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Nanoplastics promote microcystin synthesis and release from cyanobacterial Microcystis aeruginosa.

Figshare 2025 Score: 48 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
L-J Feng (16356756), X-D Sun (21913961), F-P Zhu (21913964), Y Feng (7936262), J-L Duan (21913967), F Xiao (13452135), X-Y Li (21913970), Y Shi (7709924), Q Wang (4703689), J-W Sun (21913973), X-Y Liu (13697761), J-Q Liu (21913976), L-L Zhou (21913979), S-G Wang (21913982), Z Ding (9040559), H Tian (9300791), TS Galloway (15803111), X-Z Yuan (21913985)

Summary

Researchers showed that amino-modified polystyrene nanoplastics (PS-NH2) stimulate microcystin synthesis and release in the bloom-forming cyanobacterium Microcystis aeruginosa by inhibiting photosystem II and increasing membrane permeability. This is the first direct evidence linking nanoplastics to enhanced cyanotoxin production in freshwater blooms.

Polymers
Body Systems
Study Type Environmental

Although the fate of nanoplastics (<100 nm) in freshwater systems is increasingly well studied, much less is known about its potential threats to cyanobacterial blooms, the ultimate phenomenon of eutrophication occurrence worldwide. Previous studies have evaluated the consequences of nanoplastics increasing the membrane permeability of microbes, however, there is no direct evidence for interactions between nanoplastics and microcystin; intracellular hepatotoxins are produced by some genera of cyanobacteria. Here, we show that the amino-modified polystyrene nanoplastics (PS-NH2) promote microcystin synthesis and release from Microcystis aeruginosa, a dominant species causing cyanobacterial blooms, even without the change of coloration. We demonstrate that PS-NH2 inhibits photosystem II efficiency, reduces organic substance synthesis, and induces oxidative stress, enhancing the synthesis of microcystin. Furthermore, PS-NH2 promotes the extracellular release of microcystin from M. aeruginosa via transporter protein upregulation and impaired cell membrane integrity. Our findings propose that the presence of nanoplastics in freshwater ecosystems might enhance the threat of eutrophication to aquatic ecology and human health.

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