• Title/Summary/Keyword: Sea Bream

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Disease monitoring of wild marine fish and crustacea caught from inshore and offshore Korea in 2018 (2018년 국내 연근해 수산생물의 전염병 모니터링)

  • Hwang, Seong Don;Lee, Da-Won;Chun, Won Joo;Jeon, Hae-Ryeon;Kim, Dong Jun;Hwang, Jee-Youn;Seo, Jung-Soo;Kwon, Mun-Gyoung;Ji, Hwan-Sung;Kim, Jung Nyun;Jee, Bo-Young
    • Korean Journal of Environmental Biology
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    • v.37 no.4
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    • pp.474-482
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    • 2019
  • Disease monitoring in wild aquatic animals is necessary to obtain information about disease occurrence, disease agents, and the transmission of diseases between wild and cultured species. In this study, we monitored viral diseases in wild marine fish and crustacea caught by trawl in Korea in April and October 2018. We monitored the viral diseases in 977 fish from 39 different species and 287 crustacea from 14 different species. In fish, we collected kidney and spleen to detect viral hemorrhagic septicemia virus (VHSV), red sea bream iridovirus (RSIV), marine birnavirus (MABV), hirame rhabdovirus (HRV), and lymphocystis disease virus (LCDV). In crustacea, we monitored white spot syndrome virus (WSSV), infectious hypodermal and hematopoietic necrosis virus (IHHNV), taura syndrome virus (TSV), infectious myonecrosis virus (IMNV), yellowhead disease virus (YHDV), and white tail disease virus (WTDV) using pleopods, pereiopods, gills, muscle, and hepatopancreases. Although none of the viral diseases tested in this study were detected in the samples, these results will help disease control between aquaculture species and wild aquatic animals.

Mass Mortalities of Cultured Striped Beakperch, Oplegnathus fasciatus by Iridoviral Infection (이리도 바이러스 감염에 의한 양식 돌돔, Oplegnathus fasciatus의 대량폐사)

  • Sohn, Sang-Gyu;Choi, Dong-Lim;Do, Jeung-Wan;Hwang, Jee-Youn;Park, Jeong-Woo
    • Journal of fish pathology
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    • v.13 no.2
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    • pp.121-127
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    • 2000
  • From August to October 1998, over 60% mortality of cultured striped beakperch Oplegnathus fasciatus was occurred in net cages along the southern coast of Korea. Moribund fish showed some clinical signs of lethargic behavior, dark coloration or decoloration, severe gill anemia and enlargement of spleen. Also enlarged basophilic cells showing Feulgen -positive reaction were observed in the tissue section of spleen, kidney, liver and heart of the diseased fish. GF cells inoculated with spleen homogenate of diseased fish produced cytopathic effect of enlarged and rounded cells, therefore the causative virus was isolated from diseased fish. Striped beakperch fingerlings intraperitoneally inoculated with the causative virus ($10^4TCID_{50}$/0.1 ml) revealed symptoms similar to those of naturally infected fish and died from 7 to 14 days post injection. Transmission electron microscopy revealed that the causative virus was enveloped icosahedral particle with 120~130 nm in diameter. PCR products of the expected size (500 bp) were amplified with a primer set based on the ATPase gene of RSIV(red sea bream iridovirus) using template DNAs which were extracted from the spleen of diseased fish and GF cells inoculated with the causative virus. According to the analysis of nucleotide sequence of these PCR products, the sequence from ATPase cDNA gene of the causative virus showed 95% homology with that of RSIV. These results indicate that the mass mortality in the cultured striped beakperch was caused by the infection of iridovirus similar to RSIV.

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Statistical data on fish virus of cultured olive flounder, Paralichthys olivaceus from 2005 to 2007 (2005년부터 2007년 사이 양식 넙치, Paralichthys olivaceus를 대상으로 한 어류바이러스 검출에 대한 통계 자료)

  • Cho, Mi-Young;Park, Gyeong-Hyun;Ji, Bo-Young;Kim, Jin-Woo
    • Journal of fish pathology
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    • v.23 no.2
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    • pp.155-163
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    • 2010
  • The epidemiological study was performed to survey the prevalence of fish pathogens in cultured olive flounder, Paralichthys olivaceus from 2005 to 2007. In this study, the fish pathogens were detected from 1,528 among 2,238 fish samples collected yearly in 5 sites from February, May, August and November. Annual incidences for three years show a yearly increase and there were 60.6% in 2005, 66.7% in 2006 and 72.3% in 2007, respectively. Seasonal prevalence was 63.5% in February, 67.4% in May, 75.1% in August and 64.4% in November for three years. The detection rates of 6 viral pathogens were 35.6% in 2005, 44.6% in 2006 and 24.4% in 2007 and the peak rate was 55.4% at adult size group (above 41cm). Viral nervous necrosis virus (24.7%) has been the most predominant virus in this investigation, while much lower rates were noted in viral haemorrhagic septicemia virus (10.6%) and red sea bream iridovirus (0.9%).

Food Fraud Monitoring of Raw Materials for Commercial Seafood Products Using DNA Barcode Information (DNA Barcode를 이용한 수산가공품 원재료 진위판별)

  • Park, Eun-Ji;Kang, Ju-Yeong;Lee, Han-Cheol;Park, Min-Ji;Yang, Ji-Young;Shin, Ji-Young;Kim, Gun-Do;Kim, Jong-Oh;Seo, Yong-Bae;Kim, Jung-Beom
    • Journal of Food Hygiene and Safety
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    • v.36 no.4
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    • pp.331-341
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    • 2021
  • DNA barcode sequences of commercial seafood products, which are difficult to morphologically discriminate, were analyzed to determine cases of food fraud. The gene sequences were analyzed by amplifying the COX I (cytochrome C oxidase subunit I) gene region of mitochondrial DNA, which is mainly used for species identification. The DNA barcode sequences were compared with the gene sequence of each fish registered in the US National Center for Biotechnology. A total of 46 processed seafood products (12 Pagrus majo, 4 Oplegnathus fasciatus, 7 Dentex tumifrons, 2 Acanthopagrus schlegelii, 7 Oreochromis niloticus, 6 Branchiostegus japonicus, 8 Branchiostegus albus) were investigated. Having DNA sequence identity of more than 97% was judged as the same species. As a result of this study, no cases of forgery and alteration were detected. However, some disparities in the commercial names used in local markets and the standard names given in the Korea Food Code were found, which may cause confusion for consumers. It is therefore suggested that the standard name or scientific name be displayed on seafood product labels.

In vitro Induction of Hepatic Cytochrome P450 (CYP) with Exposure to $\beta$-naphthoflavone in Marine Fishes ($\beta$-naphthoflavone(BNF)에 in vitro 노출시킨 해산 어류의 간장 미크로좀 중 cytochrome P450 (CYP) 유도)

  • 전중균;이미희;이지선;심원준;이수형;허형택
    • Korean Journal of Environmental Biology
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    • v.21 no.1
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    • pp.26-30
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    • 2003
  • Cytochrome P450 (CYP) induction was determined in microsomes of three aquacultured fish species (Sebastes schlegeli, Paralichthys olivaceus and Pagrus major) and two wild fish species (Mugil cephalus and Stephanolepis cirrhifey) in vitro exposed to $\beta$-naphthoflavone (BNF). The microsomes of five fish were exposed to BNF (5 mM or 10 mM) in dimethylsulfoxide at $30^{\circ}C$ for 9 hr. The CYP contents in most fish increased according to exposure duration for 3 or 5 hour, and then decreased, while steady increase of CYP was observed in P. major for 9 hour. The induction of CYP contents in aquacultured fish species (207~422%) were higher than those in wild fish species (206~207%).

Application of the 18S Ribosomal DNA (rDNA) PCR-RFLP Technique for the Differential Diagnosis of Anisakidosis (고래회충유충증 감별 진단을 위한 18S ribosomal DNA (rDNA) PCR-RFLP 법 적용)

  • Kim, Sun-Mee;Cho, Min-Kyung;Yu, Hak-Sun;Cha, Hee-Jae;Ock, Mee-Sun
    • Journal of Life Science
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    • v.19 no.9
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    • pp.1328-1332
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    • 2009
  • Anisakidosis is caused by anisakid nematodes (family Anisakidae) larvae which can cause not only direct tissue damage but also a severe allergic response related to excretory-secretion products. Lots of different species of anisakid larvae, including Anisakis simplex, Contracaecum, Goezia, Pseudoterranova, and Hysterothylacium, cause the anisakidosis. But it is difficult to diagnosis the species of larvae since the morphologies of larval anisakid nematodes are almost indistinguishable. In order to diagnosis the differential infections of larval anisakid nematodes, polymerase chain reaction - restriction fragment length polymorphism (PCR-RFLP) of 18S rDNA - was conducted. Three major species of anisakid larvae including A. simplex, C.ontracaecum spp, and Goezia spp. were collected from mackerel (Scomber japonicus), mullet (Mugil cephalus), founder (Paralichthys olivaceus), eel (Astroconger myriaster) and red sea bream (Pagrus major). PCR amplified 18S rDNA from each species of anisakid larvae was digested with eight restriction enzymes including Taq I, Hinf I, Hha I, Alu I, Dde I, Hae III, Sau96 I, and Sau3A I. The original sizes of PCR amplified 18S rDNA were 2.0Kb in both anisakid larvaes and Goezia. Restrction enzymes including Hinf 1, Alu 1, Hha I, Dde 1 and Hae III cut differently and distinguished the A. simplex and Contracaecum type C'. However, Contracaecum type A showed two different restriction enzyme cutting patterns by Taq 1, Hinf I, Alu 1, and Dde 1. One of the patterns was the same as those of A. simplex, Contracaecum type C' and Goezia and the other was unique. These results suggest that PCR-RFLP pattern by Hinf 1, Alu 1, Hae I, Dde 1 and Hae III can be applied to differential diagnosis of human infection with A. simplex and Contracaecum type C'. Contracaecum type A needs further study of classification by morphological characteristics and genetic analysis.