Renkang Jin, Youji Wang, Kit Yue Kwan, Moslem Sharifinia, Fahim Ullah Khan, Ranran Ding, Nisha Singh, Khor Waiho, James Kar Hei Fang, Hanafiah Fazhan, Menghong Hu
The Chinese horseshoe crab (Tachypleus tridentatus), an intertidal chelicerate with a 400-million-year evolutionary history, is increasingly exposed to anthropogenic pollutants in its coastal nursery habitats. Because of the ecological importance of the species and the vulnerability of the post-molt stage, we investigated the effects of pristine and 7-day UV-aged polystyrene nanoplastics (NPS) on juvenile T. tridentatus at an environmentally relevant nominal concentration of 100 μg/L. Fourier transform infrared spectroscopy confirmed surface oxidation of aged NPS, as reflected by significantly elevated carbonyl (C=O), hydroxyl (O-H), and carbon-oxygen (C-O) indices. Dynamic light scattering in 25 ppt artificial seawater further showed that aged NPS had a larger hydrodynamic diameter (111.90 ± 3.41 vs. 102.27 ± 1.01 nm) and a more negative zeta potential (-10.32 ± 0.86 vs. -5.65 ± 0.66 mV) than pristine NPS. Both NPS treatments elevated MDA levels, whereas most other biomarkers showed no significant changes. Notably, only aged NPS significantly increased total antioxidant capacity, suggesting a compensatory antioxidant response; nevertheless, pristine NPS elicited stronger overall biomarker perturbation, as reflected by its higher cumulative directional probability (85.4% vs. 71.0%) and Integrated Biomarker Response index (pristine: 3.645 ± 0.645; aged: 1.799 ± 0.679; control: 0.889 ± 0.635). Collectively, these findings demonstrate that UV aging alters both the physicochemical properties and the biological effects of polystyrene nanoplastics, with pristine NPS inducing greater biomarker perturbation in post-molt juvenile T. tridentatus.