Kelimpahan plankton Prorocentrum sp. pada tambak intensif udang vaname (Litopenaeus vannamei)

Prorocentrum sp. abundance in the intensive aquaculture of vaname shrimp (Litopenaeus vannamei)

Authors

  • Heri Ariadi Program Studi Budidaya Perairan, Fakultas Perikanan, Universitas Pekalongan, Pekalongan, Jawa Tengah
  • M.B. Syakirin Program Studi Budidaya Perairan, Fakultas Perikanan, Universitas Pekalongan, Pekalongan, Jawa Tengah
  • Tri Yusufi Mardiana Program Studi Budidaya Perairan, Fakultas Perikanan, Universitas Pekalongan, Pekalongan, Jawa Tengah
  • Hayati Soeprapto Program Studi Budidaya Perairan, Fakultas Perikanan, Universitas Pekalongan, Pekalongan, Jawa Tengah
  • Linayati Linayati Program Studi Budidaya Perairan, Fakultas Perikanan, Universitas Pekalongan, Pekalongan, Jawa Tengah
  • Benny Diah Madusari Program Studi Budidaya Perairan, Fakultas Perikanan, Universitas Pekalongan, Pekalongan, Jawa Tengah

DOI:

https://doi.org/10.35891/agx.v14i2.3668

Keywords:

Dinoflagellata, ecosystem, abundance, Prorocentrum sp, temperature

Abstract

Introduction: Prorocentrum sp. is one of the harmful algae genera that often grows in the aquatic ecosystems of vaname shrimp (L. vannamei) ponds. The purpose of this study was to determine the abundance and dynamics of the Prorocentrum sp. during the shrimp culture period of vaname shrimp (L. vannamei) in intensive ponds. Method: This research was conducted on 4 ponds with a size of 3,200 m2 and a stocking density of 120 fish/m2. The research variables observed were water quality parameters and Prorocentrum sp. which is carried out every 7 days during the shrimp cultivation periods. Result: Based on the results of study, the water quality parameters during the shrimp culture period tend to be stable, except for the water pH parameters which have relatively high afternoon pH fluctuations. Prorocentrum sp. genera during the shrimp culture period, the plankton genus was the most dominant compared to other genera of the Dinoflagellate class. The dynamics of the Prorocentrum sp. abundance on the intensive pond, there was a significant correlation between the solubility of TAN (Total Ammonia Nitrogen) content of 74.8% and the water temperature of 83.3%. Conclusion: The abundance dynamics of Prorocentrum sp. genera during aquaculture period of vaname shrimp (L. vannamei) fluctuated dynamically following the solubility trend of TAN (Total Ammonia Nitrogen) levels and water temperature flux in the pond ecosystem

References

Acevedo-Gonzalez, A., Siqueiros Beltrones, D.A., & Lizarraga, I.G. (2010). Dinoflagellates in shrimp culture ponds under typical production conditions. Cicimar Oceanides, 25(1), 83-88.

Ariadi, H., Fadjar, M., & Mahmudi, M. (2019). The relationships between water quality parameters and the growth rate of white shrimp (Litopenaeus vannamei) in intensive ponds. Aquaculture, Aquarium, Conservation & Legislation, 12(6), 2103-2116

Ariadi, H., Mahmudi, M., & Fadjar, M. (2019). Correlation between density of vibrio bacteria with Oscillatoria sp. Abundance on Intensive Litopenaeus vannamei Shrimp Ponds. Research Journal of Life Science, 6(2), 114-129.

Ariadi, H., & Puspitasari, M.N. (2021). perbandingan pola kelayakan ekologis dan finansial usaha pada kegiatan budidaya udang vaname (L. vannamei). Fish Scientiae, 11(2), 125-138.

Ariadi, H., Wafi, A., & Madusari, B.D. (2021). Dinamika oksigen terlarut (studi kasus pada budidaya udang). Penerbit ADAB. Indramayu.

Ariadi, H., Madusari, B.D., & Mardhiyana, D. (2022). Analisis pengaruh daya dukung lingkungan budidaya terhadap laju pertumbuhan udang vaname (L. vannamei). EnviroScienteae, 18(1), 29-37.

Ariadi, H., & Mujtahidah, T. (2022). Analisis pemodelan dinamis kelimpahan bakteri Vibrio sp. pada budidaya udang vaname. Litopenaeus vannamei. Jurnal Riset akuakultur, 16(4), 255-262.

Baek, S.H., You, K., Katano, T., & Shin, K. (2010). Effects of temperature, salinity, and prey organisms on the growth of three Pfiesteria-like heterotrophic dinoflagellates. Plankton and Benthos Research, 5(1), 31-38.

Burford, M. (1997). Phytoplankton dynamics in shrimp ponds. Aquaculture Research, 28, 351-360.

Cusick, K.D., & Widder, E.A. (2020). Bioluminescence and toxicity as driving factors in harmful algal blooms: Ecological functions and genetic variability. Harmful Algae, 98, 101850.

de Souza, K.B., Jephson, T., Hasper, T.B., & Carlsson, P. (2014). Species-specific dinoflagellate vertical distribution in temperature-stratified waters. Marine Biology, 161, 1725–1734. DOI 10.1007/s00227-014-2446-2

Fahrur, M., Makmur, M., & Rachmansyah, R. (2012). Dinamika kualitas air dan hubungan kelimpahan plankton dengan kualitas air di tambak Kecamatan Bontoa, Kabupaten Maros. In Prosiding FORUM INOVASI TEKNOLOGI AKUAKULTUR (pp. 881-894).

Garate-Lizarraga, I., Gonzalez-Armas, R., Verdugo-Diaz, G., Okolodkov, Y.B., Perez-Cruz, B., & Diaz-Ortiz, J.A. (2019). Seasonality of the dinoflagellate Amphidinium cf. carterae (Dinophyceae: Amphidiniales) in Bahía de la Paz, Gulf of California. Marine Pollution Bulletin, 146, 532-541.

Graneli, E., Vidayrathna, N.K., Funari, E., Cumaranatunga, P.R.T., & Scenati, R. (2011). Can increases in temperature stimulate blooms of the toxic benthic dinoflagellate Ostreopsis ovata?. Harmful Algae, 10(2), 165-172.

Huang, Q., Olenin, S., Li, L., Sun, S., & De Troch, M. (2020). Meiobenthos as food for farmed shrimps in the earthen ponds: Implications for sustainable feeding. Aquaculture, 521, 735094.

Lemonnier, H., Lantoine, F., Courteis, C., Guillebault, D., Nezan, E., Chomerat, N., Escoubeyrou, K., Galinie, C., Blockmans, B., & Laugier, T. (2016). Dynamics of phytoplankton communities in eutrophying tropical shrimp ponds affected by vibriosis. Marine Pollution Bulletin, 110, 449-459.

Leung, P.T.Y., Yan, M., Lam, V.T.T., Yiu, S.K.F., Chen, C.Y., Murray, J.S., Harwood, D.T., Rhodes, L.L., Lam, P.K.S., & Wai, T.C. (2018). Phylogeny, morphology and toxicity of benthic dinoflagellates of the genus Fukuyoa (Goniodomataceae, Dinophyceae) from a subtropical reef ecosystem in the South China Sea. Harmful Algae, 74, 78-97.

Lim, Z.F., Luo, Z., Lee, L.K., Hii, K.S., Teng, S.T., Chan, L.L., Chomerat, N., Krock, B., Gu, H., Lim, P.T., & Leaw, C.P. (2019). Taxonomy and toxicity of Prorocentrum from Perhentian Islands (Malaysia), with a description of a non-toxigenic species Prorocentrum malayense sp. nov. Harmful Algae, 83, 95-108.

Lopez-Rosales, L., Gallardo-Rodriguez, J.J., Sanchez-Miron, A., Ceron-Garcia, M.D.C., Belarbi, E.H., Garcia_camacho, F., & Molina-Grima, E. (2014). Simultaneous effect of temperature and irradiance on growth and okadaic acid production from the marine dinoflagellate Prorocentrum belizeanum. Toxins, 6, 229-253. doi:10.3390/toxins6010229.

Moreira-Gonzalez, A.R., Fernandes, L.F., Uchida, H., Uesugi, A., Suzuki, T., Chomerat, N., Bilien, G., Pereira, T.A., & Mafra Jr, L.L. (2019). Morphology, growth, toxin production, and toxicity of cultured marine benthic dinoflagellates from Brazil and Cuba. Journal of Applied Phycology, 1-21. https://doi.org/10.1007/s10811-019-01855-0.

Nascimento, S.M., Mendes, M.C.Q., Menezez, M., Rodroguez, F., Alves-de-Souza, C., Branco, S., Riobo, P., Franco, J., Nunes, J.M.C., Huk, M., Morris, S., & Fraga, S. (2017). Morphology and phylogeny of Prorocentrum caipirignum sp. nov. (Dinophyceae), a new tropical toxic benthic dinoflagellate. Harmful Algae, 70, 73-89.

Neves, R.A.F., Fernandes, T., dos Santos, L.N., & Nascimento, S.M. (2017). Toxicity of benthic dinoflagellates on grazing, behavior and survival of the brine shrimp Artemia salina. PLoS ONE, 12(4), 1-17. https://doi.org/10.1371/journal.pome.0175168.

Nishimura, T., Uchida, H., Noguchi, R., Oikawa, H., Suzuki, T, Funaki, H., Ihara, C., Hagino, K., Arimitsu, S., Tanii, Y., Abe, S., Hashimato, K., Mimura, K., Tanaka, K., Yanagida, I., & Adachi, M. (2020). Abundance of the benthic dinoflagellate Prorocentrum and the diversity, distribution, and diarrhetic shellfish toxin production of Prorocentrum lima complex and P. caipirignum in Japan. Harmful Algae, 96, 101687.

Pantjara, B., Syafaat, M.N., & Kristanto, A.H. (2015). Effect of dynamical water quality on shrimp culture in the integrated multi trophic aquaculture (IMTA). Indonesian Aquaculture Journal, 10(1), 81-90.

Ritvo, G., Dassa, O., & Kochba, M. (2003). Salinity and pH effect on the colloidal properties of suspended particles in super intensive aquaculture systems. Aquaculture, 218, 379 – 386. https://doi.org/10.1016/S0044-8486(02)00652-X

Siagian, J., Arthana, I.W., & Pebriani, D.A.A. (2019). Tingkat kesuburan muara tukad aya, jembrana bali berdasarkan kelimpahan plankton dan ketersediaan nutrien. Current Trends in Aquatic Science, 2(2), 72-78.

Sparrow, L., Momigliano, P., Russ, G.R., & Heimann, K. (2017). Effects of temperature, salinity and composition of the dinoflagellate assemblage on the growth of Gambierdiscus carpenteri isolated from the Great Barrier Reef. Harmful Algae, 65, 52-60.

Wafi, A., Ariadi, H., Muqsith, A., Mahmudi, M., & Fadjar, M. (2021). Oxygen consumption of litopenaeus vannamei in intensive ponds based on the dynamic modeling system. Journal of Aquaculture and Fish Health, 10(1), 17-24.

Whangchai, N., Migo, V.P., Alfafara, C.G., Young, H.K., Nomura, N., & Matsumura, M. (2004). Strategies for alkalinity and pH control for ozonated shrimp pond water. Aquacultural Engineering, 30, 1–13. https://doi.org/10.1016/j.aquaeng.2002.11.001

You, S., Liu, H., Li, Z., Zhou, Y., Zhou, H., Zheng, W., Gao, Y., Li, J., & Zhang, X. (2021). Soil environment and spectra properties coregulate tomato growth, fruit quality, and yield in different colored biodegradable paper mulching during the summer season. Scientia Horticulturae, 275, 109632.

Yu, Q., Xie, J., Huang, M., Chen, C., Qian, D., Qin, J.G., Chen, L., Jia, Y., & Li, E. (2020). Growth and health responses to a long-term pH stress in Pacific white shrimp Litopenaeus vannamei. Aquaculture Reports, 16, 100280.

Yulianto, D., Muskananfola, M.R., & Purnomo, P.W. (2014). Tingkat produktivitas primer dan kelimpahan fitoplankton berdasarkan waktu yang berbeda di perairan Pulau Panjang, Jepara. Diponegoro Journal Of Maquares, 3(4), 195-200.

Zhao, Q., Liu, S., & Niu-X. (2020). Effect of water temperature on the dynamic behavior of phytoplankton–zooplankton model. Applied Mathematics and Computation, 378, 125211.

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30-09-2023

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