Marine phycotoxins repurposed as bioresource: their antiviral potentials and molecular mechanisms in aquatic organism

Cheng Cao , Baofu Ma , Pau Loke Show , Huu Hao Ngo , Xiaozhe Fu , Ningqiu Li , Jin Zhou

Marine Life Science & Technology ›› 2026, Vol. 8 ›› Issue (3) : 727 -741.

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Marine Life Science & Technology ›› 2026, Vol. 8 ›› Issue (3) :727 -741. DOI: 10.1007/s42995-026-00412-2
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Marine phycotoxins repurposed as bioresource: their antiviral potentials and molecular mechanisms in aquatic organism
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Abstract

Marine phycotoxins produced by microalgae have traditionally been regarded as water pollutants or hazardous substances. Most studies have focused on their toxicity, with limited exploration of their therapeutic potential. In this study, we demonstrated that domoic acid (DA) exerts antiviral roles against largemouth bass ranavirus (LMBV). Mechanistic analyses revealed that DA disrupts the extracellular structure of LMBV and inhibits intracellular viral assembly. This may be attributed to the ATP depletion caused by the suppression of mitochondrial oxidative phosphorylation. In vivo, DA treatment reduced fish mortality by 12.5% and significantly alleviated pathological lesions in splenic and telencephalic tissues, thereby further confirming its protective effect. Additionally, transcriptomic analysis of liver tissue showed that DA enhanced digestive enzyme activity and activated the complement immune response in LMBV-infected fish. This study uncovers previously unappreciated antiviral activity of marine phycotoxin–DA and elucidates its underlying mechanisms preliminary, laying a foundation for developing marine phycotoxins as antiviral lead compounds.

Keywords

Marine phycotoxins / LMBV / Antiviral potential / Virus assembly / ATP / Immune

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Cheng Cao, Baofu Ma, Pau Loke Show, Huu Hao Ngo, Xiaozhe Fu, Ningqiu Li, Jin Zhou. Marine phycotoxins repurposed as bioresource: their antiviral potentials and molecular mechanisms in aquatic organism. Marine Life Science & Technology, 2026, 8 (3) : 727-741 DOI:10.1007/s42995-026-00412-2

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