Shandong Key Laboratory of Environmental Processes and Health, School of Environmental Science and Engineering, Shandong University, Qingdao, Shandong 266237, P. R. China.
State Key Laboratory of Microbial Technology, Shandong University, Qingdao 266237, P. R. China.
ACS Nano. 2024 May 7;18(18):11828-11836. doi: 10.1021/acsnano.4c00739. Epub 2024 Apr 24.
As essential primary producers, cyanobacteria play a major role in global carbon and nitrogen cycles. Though the influence of nanoplastics on the carbon metabolism of cyanobacteria is well-studied, little is known about how nanoplastics affect their nitrogen metabolism, especially under environmentally relevant nitrogen concentrations. Here, we show that nitrogen forms regulated growth inhibition, nitrogen consumption, and the synthesis and release of microcystin (MC) in exposed to 10 μg/mL amino-modified polystyrene nanoplastics (PS-NH) with a particle size of 50 nm under environmentally relevant nitrogen concentrations of nitrate, ammonium, and urea. We demonstrate that PS-NH inhibit differently in nitrate, urea, and ammonium, with inhibition rates of 51.87, 39.70, and 36.69%, respectively. It is caused through the differences in impairing cell membrane integrity, disrupting redox homeostasis, and varying nitrogen transport pathways under different nitrogen forms. respond to exposure of PS-NH by utilizing additional nitrogen to boost the production of amino acids, thereby enhancing the synthesis of MC, extracellular polymeric substances, and membrane phospholipids. Our results found that the threat of nanoplastics on primary producers can be regulated by the nitrogen forms in freshwater ecosystems, contributing to a better understanding of nanoplastic risks under environmentally relevant conditions.
作为重要的初级生产者,蓝藻在全球碳氮循环中起着重要作用。尽管纳米塑料对蓝藻碳代谢的影响已经得到了充分的研究,但对于纳米塑料如何影响其氮代谢,特别是在环境相关的氮浓度下,人们知之甚少。在这里,我们表明,在环境相关的氮浓度下,氮形态调节生长抑制、氮消耗以及微囊藻毒素(MC)的合成和释放。在 10 μg/mL 氨基修饰的聚苯乙烯纳米塑料(PS-NH)的作用下,暴露于 50nm 粒径的 PS-NH 会导致 受到抑制,在硝酸盐、铵和尿素中分别抑制率为 51.87%、39.70%和 36.69%。这是由于不同氮形态下细胞膜完整性受损、氧化还原稳态破坏和氮转运途径不同所致。为了应对 PS-NH 的暴露, 会利用额外的氮来促进氨基酸的生成,从而增强 MC、胞外聚合物和膜磷脂的合成。我们的研究结果表明,纳米塑料对初级生产者的威胁可以通过淡水生态系统中的氮形态来调节,有助于更好地理解在环境相关条件下纳米塑料的风险。