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Effects of Engineered Nanoparticles on the Assembly of Exopolymeric Substances from Phytoplankton

机译:工程纳米颗粒对浮游植物中外聚物质组装的影响

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摘要

The unique properties of engineered nanoparticles (ENs) that make their industrial applications so attractive simultaneously raise questions regarding their environmental safety. ENs exhibit behaviors different from bulk materials with identical chemical compositions. Though the nanotoxicity of ENs has been studied intensively, their unintended environmental impacts remain largely unknown. Herein we report experimental results of EN interactions with exopolymeric substances (EPS) from three marine phytoplankton species: Amphora sp., Ankistrodesmus angustus and Phaeodactylum tricornutum. EPS are polysaccharide-rich anionic colloid polymers released by various microorganisms that can assemble into microgels, possibly by means of hydrophobic and ionic mechanisms. Polystyrene nanoparticles (23 nm) were used in our study as model ENs. The effects of ENs on EPS assembly were monitored with dynamic laser scattering (DLS). We found that ENs can induce significant acceleration in Amphora sp. EPS assembly; after 72 hours EN-EPS aggregation reached equilibrium, forming microscopic gels of ∼4–6 µm in size. In contrast, ENs only cause moderate assembly kinetic acceleration for A. angustus and P. tricornutum EPS samples. Our results indicate that the effects of ENs on EPS assembly kinetics mainly depend on the hydrophobic interactions of ENs with EPS polymers. The cycling mechanism of EPS is complex. Nonetheless, the change of EPS assembly kinetics induced by ENs can be considered as one potential disturbance to the marine carbon cycle.
机译:工程纳米颗粒(EN)的独特性能使其在工业上具有很高的吸引力,同时也引发了有关其环境安全性的问题。 ENs的行为不同于具有相同化学成分的散装材料。尽管对ENs的纳米毒性进行了深入研究,但是它们对环境的意外影响仍然未知。本文中,我们报告了EN与来自三种海洋浮游植物的外聚物质(EPS)相互作用的实验结果:Amphora sp。,Ankistrodesmus angustus和Phaeodactylum tricornutum。 EPS是多种微生物释放的富含多糖的阴离子胶体聚合物,可以通过疏水和离子机理组装成微凝胶。聚苯乙烯纳米颗粒(23 nm)在我们的研究中用作模型EN。通过动态激光散射(DLS)监测EN对EPS组件的影响。我们发现ENs可以在Amphora sp中诱导明显的加速。 EPS组件; 72小时后,EN-EPS聚集达到平衡,形成约4-6 µm的微观凝胶。相比之下,ENs仅对A. angustus和Tricornutumum EPS样品产生适度的装配动力学加速。我们的结果表明,ENs对EPS组装动力学的影响主要取决于ENs与EPS聚合物的疏水相互作用。 EPS的循环机制很复杂。然而,由ENs引起的EPS组装动力学的变化可以被认为是对海洋碳循环的一种潜在干扰。

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