IJMS_2026v16n2

International Journal of Marine Science, 2026, Vol.16, No.2, 95-110 http://www.aquapublisher.com/index.php/ijms 109 Lee H.M., Kim H.J., Park K.I., and Choi K.S., 2020, Enhanced growth, gonad maturation, and low-level parasite infection in juvenile Manila clam RudiTapes philippinarum cultured in subtidal cages on the south coast of Korea, Aquaculture, 526: 735410. https://doi.org/10.1016/j.aquaculture.2020.735410 Li S., Chen Y., Zhang D., Liu H., Chai X., Yao S., Xu W., and He J., 2024, Influencing mechanism of farming clams on the CO₂ flux from aquaculture ponds: insights from ecosystem carbon metabolism, Agriculture, Ecosystems and Environment, 374: 109166. https://doi.org/10.1016/j.agee.2024.109166 Li X., Wang J., Zhang Z., Wen J., Li Y., Zhang H., Lu P., and Chen L., 2025, Comparison of the burrowing ability of different groups of Manila clams (RudiTapes philippinarum), Biology, 14(6): 689. https://doi.org/10.3390/biology14060689 Liu X., Zhang M., Wang Z., and Wang B., 2021, Assessment of bivalve carrying capacities and seeding densities in aquaculture areas of Jiaozhou Bay, China, using ecological modeling and food balance, Journal of the World Aquaculture Society, 52(6): 1178-1193. https://doi.org/10.1111/jwas.12820 Maia F., Gaspar M.B., and Barroso C.M., 2025, Comparative study of RudiTapes philippinarum and Ruditapes decussatus in Ria de Aveiro, Portugal: invasive species management and marine resource conservation, Estuarine, Coastal and Shelf Science, 314: 109123. https://doi.org/10.1016/j.ecss.2025.109123 Martini A., Napolitano R., Capoccioni F., Martinoli M., Tonachella N., Aguiari L., Piva P., Rossetti E., and Pulcini D., 2024, Prefacing the challenge - assessment of the environmental efficiency of Manila clam (RudiTapes philippinarum) production based on hatchery-produced and wild seed, Aquaculture, 595: 741474. https://doi.org/10.1016/j.aquaculture.2024.741474 MeliàP., De Leo G., and Gatto M., 2004, Density and temperature-dependence of vital rates in the Manila clam Tapes philippinarum: a stochastic demographic model, Marine Ecology Progress Series, 272: 153-164. https://doi.org/10.3354/meps272153 Nagothu S.K., Sri P.B., Anitha G., Vincent S., and Kumar O., 2024, Advancing aquaculture: fuzzy logic-based water quality monitoring and maintenance system for precision aquaculture, Aquaculture International, 33(1): 32. https://doi.org/10.1007/s10499-024-01701-2 NgôT.T.T., Nguyễn N.C., and LêQ.N., 2025, Ảnh hưởng của mật độ đến sinh trưởng, tỷ lệ sống và năng suất của vọp (Geloina coaxans) trong các môhình ao nuôi khác nhau, Tạp chíKhoa học Nông nghiệp Việt Nam, 13(2): 192-199. https://doi.org/10.31817/tckhnnvn.2025.23.11.03 Parvathy N., Sulekha B.T., and Sheeba S., 2023, Proximate composition with dimensional relationships in Meretrix casta and Villorita cyprinoides from Neendakara part of Ashtamudi Lake, Kerala, India, Ecology, Environment and Conservation, 29(S2): 11-18. https://doi.org/10.53550/eec.2023.v29isp2.011 Ping X., Zhang H., Jiang Y.Z., Ling J.Z., Sun P., and Tang B., 2023, Sediment properties and benthic fauna associated with stock enhancement and farming of marine bivalve populations in Xiangshan Bay, China, Aquaculture Research, 2023(1): 4729267. https://doi.org/10.1155/2023/4729267 Song H., Liu X., Chen K., Zhang X., Hong X., Liu Y., Chu J., and Zhang Z., 2025, Ecological carrying capacity of shellfish aquaculture: an ecosystem-quality approach in the Changshan Archipelago, China, Aquaculture Reports, 45: 103227. https://doi.org/10.1016/j.aqrep.2025.103227 Song J., Wang Y., Huang L., Peng Y., Tan K., and Tan K., 2024, The effects of bivalve aquaculture on carbon storage in the water column and sediment of aquaculture areas, Science of the Total Environment, 937: 173538. https://doi.org/10.1016/j.scitotenv.2024.173538 Toba M., Kakino J., Tada K., Kobayashi Y., and Tsuchie H., 2020, Production of asari (Manila) clams RudiTapes philippinarum during the period of harvest decrease in the 2000s in the Banzu tidal area, Tokyo Bay, Aquatic Living Resources, 33: 14. https://doi.org/10.1051/alr/2020016 Wei D., Zheng S., Wang S., Yan J., Liu Z., Zhou L., Wu B., and Sun X., 2023, Genetic and haplotype diversity of Manila clam RudiTapes philippinarum in different regions of China based on three molecular markers, Animals, 13(18): 2886. https://doi.org/10.3390/ani13182886 Yan X.-W., Zhang G., and Yang F., 2006, Effects of diet, stocking density, and environmental factors on growth, survival, and metamorphosis of Manila clam RudiTapes philippinarum larvae, Aquaculture, 253(1-4): 350-358. https://doi.org/10.1016/j.aquaculture.2005.07.030 Yao S., Liu H., Zhang D., Chen Y., Li S., and He J., 2025, The potential influence of clams on water quality improvement in mariculture ponds: a comprehensive assessment using single-factor and water quality index (WQI) methods, Aquaculture International, 33(2): 143. https://doi.org/10.1007/s10499-025-01829-9 Zanella L., Pastres R., Freguglia M., Stoppa S., and Palazzi R., 2025, Effects of water flow rate and stocking density on the early pre-fattening of Manila clams (RudiTapes philippinarum) farmed in a North Adriatic “Valle da Pesca” (Italy), Aquaculture International, 33(3): 161. https://doi.org/10.1007/s10499-025-01827-x Zanella L., Rova G., Morin M., Martellato M., Rossetti E., and Palazzi R., 2026, Improving pre-fattening protocols for Manila clam (RudiTapes philippinarum): a technical comparison of upwelling and flat-bottom rearing systems, Aquaculture Journal, 6(2): 12. https://doi.org/10.3390/aquacj6020012

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