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http://dx.doi.org/10.5657/KFAS.2022.0146

Vertical Distribution of Icthyoplankton in the Southern Waters of Jeju Island During Spring  

Lee, Bo-Ram (Fisheries Resources Research Center, National Institute of Fisheries Science)
Ji, Hwan-Sung (Fisheries Resources Research Center, National Institute of Fisheries Science)
Yu, Hyo-Jae (Fisheries Resources Research Center, National Institute of Fisheries Science)
Hwang, Kang-Seok (Dokdo Fisheries Research Center, National Institute of Fisheries Science)
Kim, Doo-Nam (Division of Distant Water Fisheries Resources, National Institute of Fisheries Science)
Publication Information
Korean Journal of Fisheries and Aquatic Sciences / v.55, no.2, 2022 , pp. 146-153 More about this Journal
Abstract
The vertical distribution and abundance of icthyoplankton in the southern waters of Jeju Island during June 2020 were investigated. Fish eggs and larvae were identified using the mitochondrial DNA cytochrome c oxidase subunit I (mtDNA COI) and the 16S rRNA gene. During this period, fish eggs of 23 taxa belonging to 21 families and larvae of 27 taxa belonging to 25 families were collected. Fish eggs were located mostly from the surface to 30 m depth of the water column. Larvae were located from the surface to 80 m depth of the water column. Vertical distributions of fish eggs and larvae were influenced by oceanography conditions such as temperature, salinity, and thermocline depth. No discernible difference in mean thermocline depth was observed between day and night.
Keywords
Vertical distribution; Water column; Eggs; Larvae; Jeju Island;
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1 Fiksen O, Jorgensen C, Kristiansen T, Vikebo F and Huse G. 2007. Linking behavioural ecology and oceanography: larval behaviour determines growth, mortality and dispersal. Mar Ecol Prog Ser 347, 195-205. https://doi.org/10.3354/meps06978.   DOI
2 Hyun KH, Pang IC, Rho HK and Kim JT. 1998. Tsushima Warm current passing through Cheju-Goto channel. Bull Mar Res Inst Cheju Nat Univ 22, 91-104.
3 Roepke A. 1993. Do larvae of mesopelagic fishes in the Arabian Sea adjust their vertical distribution to physical and biological gradients?. Mar Ecol Progs Ser 101, 1969-1984. https://doi.org/10.3354/MEPS101223.   DOI
4 Ji HS, Yoo HJ, Kim JK, Kim DN, Kim ST, Kim JN, Kim HJ, Moon SY, Shin DH, Oh TY, Yoo JT, Yoon EA, Lee SK, Lee HW, Lee HB, Im YJ, Jeong JM, Choi JH and Hwang KS. 2020. Fish eggs, larvae and juveniles of Korea. Hangeul Graphics, Busan, Korea, 442.
5 Uehara D, Shoji J, Ochi Y, Yamaguchi S, Nakaguchi K, Shibata J and Tomiyama T. 2018. Diel changes in the vertical distribution of larval cutlassfish Trichiurus japonicus. J Mar Biol Assoc U K 99, 517-523. https://doi.org/10.1017/S002531541800019X.   DOI
6 Sassa C and Kawaguchi K. 2006. Occurrence patterns of mesopelagic fish larvae in Sagami Bay, Central Japan. J Oceanogr 62, 143-153. https://doi.org/10.1007/s10872-006-0040-z.   DOI
7 Smart TI, Siddon EC and Duffy-Anderson JT. 2013. Vertical distributions of the early life stages of walleye pollock (Theragra chalcogramma) in the Southeastern Bering Sea. Deep Sea Res II Top Stud Oceanogr 94, 201-210. https://doi.org/10.1016/j.dsr2.2013.03.030.   DOI
8 Thompson JD, Higgins DG and Gibson TJ. 1994. Clustal W: Improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. Nucleic acids Res 22, 4673-4680. https://doi.org/10.1093/nar/22.22.4673.   DOI
9 Coombs SH, Boyra G, Rueda LD, Uriarte A, Santos M, Conway DVP and Haliday NC. 2004. Buoyancy measurements and vertical distribution of eggs of sardine (Sardina pilchardus) and anchovy (Engraulis encrasicolus). Mar Biol 145, 959-970. https://doi.org/10.1007/s00227-004-1389-4.   DOI
10 Boehlert GW, Watson W and Sun LC. 1992. Horizontal and vertical distributions of larval fishes around an isolated oceanic island in the tropical Pacific. Deep Sea Res Part I Oceanogr Res Pap 39, 439-466. https://doi.org/10.1016/0198-0149(92)90082-5.   DOI
11 Gronkjaer P and Wieland K. 1997. Ontogenetic and environmental effects on vertical distribution of cod larvae in the Bornholm Basin, Baltic Sea. Mar Ecol Prog Ser 154, 91-105. https://doi.org/10.3354/meps154091.   DOI
12 Hall TA. 1999. BioEdit: a user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symp 41, 95-98.
13 Irisson JO, Paris CB, Guigand C and Planes S. 2010. Vertical distribution and ontogenetic ''migration'' in coral reef fish larvae. Limol Ocenogr 55, 909-919. https://doi.org/10.4319/lo.2010.55.2.0909.   DOI
14 Johnson DL and Fogarty MJ. 2013. Intercalibration of MOCNESS and Bongo nets: Assessing relative efficiency for ichthyoplankton. Prog Oceangr 108, 43-71. https://doi.org/10.1016/j.pocean.2012.10.007.   DOI
15 Jung KM, Kang S, Cha HK, Choi KH and MS Myksvoll. 2013. Buoyancy and vertical distribution of mackerel Scomber japonicus eggs in korean waters. Korean J Fish Aquat Sci 46, 957-965. https://doi.org/10.5657/KFAS.2013.0957.   DOI
16 Watanabe H, Moku M, Kawaguchi K, Ishimaru K and Ohno A. 1999. Diel vertical migration of myctophid fishes (Family Myctophidae) in the transitional waters of the western North Pacific. Fish Oceanogr 8, 115-127. https://doi.org/10.1046/j.1365-2419.1999.00103.x.   DOI
17 Watanabe T. 1970. Morphology and ecology of early stages of life in Japanese common mackerel, Scomber japonicus Houttuyn, with special reference to fluctuation of population. Bull Tokai Reg Fish Res Lab 62, 1-283.
18 Palumbi SR. 1996. Nucleic acids II: The polymerase chain reaction. In: Molecular systematics. Hilli DM, Moritz C and Mable BK, eds. Sinauer and Associates Inc., Sunderland, MA, U.S.A., 205-247.
19 Sassa C. 2001. Ecological study of myctophid fish larvae and juveniles in the western North Pacific. Ph.D. Dissertation, University of Tokyo, Tokyo, Japan.
20 Sassa C, Moser HG and Kwaguchi K. 2002. Horizontal and vertical distribution patterns of larval myctophid fishes in the Kuroshio current region. Fish Oceanogr 11, 1-10. https://doi.org/10.1046/j.1365-2419.2002.00182.x.   DOI
21 Kimura M. 1980. A simple method for estimating evolutionary rates of base substitutions through comparative studies of nucleotide sequences. J Mol Evol 16, 111-120. https://doi.org/10.1007/bf01731581.   DOI
22 Pipe PK, Coombs SH and Clarke KR. 1981. On the sample validity of the Longhurst-Hardy plankton recorder for fish eggs and larvae. J Plankton Res 3, 675-683. https://doi.org/10.1093/plankt/3.4.675.   DOI
23 Smith KA and Suthers IM. 1999. Displacement of diverse ichthyoplankton assemblages by a coastal upwelling event on the Sydney shelf. Mar Ecol Prog Ser 176, 49-62. https://doi.org/10.3354/meps176049.   DOI
24 Ward RD, Zemlak TS, Innes BH, Last PR and Hebert PDN. 2005. DNA barcoding Australia's fish species. Phil Trans R Soc B 360, 1847-1857. https://doi.org/10.1098/rstb.2005.1716.   DOI
25 Wiebe PH, Burt KH, Boyd SH and Morton AW. 1976. A multiple opening/closing net and environmental sensing system for sampling zooplankton. J Mar Res 34, 313-326.
26 Fiksen O and Giske J. 1995. Vertical distribution and population dynamics of copepods by dynamic optimization. ICES J Mar Sci 52, 483-503. https://doi.org/10.1016/1054-3139(95)80062-X.   DOI
27 Kendal AW and Naplin NA. 1981. Diel-depth distribution of summer ichthyoplankton in the Middle Atlantic Bight. Fish Bull 79, 705-726.
28 Kim J and Lo NCH. 2001. Temporal variation of seasonality of egg production and the spawning biomass of Pacific anchovy, Engraulis japonicus, in the southern waters of Korea in 1983-1994. Fish Oceanogr 10, 297-310. https://doi.org/10.1046/j.1365-2419.2001.00175.x.   DOI
29 Kim SR, Kim JJ, Stockhausen WT, Kim CS, Kang S, Cha HK, Ji HW, Jang SH and Baek HJ. 2019. Characteristics of the eggs and larval distribution and transport process in the early life stage of the chub mackerel Scomber japonicus near Korean waters. Korean J Fish Aquat Sci 52, 666-684. https://doi.org/10.5657/KFAS.2019.0666.   DOI
30 Kim JY and Choi YM. 1988. Vertical distribution of anchovy, Engraulis japonica eggs and larvae. Korean J Fish Aquat Sci 21, 139-144.
31 Lampert W, McCauley E and Manly BFJ. 2003. Trade-offs in the vertical distribution of zooplankton: ideal free distribution with costs?. Proc R Soc Lond B 270, 765-773. https://doi.org/10.1098/rspb.2002.2291.   DOI
32 Lee SJ and Go YB. 2005. Occurrence and distribution of the eggs and larvae of anchovy, Engraulis japonicus, in Jeju Strait, Korea, with descriptions of environmental characteristics. J Oceanogr 61, 603-611. https://doi.org/10.1007/s10872-005-0068-5.   DOI
33 Munk P, Kiorboe T and Christensen V. 1989. Vertical migrations of herring, Clupea harengus, larvae in relation to light and prey distribution. Environ Biol Fishes 26, 87-96. https://doi.org/10.1007/bf00001025.   DOI
34 Lee EK, Yoo JM, Kim S and Lee YC. 1996. Vertical distribution of anchovy, Engraulis japonicus larvae in the Korea Strait. Korean J Ichthyol 8, 47-56.
35 Lee SJ, Go YB and Kim BJ. 2006. Seasonal variation of species composition and distribution of fish eggs and larvae in the western part of Jeju Island, Korea. Korean J Ichthyol 18, 129-140.
36 Kristiansen T, Joergensen C, Lough RG, Vikeboe F and Fiksen O. 2009. Modeling rule-based behavior: habitat selection and the growth-survival trade-off in larval cod. Behav Ecol 20, 490-500. https://doi.org/10.1093/beheco/arp023.   DOI
37 Coombs SH. 1981. A density-gradient column for determining the specific gravity of fish eggs, with particular reference to eggs of the mackerel Scomber scombrus. Mar Biol 63, 101-106. https://doi.org/10.1007/BF00394667.   DOI
38 Lee SJ, Kim JB and Han SH. 2016. Distribution of mackerel, Scomber japonicus eggs and larvae in the coast of Jeju Island, Korea in spring. J Korean Soc Fish Technol 5, 121-129. https://doi.org/10.3796/KSFT.2016.52.2.121.   DOI
39 Lockwood SJ, Nichols JH and Dawson WA. 1981. The estimation of a mackerel (Scomber scombrus L.) spawning stock size by plankton survey. J Plankton Res 3, 217-233. https://doi.org/10.1093/ plankt/3.2.217.   DOI
40 MABIK (Marine Biodiversity Institute of Korea). 2021. National list of marine species. Namu Press, Seocheon, Korea.
41 Nissling A. 2004. Effects of temperature on egg and larval survival of cod (Gadus morhua) and sprat (Sprattus sprattus) in the Baltic Sea - implications for stock development. Hydrobiologia 514, 115-123. https://doi.org/10.1007/978-94-017-0920-0_11.   DOI
42 Okiyama M. 2014. An atlas of the early stage fishes in Japan. (2nd edition). Tokai University Press, Tokyo, Japan, 1639.
43 Park S and Chu PC. 2006. Thermal and haline fronts in the Yellow/East China Seas: Surface and subsurface seasonality comparison. J Ocengr 62, 617-638. https://doi.org/10.1007/s10872-006-0081-3.   DOI
44 Kumar S, Stecher G, Li M, Knyaz C and Tamura K. 2018. MEGA X: molecular evolutionary genetics analysis across computing platforms. Mol Biol Evol 35, 1547-1549. https://doi.org/10.1093/molbev/msy096.   DOI