Application of Radiolabeled Technique in Indonesia: A Receptor Binding Assay (RBA) Approach for Analysing Paralytic Shellfish Poisoning (PSP) Toxins in Green Mussels from Lampung Bay

U. Sugiharto, E. Rohaeti, H. Purwaningsih, A. A. Lubis, T. R. D. Larasati, D. Shintianata, F. P. Andini, S. S. Meiliastri, M Muawanah

Abstract


The Receptor Binding Assay (RBA), using radiolabeled [³H]-saxitoxin as a tracer, was applied to detect Paralytic Shellfish Poisoning (PSP) toxins in green mussels (Perna viridis) from Lampung Bay, Indonesia. Sampling was conducted during Harmful Algal Bloom (HAB) events in 2012, 2014, and 2015, which coincided with mass fish mortality linked to red tide phenomena. The RBA achieved a markedly lower detection limit (0.2 µg STX eq. /100 g) than the conventional Mouse Bio-Assay (MBA) of 40 µg STX eq. /100 g and offered greater sensitivity, specificity, and faster analysis without ethical constraints. Environmental parameters such as nutrients, water quality, and plankton community composition were also monitored to elucidate ecological drivers of toxin production. The findings represented that RBA was a reliable and efficient tool for PSP toxin monitoring, providing early-warning capability for HAB-related risks in tropical marine ecosystems.

Keywords


Harmful Algal Bloom (HAB) Radiolabeled Receptor Binding Assay (RBA) Saxitoxin Shellfish

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References


T. Sidabutar, H. Cappenberg, E. S. Srimariana, et al., Harmful algal blooms and their impact on fish mortalities in Lampung Bay: An overview, in: IOP Conf. Ser. Earth Environ. Sci. 944 (2021) 012027.

A. Irawan, Q. Hasani, and H. Yuliyanto, Jurnal Penelitian Pertanian Terapan 15 (2015) 48. (in Indonesian)

V. Aditya, A. Koswara, N. Fitriya et al., Mar. Res. Indonesia 38 (2013) 71.

Emiyati., E. Parwati, and S. Budhiman, Int. J. Remote Sens. Earth Sci. 14 (2017) 1.

R. Puspasari, Y. Sugianti, A. Rustam et al., The Outbreak of Chochlodinium Sp.: The Red Tide Maker in Thecoastal of Lampung Bay, in: IOP Conference Series: Earth and Environmental Science 176 (2018) 012021.

J. A. M. Burkholder, P. M. Glibert, H. M. Skelton, Harmful Algae 8 (2008) 77.

S. R. Ruberu, G. W. Langlois, M. Masuda et al., Food Addit. Contam. Part A Chem. Anal. Control Expo. Risk Assess 35 (2018) 144.

S. R. Ruberu, Y. G. Liu, C. T. Wong et al., J. AOAC Int. 86 (2003) 737.

S. Hall, G. Strichartz, E. Moczydlowski et al., The Saxitoxins: Sources, Chemistry, and Pharmacology, in: Marine Toxins: Origin, Structure, and Molecular Pharmacology (ACS Symposium Series, American Chemical Society (1990) 29.

T. J. Yen, M. Lolicato, R. Thomas-Tran et al., Sci. Adv. 5 (2019) 1.

M. Y. D. Bottein and R. J. Clausing, Compr. Anal. Chem. 78 (2017) 277.

J. F. Jellett, R. L. Roberts, M. V. Laycock et al., Toxicon 40 (2002) 1407.

K. Campbell, D. F. K. Rawn, B. Niedzwiadek et al., Food Addit. Contam. 28 (2011) 711.

International Atomic Energy Agency (IAEA). Detection of Harmful Algal Toxins Using the Radioligand Receptor Binding Assay: A Manual of Methods. IAEA-TECDOC-1729. IAEA, Vienna (2013) 68.

G. J. Doucette, M. M. Logan, J. S. Ramsdell et al., Toxicon 35 (1997) 625.

A. D. Turner, M. Broadwater, and F. V. Dolah, Toxicon 148 (2018) 155.

K. Srisuksawad, B. Porntepkasemsan, and C. Permtermsin, Thai. Pharm. Health Sci. J. 5 (2010) 287.

D. M. Anderson, J. M. Burkholder, W. P. Cochlan et al., Harmful Algae 8 (2008) 39.

A. Damar, F. Colijn, K. J. Hesse et al., J. Mar. Sci. Eng. 8 (2020) 1.

Q. A’yun, M. Nabilah, M.A. Asadi et al., Water Mar. Pollut. J.: PoluSea 3 (2025) 45.

S. Abassi, H. S. Kim, Q. T. N. Bui et al., Harmful Algae 127 (2023) 102473.

V. L. Trainer, R. M. Kudela, M. V. Hunter et al., Front. Clim. 2 (2020) 1.

R. A. Darmawan, J. Hidrosfir Indonesia 3 (2008) 51. (in Indonesian)

R. D. Haryuni, M. Ramli, Triningsih et al., Atom Indones. 43 (2017) 1.




DOI: https://doi.org/10.55981/aij.2026.1710



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