Volume 43 Issue 2
Feb.  2024
Turn off MathJax
Article Contents
Shike Gao, Bin Xie, Chengyu Huang, Xiao Zhang, Shuo Zhang, Wenwen Yu. Catch organism assemblages along artificial reefs area and adjacent waters in Haizhou Bay[J]. Acta Oceanologica Sinica, 2024, 43(2): 34-42. doi: 10.1007/s13131-023-2226-2
Citation: Shike Gao, Bin Xie, Chengyu Huang, Xiao Zhang, Shuo Zhang, Wenwen Yu. Catch organism assemblages along artificial reefs area and adjacent waters in Haizhou Bay[J]. Acta Oceanologica Sinica, 2024, 43(2): 34-42. doi: 10.1007/s13131-023-2226-2

Catch organism assemblages along artificial reefs area and adjacent waters in Haizhou Bay

doi: 10.1007/s13131-023-2226-2
Funds:  The China Scholarship Council under contract No.202308310175; the China Postdoctoral Science Foundation under contract No.E-6005-00-0042-39; Postdoctoral Fellowship Program of CPSF under contract No. GZC20231539; the Jiangsu Haizhou Bay National Sea Ranching Demonstration Project under contract No. D–8005–18–0188; Shanghai Municipal Science and Technology Commission Local Capacity Construction Project under contract No. 21010502200; the Science Foundation for Youths of Jiangsu Province, China under contract No. BK20170438; the Science and Technology Projects in Nantong under contract No. JC2018014; the Social Livelihood Key Projects of Nantong under contract No. MS22021015.
More Information
  • Corresponding author: E-mail: s-zhang@shou.edu.cn; jshyyww@163.com
  • Received Date: 2023-02-11
  • Accepted Date: 2023-06-26
  • Publish Date: 2024-02-01
  • To better understand the community patterns mediated by connectivity in artificial reefs of coastal areas, it is necessary to understand the distribution and coexistence of organisms with artificial reefs area and adjacent waters. This study was conducted to examine main catches assemblages collected by trawls in Haizhou Bay, which included five habitats: the artificial reef area (AR), aquaculture area (AA), natural area (NA), estuary area (EA) and comprehensive effect area (CEA). The result shows that the total abundances of species in the five habitats were highly different (univariate PERMANOVA: P = 0.001, n = 24), but some species were also unique in their habitat (e.g. Scapharca subcrenata and Glossaulax didyma in AA). The body size distribution of specific species between habitats are different. For Collichthys lucidus, their body size in AR (14.63 cm ± 1.64 cm) and EA (14.3 cm ± 0.85 cm) is higher than that in NA (10.65 cm ± 1.64 cm), CEA (11.28 cm ± 1.85 cm) and AA (12.1 cm ± 0.43 cm), which indicates the potential connection from AR to EA mediated by their adult population. We concluded that artificial reefs in AR can be considered key components that have the ability to support species assemblages in adjacent habitats. This study has implications for the conservation and monitoring of species assemblages in coastal areas in terms of that artificial reefs can be applied in different stages of habitat protection implementation and in different combinations of scenarios.
  • loading
  • Ammar M S A. 2009. Coral reef restoration and artificial reef management, future and economic. The Open Environmental Engineering Journal, 2(1): 37–49, doi: 10.2174/1874829500902010037
    Anderson-Cook C M. 2007. Generalized additive models: an introduction with R. Journal of the American Statistical Association, 102(478): 760–761, doi: 10.1198/jasa.2007.s188
    Becker A, Taylor M D, Lowry M B. 2017. Monitoring of reef associated and pelagic fish communities on Australia’s first purpose built offshore artificial reef. ICES Journal of Marine Science, 74(1): 277–285, doi: 10.1093/icesjms/fsw133
    Clark S, Edwards A J. 1999. An evaluation of artificial reef structures as tools for marine habitat rehabilitation in the Maldives. Aquatic Conservation Marine and Freshwater Ecosystems, 9(1): 5–21, doi: 10.1002/(SICI)1099-0755(199901/02)9:1<5::AID-AQC330>3.0.CO;2-U
    Clarke K R, Gorley R N. 2015. Getting started with PRIMER V7. Plymouth: PRIMER–E. Dance M A, Rooker J R. 2015. Habitat- and bay-scale connectivity of sympatric fishes in an estuarine nursery. Estuarine, Coastal and Shelf Science, 167: 447–457,doi: 10.1016/j.ecss.2015.10.025
    Deng Xiaoqian, Mao Longjiang, Wu Yuling, et al. 2022. Pollution, risks, and sources of heavy metals in sediments from the urban rivers flowing into Haizhou Bay, China. Environmental Science and Pollution Research, 29(25): 38054–38065, doi: 10.1007/s11356-021-18151-5
    Dorenbosch M, Verberk W C E P, Nagelkerken I, et al. 2007. Influence of habitat configuration on connectivity between fish assemblages of Caribbean seagrass beds, mangroves and coral reefs. Marine Ecology Progress Series, 334: 103–116, doi: 10.3354/meps334103
    Folpp H R, Schilling H T, Clark G F, et al. 2020. Artificial reefs increase fish abundance in habitat‐limited estuaries. Journal of Applied Ecology, 57(9): 1752–1761, doi: 10.1111/1365-2664.13666
    Gao Aigen, Yang Junyi, Zeng Jiangning, et al. 2009. Distribution of the intertidal macrobenthos in the Haizhouwan Bay. Journal of Marine Sciences (in Chinese), 27(1): 22–29, doi: 10.3969/j.issn.1001-909X.2009.01.004
    Han Dongyan, Xue Ying, Ji Yupeng, et al. 2013. Feeding ecology of Amblychaeturichthys hexanema in Jiaozhou Bay, China. Chinese Journal of Applied Ecology (in Chinese), 24(5): 1446–1452
    Howe E, Simenstad C A, Ogston A. 2017. Detrital shadows: estuarine food web connectivity depends on fluvial influence and consumer feeding mode. Ecological Applications, 27(7): 2170–2193, doi: 10.1002/eap.1600
    Jiang Yazhou, Lin Nan, Yuan Xingwei, et al. 2016. Effects of an artificial reef system on demersal nekton assemblages in Xiangshan bay, China. Chinese Journal of Oceanology and Limnology (in Chinese), 34(1): 59–68, doi: 10.1007/s00343-015-4222-7
    Juanes F. 2007. Role of habitat in mediating mortality during the post-settlement transition phase of temperate marine fishes. Journal of Fish Biology, 70(3): 661–677, doi: 10.1111/j.1095-8649.2007.01394.x
    Keller K, Smith J A, Lowry M B, et al. 2017. Multispecies presence and connectivity around a designed artificial reef. Marine and Freshwater Research, 68(8): 1489–1500, doi: 10.1071/mf16127
    Komyakova V, Chamberlain D, Jones G P, et al. 2019. Assessing the performance of artificial reefs as substitute habitat for temperate reef fishes: Implications for reef design and placement. Science of the Total Environment, 668: 139–152, doi: 10.1016/j.scitotenv.2019.02.357
    Li Yu, Li Guqi, Yan Binlun. 2011. Heavy metal pollution in sediments of Guanhe estuary in Haizhou Bay, Lianyungang. In: 2011 International Conference on Remote Sensing, Environment and Transportation Engineering. Nanjing, China: IEEE,24–26, doi: 10.1109/RSETE.2011.5965727
    Liao Jinbao, Bearup D, Blasius B. 2017. Food web persistence in fragmented landscapes. Proceedings of the Royal Society B:Biological Sciences, 284(1859): 20170350, doi: 10.1098/rspb.2017.0350
    Lowry M B, Glasby T M, Boys C A, et al. 2014. Response of fish communities to the deployment of estuarine artificial reefs for fisheries enhancement. Fisheries Management and Ecology, 21(1): 42–56, doi: 10.1111/fme.12048
    Luo Feng, Li Ruijie. 2009. 3D water environment simulation for North Jiangsu offshore sea based on EFDC. Journal of Water Resource and Protection, 1(1): 41–47, doi: 10.4236/jwarp.2009.11007
    Maciel T R, Avigliano E, De Carvalho B M, et al. 2020. Population structure and habitat connectivity of Genidens genidens (Siluriformes) in tropical and subtropical coasts from Southwestern Atlantic. Estuarine, Coastal and Shelf Science, 242: 106839,doi: 10.1016/j.ecss.2020.106839
    McLean M, Roseman E F, Pritt J J, et al. 2015. Artificial reefs and reef restoration in the Laurentian Great Lakes. Journal of Great Lakes Research, 41(1): 1–8, doi: 10.1016/j.jglr.2014.11.021
    Moss J H, Beauchamp D A, Cross A D, et al. 2005. Evidence for size-selective mortality after the first summer of ocean growth by pink salmon. Transactions of the American Fisheries Society, 134(5): 1313–1322, doi: 10.1577/T05-054.1
    Nakamura Y, Sano M. 2004. Overlaps in habitat use of fishes between a seagrass bed and adjacent coral and sand areas at Amitori Bay, Iriomote Island, Japan: Importance of the seagrass bed as juvenile habitat. Fisheries Science, 70(5): 788–803, doi: 10.1111/j.1444-2906.2004.00872.x
    Pasquaud S, Elie P, Jeantet C, et al. 2008. A preliminary investigation of the fish food web in the Gironde estuary, France, using dietary and stable isotope analyses. Estuarine, Coastal and Shelf Science, 78(2): 267–279,doi: 10.1016/j.ecss.2007.12.014
    Perry D, Staveley T A B, Gullström M. 2018. Habitat connectivity of fish in temperate shallow-water seascapes. Frontiers in Marine Science, 4: 440, doi: 10.3389/fmars.2017.00440
    Reeds K A, Smith J A, Suthers I M, et al. 2018. An ecological halo surrounding a large offshore artificial reef: sediments, infauna, and fish foraging. Marine Environmental Research, 141: 30–38, doi: 10.1016/j.marenvres.2018.07.011
    Reis-Filho J A, Schmid K, Harvey E S, et al. 2019. Coastal fish assemblages reflect marine habitat connectivity and ontogenetic shifts in an estuary-bay-continental shelf gradient. Marine Environmental Research, 148: 57–66, doi: 10.1016/j.marenvres.2019.05.004
    Seaman Jr W, Sprague L M. 1991. Artificial Habitats for Marine and Freshwater Fisheries. San Diego:Academic Press, 16: 89–92, doi: 10.1016/B978-0-08-057117-1.50002-0
    Sherman R L, Gilliam D S, Spieler R E. 2002. Artificial reef design: void space, complexity, and attractants. ICES Journal of Marine Science, 59(S1): S196–S200, doi: 10.1006/jmsc.2001.1163
    Smith J A, Lowry M B, Champion C, et al. 2016. A designed artificial reef is among the most productive marine fish habitats: new metrics to address ‘production versus attraction’. Marine Biology, 163(9): 188, doi: 10.1007/s00227-016-2967-y
    Sogard S M. 1997. Size-selective mortality in the juvenile stage of teleost fishes: a review. Bulletin of Marine Science, 60(3): 1129–1157
    Su Wei, Xue Ying, Zhang Chongliang, et al. 2015. Spatio-seasonal patterns of fish diversity, Haizhou Bay, China. Chinese Journal of Oceanology and Limnology, 33(1): 121–134., doi: 10.1007/s00343-015-3311-y
    Sun Changqing, Guo Yaotong, Zhao Kesheng, et al. 2003. Numerical computation of tidal current for Haizhou Bay and near sea area. Marine Sciences (in Chinese), 27(10): 54–58, doi: 10.3969/j.issn.1000-3096.2003.10.014
    Sun Xiwu, Zhang Shuo, Zhao Yuqing, et al. 2010. Community structure of fish and macroinvertebrates in the artificial reef sea area of Haizhou Bay. Journal of Shanghai Ocean University (in Chinese), 19(4): 505–513
    Tessier A, Francour P, Charbonnel E, et al. 2015. Assessment of French artificial reefs: due to limitations of research, trends may be misleading. Hydrobiologia, 753(1): 1–29, doi: 10.1007/s10750-015-2213-5
    Walker S J, Schlacher T A. 2014. Limited habitat and conservation value of a young artificial reef. Biodiversity and Conservation, 23(2): 433–447, doi: 10.1007/s10531-013-0611-4
    Wang Teng, Li Yunkai, Xie Bin, et al. 2017. Ecosystem development of Haizhou bay ecological restoration area from 2003 to 2013. Journal of Ocean University of China, 16(6): 1126–1132, doi: 10.1007/s11802-017-3321-9
    Wang Xiaohua, Qiao Fangli, Lu Jing, et al. 2011. The turbidity maxima of the northern Jiangsu shoal-water in the Yellow Sea, China. Estuarine, Coastal and Shelf Science, 93(3): 202–211,doi: 10.1016/j.ecss.2010.10.020
    Whitmarsh D, Santos M N, Ramos J, et al. 2008. Marine habitat modification through artificial reefs off the Algarve (southern Portugal): an economic analysis of the fisheries and the prospects for management. Ocean & Coastal Management, 51(6): 463–468, doi: 10.1016/j.ocecoaman.2008.04.004
    Xie Fei, Pang Yong, Song Zhiyao. 2007. Three-dimensional numerical simulation of tidal current in offshore area of Haizhou Bay. Journal of Hohai University (Natural Sciences) (in Chinese), 35(6): 718–721
    Yamanaka H, Minamoto T. 2016. The use of environmental DNA of fishes as an efficient method of determining habitat connectivity. Ecological Indicators, 62: 147–153, doi: 10.1016/j.ecolind.2015.11.022
    Yang Zhi, Chen Xiaojuan, Zhao Na, et al. 2018. The effect of different habitat types and ontogenetic stages on the diet shift of a critically endangered fish species, Coreius guichenoti (Sauvage and Dabry de Thiersant, 1874). International Journal of Environmental Research and Public Health, 15(10): 2240, doi: 10.3390/ijerph15102240
    Yang Dichang, Tao Jianfeng, Zhang Changkuan. 2014. Impact of Haizhou Bay tidal flat reclamation on siltation in the river downstream sluice in linhong estuary. Port & Waterway Engineering (in Chinese), (6): 69–101
    Zhang Yijing. 2013. Spatial and temporal variations of macro-invertebrate community structure and diversity in Haizhou Bay and adjacent waters (in Chinese)[dissertation]. Qingdao: Ocean University of China,doi: 10.7666/d.D326756
    Zhang Chuchu, Li Yali, Wang Chenglong, et al. 2020. Polycyclic aromatic hydrocarbons (PAHs) in marine organisms from two fishing grounds, south yellow sea, China: bioaccumulation and human health risk assessment. Marine Pollution Bulletin, 153: 110995, doi: 10.1016/j.marpolbul.2020.110995
    Zhang Xueqing, Li Wenqing, Zhao Yang, et al. 2017. Study on tidal asymmetry in Haizhou Bay. Advances in Marine Sciences, 4(1): 20012, doi: 10.12677/AMS.2017.41005
    Zhang Shouyu, Zhang Huanjun, Jiao Junpeng, et al. 2006. Change of ecological environment of artificial reef waters in Haizhou Bay. Journal of Fisheries of China (in Chinese), 30(4): 457–480, doi: 10.3321/j.issn:1000-0615.2006.04.007
    Zhang Xiuying, Zhong Taiyang, Huang Xianjin, et al. 2013. Values of marine ecosystem services in Haizhou Bay. Acta Ecologica Sinica (in Chinese), 33(2): 640–649, doi: 10.5846/stxb201111221781
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(6)  / Tables(1)

    Article Metrics

    Article views (70) PDF downloads(1) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return