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UV-aged microplastics exacerbate cadmium-induced intestinal barrier dysfunction, innate immune impairment, and Vibrio harveyi colonization in big-belly seahorses, Hippocampus abdominalis.
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Sunlight-weathered microplastics soak up more toxic cadmium, and when seahorses were exposed to both, their gut linings broke down and their immune defenses weakened, making them far more vulnerable to bacterial infection. This suggests that plastic debris aging in the ocean could become more dangerous over time, a concern for marine life and potentially for seafood safety.
Ultraviolet (UV) aging alters the surface physicochemical properties of microplastics (MPs) and may increase their capacity to transport toxic metals in aquatic environments. This study investigated whether UV-aged high-density polyethylene MPs exacerbate cadmium (Cd) toxicity by impairing intestinal barrier function and innate immunity and increasing susceptibility to Vibrio harveyi infection in the big-belly seahorse, Hippocampus abdominalis. MPs were UV-aged for 5 or 10 days and administered alone or in combination with Cd for 5 days. UV aging increased specific surface area, shifted zeta potential toward more negative values, and enhanced Cd adsorption, with the strongest effects observed after 10 days of aging. Combined exposure, particularly to 10-day-aged MPs and Cd, decreased intestinal ctnnb1 and sdc2 expression and goblet cell abundance while increasing intestinal and plasma diamine oxidase and D-lactate levels, indicating impaired epithelial integrity and increased intestinal permeability. Hepatic G-type lysozyme mRNA expression was increased, whereas plasma lysozyme concentrations decreased, indicating disruption of innate immune homeostasis. Following V. harveyi challenge, the 10-day-aged MP/Cd group exhibited the highest hepatic bacterial burden and Brown-Hopps-positive signals. These findings indicate that UV aging can enhance the capacity of MPs to modulate Cd toxicity, linking intestinal barrier disruption with impaired host defense and increased susceptibility to bacterial infection. Such interactions may increase disease vulnerability in wild seahorses inhabiting contaminated coastal habitats, highlighting the potential importance of aged MPs as modifiers of contaminant-related ecological risk and seahorse conservation.
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Co-exposure to UV-aged microplastics and cadmium induces intestinal toxicity and metabolic responses in earthworms
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This study found that UV-aged microplastics (the kind that naturally degrade in sunlight) are more harmful than fresh microplastics when combined with the heavy metal cadmium in soil. Aging changed the microplastics' surface, making them better at absorbing cadmium and delivering it to earthworms, causing more gut damage and metabolic disruption. This highlights that weathered microplastics in the real environment may pose greater risks than lab studies using new plastic particles suggest.
Role of UV radiation and oxidation on polyethylene micro- and nanoplastics: impacts on cadmium sorption, bioaccumulation, and toxicity in fish intestinal cells
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This study examined how UV aging and oxidation change the way polyethylene micro and nanoplastics interact with cadmium, a toxic heavy metal, in fish gut cells. While the plastics actually reduced cadmium absorption and toxicity in the cells, UV aging changed the particles' surface chemistry and caused them to clump together differently. The results suggest that the interaction between microplastics and heavy metals in the environment is complex and depends on how weathered the plastic is.
Effects of microplastics and attached heavy metals on growth, immunity, and heavy metal accumulation in the yellow seahorse, Hippocampus kuda Bleeker
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Yellow seahorses (Hippocampus kuda) exposed to microplastics with attached heavy metals showed reduced growth, impaired immune function, and accumulation of metals in their tissues compared to controls. The combined effects of plastic particles and their associated heavy metal contaminants were more harmful than either stressor alone in this commercially important marine species.
Aged polystyrene microplastics exacerbate cadmium-induced hepatotoxicity in zebrafish through gut-liver axis metabolic dysregulation
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Researchers exposed zebrafish to polystyrene microplastics and cadmium, a toxic heavy metal, and found that weathered (aged) microplastics absorbed more cadmium and caused worse liver damage — disrupting the gut barrier, altering gut bacteria, and triggering fat buildup in the liver — compared to either pollutant alone.
UV-Aged Nanoplastics Increase Mercury Toxicity in a Marine Copepod under Multigenerational Exposure: A Carrier Role
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Researchers found that UV-aged nanoplastics were much better at carrying mercury into the bodies of marine copepods than fresh nanoplastics, increasing mercury accumulation by over 50% across multiple generations. The combination of aged nanoplastics and mercury significantly reduced survival rates in offspring. Since most nanoplastics in the ocean have been weathered by sunlight, this study suggests the real-world risks of nanoplastic-metal combinations to marine food chains may be greater than lab studies with fresh plastics indicate.
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