Electrostatic Adsorption-Driven Reorganization of Phycosphere Eco-Corona as a Toxicity Mechanism of Cationic Nanoplastics

化学 生物物理学 活性氧 细胞外 氧化还原 细胞内 生物化学 表面电荷 荧光 抗氧化剂 生物发生 蛋白质组学 细胞室 光系统II 氧化应激 绿色荧光蛋白 小球藻 脂质过氧化 静电 蛋白质聚集 双分子荧光互补 胞外聚合物 相互作用体 光漂白后的荧光恢复 毒性 蓝藻 细胞保护 转运蛋白 阳离子聚合 环境化学 细胞生物学 分区(防火)
作者
Haiyang Chen,Mengen Kang,Changjian Xie,Zhuda Song,Junzhe Zhang,Xin Wu,Yingjun Song,Jiahui Zhao,Peng Zhang,Pu Xia,Zhiyong Zhang,Iseult Lynch,Zhiling Guo
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:60 (23): 16472-16485
标识
DOI:10.1021/acs.est.6c00547
摘要

Nanoplastics (NPs) are emerging contaminants in freshwater ecosystems, readily forming heterogeneous aggregates with microalgae, yet their behavior in algal phycospheres remains poorly resolved. Here, we establish an aquatic phycosphere–plastic symbiotic system and a four-tiered analytical workflow, encompassing growth responses, cellular effects, phycosphere dynamics, and proteomic reprogramming to test how surface charge controls interactions between carboxylated and aminated polystyrene NPs (PS-COOH, PS-NH 2, 50 nm) and Chlorella pyrenoidosa . Negatively charged PS-COOH exposure largely preserved physiological, ultrastructural, and redox homeostasis, indicating high tolerance of the symbiotic system. In contrast, positively charged PS-NH 2 strongly inhibited biomass and chlorophyll, and triggered a cascade of intracellular stress, including sustained reactive oxygen species (ROS) production, lipid peroxidation, antioxidant imbalance, mitochondrial membrane depolarization, and up to 89.6% apoptosis. Three-dimensional excitation–emission fluorescence with parallel factor analysis and self-organizing map (PARAFAC-SOM) analysis revealed charge- and dose-dependent reorganization of tyrosine- and tryptophan-like protein components in tightly and loosely bound extracellular polymeric substances, indicating spatial eco-corona remodeling. Quantitative proteomics showed that PS-COOH mainly induced homeostasis regulation in photosystem and electron-transport proteins, whereas PS-NH 2 broadly disrupted photosynthesis, carbon metabolism, and protein homeostasis. This multitier framework links NPs’ surface charge to coupled interfacial, cellular, and proteomic processes in microalgal phycospheres, providing a mechanistic basis to assess the biological footprint of NPs in freshwater ecosystems.
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