00 | 0.809 |
Sardinella aurita | 14.29 a | 13.79 a | 13.79 a | 0.00 b | 0.003 |
Scomber japonicus | 77.78 | 85.19 | 70.37 | 62.96 | 0.237 |
Scomber scombrus | 69.2 | 70.00 | 66.67 | 65.22 | 0.982 |
Solea vulgaris | 0.00 | 0.00 | 0.0 | 0.00 | - |
Spara aurata | 7.41 | 7.14 | 3.57 | 0.00 | 0.148 |
Trachurus trachurus | 74.07 | 72.41 | 62.96 | 62.96 | 0.713 |
Overall | 36.6 a | 38.8 a | 31.1 ab | 27.5 b | 0.019 |
Fish Species | Season of Capture | p Value | |||
---|---|---|---|---|---|
Spring (n = 268) | Summer (n = 278) | Autumn (n = 267) | Winter (n = 262) | ||
Dicentrarchus labrax | 1.81 (0.00–3.89) | 2.50 (0.00–5.00) | 0.37 (0.00–0.90) | 0.04 (0.00–0.11) | 0.491 |
Engraulis encrasicolus | 95.36 a (61.38–129.33) | 94.43 a (59.04–129.82) | 55.96 ab (31.18–80.75) | 44.35 b (21.60–67.09) | 0.030 |
Merluccius merluccius | 6.46 (2.25–10.68) | 6.29 (2.42–10.15) | 3.86 (0.62–7.10) | 1.68 (0.37–2.89) | 0.504 |
Mullus Barbatus | 5.52 (1.27–9.77) | 9.12 (3.28–14.96) | 3.48 (0.66–6.30) | 1.00 (0.08–1.92) | 0.430 |
Sardinella aurita | 1.00 (0.02–1.98) | 1.79 (0.05–3.54) | 0.86 (0.00–1.76) | 0.00 (0.00–0.00) | 0.226 |
Scomber japonicus | 223.41 ab (156.42–290.39) | 276.33 a (206.20–346.47) | 154.07 bc (92.72–215.42) | 99.15 c (58.11–140.18) | 0.001 |
Scomber scombrus | 331.92 a (222.84–441.00) | 353.03 a (259.81–446.25) | 211.33 ab (129.81–292.85) | 57.52 b (33.21–81.83) | 0.001 |
Solea vulgaris | 0.00 | 0.00 | 0.00 | 0.00 | - |
Sparus aurata | 1.41 (0.00–3.43) | 1.07 (0.00–2.69) | 0.86 (0.00–2.62) | 0.00 (0.00–0.00) | 0.529 |
Trachurus trachurus | 160.30 (89.30–231.29) | 118.21 (70.53–165.88) | 128.33 (69.00–187.66) | 136.48 (85.09–187.88) | 0.888 |
Overall | 82.44 a (63.02–101.86) | 89.46 a (69.46–109.00) | 52.00 ab (38.47–65.53) | 34.01 b (24.91–43.11) | 0.002 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ozuni, E.; Vodica, A.; Castrica, M.; Brecchia, G.; Curone, G.; Agradi, S.; Miraglia, D.; Menchetti, L.; Balzaretti, C.M.; Andoni, E. Prevalence of Anisakis Larvae in Different Fish Species in Southern Albania: Five-Year Monitoring (2016–2020). Appl. Sci. 2021, 11, 11528. https://doi.org/10.3390/app112311528
Ozuni E, Vodica A, Castrica M, Brecchia G, Curone G, Agradi S, Miraglia D, Menchetti L, Balzaretti CM, Andoni E. Prevalence of Anisakis Larvae in Different Fish Species in Southern Albania: Five-Year Monitoring (2016–2020). Applied Sciences. 2021; 11(23):11528. https://doi.org/10.3390/app112311528
Chicago/Turabian StyleOzuni, Enkeleda, Ani Vodica, Marta Castrica, Gabriele Brecchia, Giulio Curone, Stella Agradi, Dino Miraglia, Laura Menchetti, Claudia M. Balzaretti, and Egon Andoni. 2021. "Prevalence of Anisakis Larvae in Different Fish Species in Southern Albania: Five-Year Monitoring (2016–2020)" Applied Sciences 11, no. 23: 11528. https://doi.org/10.3390/app112311528
APA StyleOzuni, E., Vodica, A., Castrica, M., Brecchia, G., Curone, G., Agradi, S., Miraglia, D., Menchetti, L., Balzaretti, C. M., & Andoni, E. (2021). Prevalence of Anisakis Larvae in Different Fish Species in Southern Albania: Five-Year Monitoring (2016–2020). Applied Sciences, 11(23), 11528. https://doi.org/10.3390/app112311528