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Marine and Freshwater Research Marine and Freshwater Research Society
Advances in the aquatic sciences
RESEARCH ARTICLE

Estimating trophic guilds based on isotopic niches of demersal fishes, squids and crustaceans in the East China Sea

Yohei Kawauchi https://orcid.org/0000-0001-5828-8287 A * , Takeshi Sakai B , Mari Yoda B , Aigo Takeshige A , Takahito Masubuchi B and Shintaro Gomi B
+ Author Affiliations
- Author Affiliations

A Socio-Ecological Systems Division, Fisheries Stock Assessment Center, Fisheries Resources Institute, Japan Fisheries Research and Education Agency, Yokohama, Kanagawa 236-8648, Japan.

B Nagasaki Field Station, Fisheries Stock Assessment Center, Fisheries Resources Institute, Japan Fisheries Research and Education Agency, Nagasaki, Nagasaki 851-2213, Japan.

* Correspondence to: kawauchi_yohei41@fra.go.jp

Handling Editor: Haseeb Randhawa

Marine and Freshwater Research 74(6) 544-561 https://doi.org/10.1071/MF22205
Submitted: 20 September 2022  Accepted: 23 January 2023   Published: 20 February 2023

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing

Abstract

Context: Identifying trophic guilds, i.e. species groups having similar trophic niches, is a first step in effective stock and fisheries management with consideration of multiple species interactions or ecosystems.

Aims: We evaluated isotopic niches by using stable isotope values (δ13C and δ15N) for 53 species, including commercially important demersal fishes, squids and crustaceans, from the continental shelf to the slope of the East China Sea (ECS), to segregate these species into guilds.

Methods: We inferred the isotopic niche space of each species and community metrics for guilds using Bayesian statistics.

Key results: Values of δ13C and δ15N showed different isotopic niches among species, reflecting a range of trophic positions and baseline food sources. The 53 species were segregated into 12 guilds on the basis of isotopic niche overlaps. Niche size and evenness differed among guilds; half of the guilds had smaller and less diverse niches than did the others.

Conclusions: The guilds identified for ECS demersal biota reflected similarities of taxonomy, behaviour, habitat and feeding type; niche size and evenness within each guild might have been influenced by the degree of species interaction.

Implications: These results provide important ecological information for considering effective multi-species management.

Keywords: Bayesian inference, demersal resource, East China Sea, ecological guild, interspecific competition, isotopic niche, stable isotope analysis, standard ellipse.


References

Ahlmann-Eltze, C, and Patil, I (2021). ggsignif: R package for displaying significance brackets for ‘ggplot2’. PsyArxiv , .
ggsignif: R package for displaying significance brackets for ‘ggplot2’.Crossref | GoogleScholarGoogle Scholar |

Angermeier, PL, and Karr, JR (1983). Fish communities along environmental gradients in a system of tropical streams. Environmental Biology of Fishes 9, 117–135.
Fish communities along environmental gradients in a system of tropical streams.Crossref | GoogleScholarGoogle Scholar |

Aonuma Y, Gomi S, Masubuchi T (2022) 令和3 (2021) 年度東シナ海底魚類の資源評価 我が国周辺水域の漁業資源評価 [Stock assessment and evaluation for the demersal fishes in the East China Sea (fiscal year 2021). Marine fisheries stock assessment and evaluation for Japanese waters.] FRA-SA2021-RC01-10. (Japan Fisheries Agency and Japan Fisheries Research and Education Agency) Available at http://abchan.fra.go.jp/digests2022/rule/guide2021.pdf [In Japanese]

Araya H (1967) スルメイカの資源 水産研究叢書16 [Resources of common squid, Todarodes pacificus, in the Japanese waters. Fisheries Research Series 16], Japan Fisheries Resource Conservation Association, Tokyo, Japan. [In Japanese]

Austen, DJ, Bayley, PB, and Menzel, BW (1994). Importance of the guild concept to fisheries research and management. Fisheries 19, 12–20.
Importance of the guild concept to fisheries research and management.Crossref | GoogleScholarGoogle Scholar |

Bearhop, S, Adams, CE, Waldron, S, Fuller, RA, and Macleod, H (2004). Determining trophic niche width: a novel approach using stable isotope analysis. Journal of Animal Ecology 73, 1007–1012.
Determining trophic niche width: a novel approach using stable isotope analysis.Crossref | GoogleScholarGoogle Scholar |

Bligh, EG, and Dyer, WJ (1959). A rapid method of total lipid extraction and purification. Canadian Journal of Biochemistry and Physiology 37, 911–917.
A rapid method of total lipid extraction and purification.Crossref | GoogleScholarGoogle Scholar |

Brander K (1988) Multispecies fisheries of the Irish Sea. In ‘Fish population dynamics: the implications for management’, 2nd edn. (Ed. JA Gulland) pp. 303–328. (Wiley: Chichester, UK)

Chang, N-N, Shiao, J-C, Gong, G-C, Kao, S-J, and Hsieh, C-H (2014). Stable isotope ratios reveal food source of benthic fish and crustaceans along a gradient of trophic status in the East China Sea. Continental Shelf Research 84, 23–34.
Stable isotope ratios reveal food source of benthic fish and crustaceans along a gradient of trophic status in the East China Sea.Crossref | GoogleScholarGoogle Scholar |

Chen YQ, Shen XQ (1995) Changes in the biomass of the East China Sea ecosystem. In ‘The large marine ecosystems of the Pacific rim: a marine conservation and development report: a report of a symposium’, 8–11 October 1994, Qingdao, PC China. (Eds QS Tang, K Sherman) pp. 91–112. (Island Press)

Cheng, J, Cheung, WWL, and Pitcher, TJ (2009). Mass-balance ecosystem model of the East China Sea. Progress in Natural Science 19, 1271–1280.
Mass-balance ecosystem model of the East China Sea.Crossref | GoogleScholarGoogle Scholar |

Eckrich, CA, Albeke, SE, Flaherty, EA, Bowyer, RT, and Ben-David, M (2020). rKIN: kernel-based method for estimating isotopic niche size and overlap. Journal of Animal Ecology 89, 757–771.
rKIN: kernel-based method for estimating isotopic niche size and overlap.Crossref | GoogleScholarGoogle Scholar |

Fernández-i-Marín, X (2016). ggmcmc: analysis of MCMC samples and Bayesian inference. Journal of Statistical Software 70, 1–20.
ggmcmc: analysis of MCMC samples and Bayesian inference.Crossref | GoogleScholarGoogle Scholar |

Fey, P, Letourneur, Y, and Bonnabel, S (2021). The α-minimum convex polygon as a relevant tool for isotopic niche statistics. Ecological Indicators 130, 108048.
The α-minimum convex polygon as a relevant tool for isotopic niche statistics.Crossref | GoogleScholarGoogle Scholar |

Garrison, LP, and Link, JS (2000). Dietary guild structure of the fish community in the Northeast United States continental shelf ecosystem. Marine Ecology Progress Series 202, 231–240.
Dietary guild structure of the fish community in the Northeast United States continental shelf ecosystem.Crossref | GoogleScholarGoogle Scholar |

Gartner JV Jr, Crabtree RE, Sulak KJ (1997) Feeding at depth. In ‘Fish physiology, Vol. 16. Deep-sea fishes’. (Eds WS Hoar, DJ Randall, AP Farrell) pp. 115–193. (Academic Press: San Diego, CA, USA)

Gislason, H (1999). Single and multispecies reference points for Baltic fish stocks. ICES Journal of Marine Science 56, 571–583.
Single and multispecies reference points for Baltic fish stocks.Crossref | GoogleScholarGoogle Scholar |

Hargreaves, D, Buckland, A, and Sheaves, M (2017). Trophic guild concept: factors affecting within-guild consistency for tropical estuarine fish. Marine Ecology Progress Series 564, 175–186.
Trophic guild concept: factors affecting within-guild consistency for tropical estuarine fish.Crossref | GoogleScholarGoogle Scholar |

Hette-Tronquart, N (2019). Isotopic niche is not equal to trophic niche. Ecology Letters 22, 1987–1989.
Isotopic niche is not equal to trophic niche.Crossref | GoogleScholarGoogle Scholar |

Hobson, KA, and Welch, HE (1992). Determination of trophic relationships within a high Arctic marine food web using δ13C and δ15N analysis. Marine Ecology Progress Series 84, 9–18.
Determination of trophic relationships within a high Arctic marine food web using δ13C and δ15N analysis.Crossref | GoogleScholarGoogle Scholar |

Hussey, NE, MacNeil, MA, McMeans, BC, Olin, JA, Dudley, SFJ, Cliff, G, Wintner, SP, Fennessy, ST, and Fisk, AT (2014). Rescaling the trophic structure of marine food webs. Ecology Letters 17, 239–250.
Rescaling the trophic structure of marine food webs.Crossref | GoogleScholarGoogle Scholar |

Inoue, T, Suda, Y, and Sano, M (2005). Food habits of fishes in the surf zone of a sandy beach at Sanrimatsubara, Fukuoka Prefecture, Japan. Ichthyological Research 52, 9–14.
Food habits of fishes in the surf zone of a sandy beach at Sanrimatsubara, Fukuoka Prefecture, Japan.Crossref | GoogleScholarGoogle Scholar |

International Council for the Exploration of the Sea (1997) Report of the Multispecies Assessment Working Group. ICES CM 1997/Assess:16, ICES, Copenhagen, Denmark.

Jackson, AL, Inger, R, Parnell, AC, and Bearhop, S (2011). Comparing isotopic niche widths among and within communities: SIBER – stable isotope Bayesian ellipses in R. Journal of Animal Ecology 80, 595–602.
Comparing isotopic niche widths among and within communities: SIBER – stable isotope Bayesian ellipses in R.Crossref | GoogleScholarGoogle Scholar |

Kataoka, C (2009). 以西底曳網 · 以西トロ—ル漁業の戦後史 (1) [History of the trawl fisheries in the East China Sea and Yellow Sea after the Second World War, 1.] 長崎大学水産学部研究報告 [Bulletin of the Faculty of Fisheries, Nagasaki University] 90, 19–41.

Kataoka, C (2010). 以西底曳網漁業の戦後史 (2) [History of the trawl fisheries in the East China Sea and Yellow Sea after the Second World war, 2.] 長崎大学水産学部研究報告 [Bulletin of the Faculty of Fisheries, Nagasaki University] 91, 35–59.

Kawano, M (2011). 日本海西部海域におけるキアンコウの生物特性 [Biological characteristics of Anglerfish, Lophius litulon in the Southwestern Japan Sea.] 山口県水産研究センタ—研究報告 [Bulletin of Yamaguchi Prefectural Fisheries Research Center] 9, 115–118.

Kawauchi, Y, Tanaka, H, Funamoto, T, Ito, M, Hattori, T, Nashida, K, and Yosho, I (2018). 我が国における沖合底びき網漁業および以西底びき網漁業の漁獲量と網数の推移 [Decadal changes in the fisheries catches and efforts of offshore trawl fisheries of Japan.] 水産海洋研究 [Bulletin of the Japanese Society of Fisheries Oceanography] 82, 1–13.

Kimura, S, Senou, H, Yamaguchi, A, Suzuki, T, and Shigeta, T (2018). 海産魚類レッドリストとその課題 [Outline and issues of the Red List of threatened marine fishes in Japan.] 魚類学雑誌 [Japanese Journal of Ichthyology] 65, 97–116.
海産魚類レッドリストとその課題 [Outline and issues of the Red List of threatened marine fishes in Japan.]Crossref | GoogleScholarGoogle Scholar |

Kubota H, Miyahara H, Kaga T, Okamoto S, Nishizima S, Matsukura R, Matsui H, Abo J, Takasaki K, Saito T, Inagake D (2022) 令和3 (2021) 年度スルメイカ秋季発生系群の資源評価 我が国周辺水域の漁業資源評価 [Stock assessment and evaluation for the autumn-spawning stock of Japanese common squid (fiscal year 2021). Marine fisheries stock assessment and evaluation for Japanese waters.] FRA-SA2021-SC04-02. (Japan Fisheries Agency and Japan Fisheries Research and Education Agency) Available at https://abchan.fra.go.jp/digests2021/details/202119.pdf [In Japanese]

Larocque, SM, Johnson, TB, and Fisk, AT (2021). Trophic niche overlap and abundance reveal potential impact of interspecific interactions on a reintroduced fish. Canadian Journal of Fisheries and Aquatic Sciences 78, 765–774.
Trophic niche overlap and abundance reveal potential impact of interspecific interactions on a reintroduced fish.Crossref | GoogleScholarGoogle Scholar |

Layman, CA, Arrington, DA, Montaña, CG, and Post, DM (2007). Can stable isotope ratios provide for community-wide measures of trophic structure? Ecology 88, 42–48.
Can stable isotope ratios provide for community-wide measures of trophic structure?Crossref | GoogleScholarGoogle Scholar |

Layman, CA, Araujo, MS, Boucek, R, Hammerschlag-Peyer, CM, Harrison, E, Jud, ZR, Matich, P, Rosenblatt, AE, Vaudo, JJ, Yeager, LA, Post, DM, and Bearhop, S (2012). Applying stable isotopes to examine food-web structure: an overview of analytical tools. Biological Reviews 87, 545–562.
Applying stable isotopes to examine food-web structure: an overview of analytical tools.Crossref | GoogleScholarGoogle Scholar |

Lee, SL, Chong, VC, and Then, AY-H (2019). Fish trophodynamics in tropical mudflats: a dietary and isotopic perspective. Estuaries and Coasts 42, 868–889.
Fish trophodynamics in tropical mudflats: a dietary and isotopic perspective.Crossref | GoogleScholarGoogle Scholar |

Lesser, JS, James, WR, Stallings, CD, Wilson, RM, and Nelson, JA (2020). Trophic niche size and overlap decreases with increasing ecosystem productivity. Oikos 129, 1303–1313.
Trophic niche size and overlap decreases with increasing ecosystem productivity.Crossref | GoogleScholarGoogle Scholar |

Lindegren, M, Östman, Ö, and Gårdmark, A (2011). Interacting trophic forcing and the population dynamics of herring. Ecology 92, 1407–1413.
Interacting trophic forcing and the population dynamics of herring.Crossref | GoogleScholarGoogle Scholar |

Longhurst A (2006) ‘Ecological geography of the sea’, 2nd edn. (Academic Press: London, UK)

Malek, AJ, Collie, JS, and Taylor, DL (2016). Trophic structure of a coastal fish community determined with diet and stable isotope analyses. Journal of Fish Biology 89, 1513–1536.
Trophic structure of a coastal fish community determined with diet and stable isotope analyses.Crossref | GoogleScholarGoogle Scholar |

Marshall, HH, Inger, R, Jackson, AL, McDonald, RA, Thompson, FJ, and Cant, MA (2019). Stable isotopes are quantitative indicators of trophic niche. Ecology Letters 22, 1990–1992.
Stable isotopes are quantitative indicators of trophic niche.Crossref | GoogleScholarGoogle Scholar |

Masi, MD, Ainsworth, CH, Kaplan, IC, and Schirripa, MJ (2018). Interspecific interactions may influence reef fish management strategies in the Gulf of Mexico. Marine and Coastal Fisheries 10, 24–39.
Interspecific interactions may influence reef fish management strategies in the Gulf of Mexico.Crossref | GoogleScholarGoogle Scholar |

Minagawa, M, and Wada, E (1984). Stepwise enrichment of 15N along food chains: further evidence and the relation between δ15N and animal age. Geochimica et Cosmochimica Acta 48, 1135–1140.
Stepwise enrichment of 15N along food chains: further evidence and the relation between δ15N and animal age.Crossref | GoogleScholarGoogle Scholar |

Mitamura, H, Arai, N, Mitsunaga, Y, Yokota, T, Takeuchi, H, Tsuzaki, T, and Itani, M (2005). Directed movements and diel burrow fidelity patterns of red tilefish Branchiostegus japonicus determined using ultrasonic telemetry. Fisheries Science 71, 491–498.
Directed movements and diel burrow fidelity patterns of red tilefish Branchiostegus japonicus determined using ultrasonic telemetry.Crossref | GoogleScholarGoogle Scholar |

Moore, JW, and Semmens, BX (2008). Incorporating uncertainty and prior information into stable isotope mixing models. Ecology Letters 11, 470–480.
Incorporating uncertainty and prior information into stable isotope mixing models.Crossref | GoogleScholarGoogle Scholar |

Mori, K, and Inoue, S (1982). 伊勢湾および熊野灘のマアナゴの生態 [Ecological notes on the common Japanese conger, Conger myriaster (Brevoort).] 三重大学水産学部研究報告 [Bulletin of the Faculty of Fisheries, Mie University] 9, 179–189.

Newsome, SD, Martinez del Rio, C, Bearhop, S, and Phillips, DL (2007). A niche for isotopic ecology. Frontiers in Ecology and the Environment 5, 429–436.
A niche for isotopic ecology.Crossref | GoogleScholarGoogle Scholar |

Nonaka, H (1956). ハモ属の資源生物学的研究-IIハモ Muraenesox cinereusの食性 [The fisheries biology of Muraenesox – II: on the feeding habit of Muraenesox cinereus.] 日本水産学会誌 [Nippon Suisan Gakkaishi] 22, 73–81.
ハモ属の資源生物学的研究-IIハモ Muraenesox cinereusの食性 [The fisheries biology of Muraenesox – II: on the feeding habit of Muraenesox cinereus.]Crossref | GoogleScholarGoogle Scholar |

Ohshimo, S, Tanaka, H, Nishiuchi, K, and Yasuda, T (2016). Trophic positions and predator–prey mass ratio of the pelagic food web in the East China Sea and Sea of Japan. Marine and Freshwater Research 67, 1692–1699.
Trophic positions and predator–prey mass ratio of the pelagic food web in the East China Sea and Sea of Japan.Crossref | GoogleScholarGoogle Scholar |

Okamoto S, Kaga T, Kubota H, Miyahara H, Matsui H, Abo J, Nishijima S, Setou T (2022) 令和3 (2021) 年度スルメイカ冬季発生系群の資源評価 我が国周辺水域の漁業資源評価 [Stock assessment and evaluation for the winter-spawning stock of Japanese common squid (fiscal year 2021). Marine fisheries stock assessment and evaluation for Japanese waters.] FRA-SA2021-SC04-1. (Japan Fisheries Agency and Japan Fisheries Research and Education Agency) Available at https://abchan.fra.go.jp/digests2021/details/202118.pdf [In Japanese]

Oken, KL, Holland, DS, and Punt, AE (2021). The effects of population synchrony, life history, and access constraints on benefits from fishing portfolios. Ecological Applications 31, e02307.
The effects of population synchrony, life history, and access constraints on benefits from fishing portfolios.Crossref | GoogleScholarGoogle Scholar |

Okiyama, M (1965). スルメイカTodarodes pacificus Steenstrupの卵·稚仔に関する2·3の知見 [Some consideration on the eggs and larvae of the common squid Todarodes pacificus Steenstrup. 日本海区水産研究所研究報告 [Bulletin of the Japan Sea Regional Fisheries Research Laboratory] 15, 39–53.

Parzanini, C, Parrish, CC, Hamel, J-F, and Mercier, A (2017). Trophic ecology of a deep-sea fish assemblage in the Northwest Atlantic. Marine Biology 164, 206.
Trophic ecology of a deep-sea fish assemblage in the Northwest Atlantic.Crossref | GoogleScholarGoogle Scholar |

Plummer M (2003) JAGS: a program for analysis of Bayesian graphical models using Gibbs sampling. In ‘Proceedings of the 3rd international workshop on distributed statistical computing (DSC 2003)’, 20–22 March 2003, Vienna, Austria. (Eds K Hornik, F Leisch, A Zeileis) (Austrian Association for Statistical Computing, AASC, and the R Foundation for Statistical Computing) Available at https://www.r-project.org/conferences/DSC-2003/Proceedings/Plummer.pdf

Ponce, T, Cubillos, LA, Ciancio, J, Castro, LR, and Araya, M (2021). Isotopic niche and niche overlap in benthic crustacean and demersal fish associated to the bottom trawl fishing in south-central Chile. Journal of Sea Research 173, 102059.
Isotopic niche and niche overlap in benthic crustacean and demersal fish associated to the bottom trawl fishing in south-central Chile.Crossref | GoogleScholarGoogle Scholar |

Post, DM (2002). Using stable isotopes to estimate trophic position: models, methods, and assumptions. Ecology 83, 703–718.
Using stable isotopes to estimate trophic position: models, methods, and assumptions.Crossref | GoogleScholarGoogle Scholar |

Purnell, M, Seehausen, O, and Galis, F (2012). Quantitative three-dimensional microtextural analyses of tooth wear as a tool for dietary discrimination in fishes. Journal of the Royal Society Interface 9, 2225–2233.
Quantitative three-dimensional microtextural analyses of tooth wear as a tool for dietary discrimination in fishes.Crossref | GoogleScholarGoogle Scholar |

Robertson, DR (1996). Interspecific competition controls abundance and habitat use of territorial Caribbean damselfishes. Ecology 77, 885–899.
Interspecific competition controls abundance and habitat use of territorial Caribbean damselfishes.Crossref | GoogleScholarGoogle Scholar |

Root, RB (1967). The niche exploitation pattern of the blue-gray gnatcatcher. Ecological Monographs 37, 317–350.
The niche exploitation pattern of the blue-gray gnatcatcher.Crossref | GoogleScholarGoogle Scholar |

Rosa, AL, Yamamoto, J, and Sakurai, Y (2011). Effects of environmental variability on the spawning areas, catch, and recruitment of the Japanese common squid, Todarodes pacificus (Cephalopoda: Ommastrephidae), from the 1970s to the 2000s. ICES Journal of Marine Science 68, 1114–1121.
Effects of environmental variability on the spawning areas, catch, and recruitment of the Japanese common squid, Todarodes pacificus (Cephalopoda: Ommastrephidae), from the 1970s to the 2000s.Crossref | GoogleScholarGoogle Scholar |

Rossman, S, Ostrom, PH, Gordon, F, and Zipkin, EF (2016). Beyond carbon and nitrogen: guidelines for estimating three-dimensional isotopic niche space. Ecology and Evolution 6, 2405–2413.
Beyond carbon and nitrogen: guidelines for estimating three-dimensional isotopic niche space.Crossref | GoogleScholarGoogle Scholar |

Rousseeuw, PJ (1987). Silhouettes: a graphical aid to the interpretation and validation of cluster analysis. Journal of Computational and Applied Mathematics 20, 53–65.
Silhouettes: a graphical aid to the interpretation and validation of cluster analysis.Crossref | GoogleScholarGoogle Scholar |

Sánchez-Hernández, J (2020). Taxonomy-based differences in feeding guilds of fish. Current Zoology 66, 51–56.
Taxonomy-based differences in feeding guilds of fish.Crossref | GoogleScholarGoogle Scholar |

Schoeninger, MJ, and DeNiro, MJ (1984). Nitrogen and carbon isotopic composition of bone collagen from marine and terrestrial animals. Geochimica et Cosmochimica Acta 48, 625–639.
Nitrogen and carbon isotopic composition of bone collagen from marine and terrestrial animals.Crossref | GoogleScholarGoogle Scholar |

Shimose T, Masubuchi T, Nakagawa M (2022) 令和3 (2021) 年度マダイ日本海西部·東シナ海系群の資源評価 我が国周辺水域の漁業資源評価 [Stock assessment and evaluation for the western Sea of Japan and the East China Sea stock of red seabream (fiscal year 2021). Marine fisheries stock assessment and evaluation for Japanese waters.] FRA-SA2021-RC01-11. (Japan Fisheries Agency and Japan Fisheries Research and Education Agency) Available at https://abchan.fra.go.jp/digests2021/details/202150.pdf [In Japanese]

Skagen, SK, Knight, RL, and Orians, GH (1991). Human disturbance of an avian scavenging guild. Ecological Applications 1, 215–225.
Human disturbance of an avian scavenging guild.Crossref | GoogleScholarGoogle Scholar |

Spence, MA, Thorpe, RB, Blackwell, PG, Scott, F, Southwell, R, and Blanchard, JL (2021). Quantifying uncertainty and dynamical changes in multi-species fishing mortality rates, catches and biomass by combining state-space and size-based multi-species models. Fish and Fisheries 22, 667–681.
Quantifying uncertainty and dynamical changes in multi-species fishing mortality rates, catches and biomass by combining state-space and size-based multi-species models.Crossref | GoogleScholarGoogle Scholar |

Su, S, Tang, Y, Chang, B, Zhu, W, and Chen, Y (2020). Evolution of marine fisheries management in China from 1949 to 2019: how did China get here and where does China go next? Fish and Fisheries 21, 435–452.
Evolution of marine fisheries management in China from 1949 to 2019: how did China get here and where does China go next?Crossref | GoogleScholarGoogle Scholar |

Swanson, HK, Lysy, M, Power, M, Stasko, AD, Johnson, JD, and Reist, JD (2015). A new probabilistic method for quantifying n-dimensional ecological niches and niche overlap. Ecology 96, 318–324.
A new probabilistic method for quantifying n-dimensional ecological niches and niche overlap.Crossref | GoogleScholarGoogle Scholar |

Szaro, RC (1986). Guild management: an evaluation of avian guilds as a predictive tool. Environmental Management 10, 681–688.
Guild management: an evaluation of avian guilds as a predictive tool.Crossref | GoogleScholarGoogle Scholar |

Uchikawa, K, and Kidokoro, H (2014). Feeding habits of juvenile Japanese common squid Todarodes pacificus: relationship between dietary shift and allometric growth. Fisheries Research 152, 29–36.
Feeding habits of juvenile Japanese common squid Todarodes pacificus: relationship between dietary shift and allometric growth.Crossref | GoogleScholarGoogle Scholar |

Vinson, MR, and Angradi, TR (2011). Stomach emptiness in fishes: sources of variation and study design implication. Reviews in Fisheries Science 19, 63–73.
Stomach emptiness in fishes: sources of variation and study design implication.Crossref | GoogleScholarGoogle Scholar |

Violle, C, Nemergut, DR, Pu, Z, and Jiang, L (2011). Phylogenetic limiting similarity and competitive exclusion. Ecology Letters 14, 782–787.
Phylogenetic limiting similarity and competitive exclusion.Crossref | GoogleScholarGoogle Scholar |

Wo, J, Zhang, C, Ji, Y, Xu, B, Xue, Y, and Ren, Y (2022). A multispecies TAC approach to achieving long-term sustainability in multispecies mixed fisheries. ICES Journal of Marine Science 79, 218–229.
A multispecies TAC approach to achieving long-term sustainability in multispecies mixed fisheries.Crossref | GoogleScholarGoogle Scholar |

Yamada, U (1964). 東シナ海·黄海におけるタチウオの体長別魚群の分布·回遊について [On the distribution and migration of ribbon fish, Trichiurus lepturus, in the East China and Yellow Seas by fish size.] 西海区水産研究所研究報告 [Bulletin of the Seikai Regional Fisheries Research Laboratory] 32, 137–157.

Yamada U, Tokimura M, Horikawa H, Nakabo T (2007) 東シナ海·黄海の魚類誌 [Fishes and fisheries of the East China and Yellow Seas.] (Tokai University Press: Hadano, Japan) [In Japanese]

Yano, T, Ohshimo, S, Sakai, T, and Yoda, M (2020). Filling gaps in the biology and habitat use of two spurdog sharks (Squalus japonicus and Squalus brevirostris) in the East China Sea. Marine and Freshwater Research 71, 1719–1731.
Filling gaps in the biology and habitat use of two spurdog sharks (Squalus japonicus and Squalus brevirostris) in the East China Sea.Crossref | GoogleScholarGoogle Scholar |

Yoda M, Tokimura M, Horikawa H, Yamada U (2002) 東シナ海·黄海産魚類目録およびその地方名 [A catalogue of fishes from the East China Sea and Yellow Sea with their local names.] (Seikai National Fisheries Research Institute, Fisheries Research Agency: Nagasaki, Japan) [In Japanese]

Zhang, F, Liu, F, Qin, Q, Liu, H, Cao, W, and Gao, X (2018). Diet composition and trophic guild structure of fish assemblage in headwaters of the Chishui River, a tributary of the upper Yangtze River, China. Environmental Biology of Fishes 101, 1235–1248.
Diet composition and trophic guild structure of fish assemblage in headwaters of the Chishui River, a tributary of the upper Yangtze River, China.Crossref | GoogleScholarGoogle Scholar |