Shandong Key Laboratory of Environmental Processes and Health, School of Environmental Science and Engineering, Shandong University, Qingdao, Shandong 266237, PR China.
School of Environment, Hangzhou Institute for Advanced Study, UCAS, Hangzhou, Zhejiang 310024, PR China.
Ecotoxicol Environ Saf. 2024 Jan 15;270:115901. doi: 10.1016/j.ecoenv.2023.115901. Epub 2023 Dec 28.
The toxicity of nanoparticles to freshwater microalgae is of significant importance in maintaining the overall stability of aquatic ecosystems. However, the transport mechanism and toxicity response of microalgae towards nanoplastics (NPs) remain to be further investigated. In this study, we examined the toxicity and internalization mechanisms of polystyrene nanoplastics (PS-NPs) in the microalga Chlorella sorokiniana. The results revealed that the PS-NPs inhibited algal cells' growth and disrupted cell integrity upon contact, leading to cell shrinkage or rupture. Moreover, amino-modified PS-NPs (Nano-PS-NH) exhibited greater toxicity to C. sorokiniana than carboxyl-modified PS-NPs (Nano-PS-COOH). Furthermore, significant inhibition of PS-NPs internalization was observed when four different endocytosis-related inhibitors were used, indicating that internalized PS-NPs can enter algal cells through endocytic pathways. More importantly, C. sorokiniana exposed to Nano-PS-NH responded to the reduction in carbon sources and energy resulting from the suppression of photosynthesis by regulating the metabolism of carbohydrates. These findings elucidate the effects of PS-NPs on C. sorokiniana, including their impact on cell morphology and metabolism, while shedding light on the internalization mechanisms of NPs by C. sorokiniana which deepen our understanding of the toxicity of nanoplastics on algae and provide important theoretical support for solving such aquatic ecological environment problems.
纳米颗粒对淡水微藻的毒性对于维持水生态系统的整体稳定性具有重要意义。然而,微藻对纳米塑料(NPs)的运输机制和毒性反应仍有待进一步研究。在本研究中,我们研究了聚苯乙烯纳米塑料(PS-NPs)在小球藻中的毒性和内化机制。结果表明,PS-NPs 与细胞接触后抑制藻类细胞的生长并破坏细胞完整性,导致细胞收缩或破裂。此外,与羧基化 PS-NPs(Nano-PS-COOH)相比,氨基化 PS-NPs(Nano-PS-NH)对小球藻的毒性更大。此外,当使用四种不同的内吞相关抑制剂时,PS-NPs 的内化显著受到抑制,表明内吞的 PS-NPs 可以通过内吞途径进入藻类细胞。更重要的是,暴露于 Nano-PS-NH 的小球藻通过调节碳水化合物的代谢来响应光合作用受到抑制导致的碳源和能量减少。这些发现阐明了 PS-NPs 对小球藻的影响,包括它们对细胞形态和代谢的影响,同时揭示了小球藻内化 NPs 的机制,加深了我们对纳米塑料对藻类毒性的理解,并为解决此类水生生态环境问题提供了重要的理论支持。