Skip to content
Open access

Title: Co-exposure to polystyrene microplastics and permethrin induces gill injury in Gobiocypris rarus involving oxidative stress and microbiota dysbiosis.

Sep 2026 · Ecotoxicology and Environmental Safety · Vol 323, pp. 120745 · 0 citations · 57 references
Medicine

TL;DR

It is indicated that PS-MPs and PM co-exposure exacerbates gill toxicity through multi-level injury processes, providing a theoretical basis for evaluating the ecological risks of microplastic-pesticide co-contamination in freshwater fish.

Abstract

Microplastics and pesticides often coexist in freshwater environments; however, their combined effects on teleost branchial tissues remain unclear. In this study, adult Gobiocypris rarus were exposed to polystyrene microplastics (PS-MPs, 1 mg/L), permethrin (PM, 0.5 μg/L), or their combination for 21 days. Gill toxicity was evaluated using histopathology, scanning electron microscopy, biochemical assays, immunofluorescence staining, transcriptomics, and 16S rRNA sequencing. Our results revealed that both single and co-exposure manifested as sublethal toxicity in gill tissues, with co-exposure generally inducing more pronounced and widespread adverse effects. Histological and ultrastructural observations showed that co-exposure exacerbated lamellar deformation, epithelial vacuolation, microridge disruption, and epithelial surface damage. 8-OHdG staining revealed the most severe oxidative DNA damage in the PM group. Biochemical analyses showed decreased superoxide dismutase (SOD) activity in all exposure groups and increased malondialdehyde (MDA) levels in PM-containing groups. TUNEL analysis showed the most intense apoptotic signal in the co-exposure group. Transcriptomic analysis revealed that co-exposure induced the largest number of differentially expressed genes and mainly affected lipid transport, membrane-related metabolism, programmed cell death, immune regulation, and PPAR signaling. In addition, 16S rRNA sequencing showed that co-exposure disrupted the gill-associated microbiota, with a loss of dominant commensal bacteria and an increase in opportunistic taxa. Combined analysis further showed that microbial changes were closely associated with oxidative injury, apoptosis-related responses, and immune-related indicators. Overall, these findings indicate that PS-MPs and PM co-exposure exacerbates gill toxicity through multi-level injury processes, providing a theoretical basis for evaluating the ecological risks of microplastic-pesticide co-contamination in freshwater fish.

Read PDF

Similar papers

Sep 2026

Combined toxicity of polystyrene microplastics and triphenyl phosphate on common carp gills: mechanistic insights from physiology and transcriptomics.

It is demonstrated that polystyrene exacerbates TPHP-induced gill toxicity through disruption of metabolism, barrier integrity, and apoptosis, underscoring the need to consider combined effects in aquatic risk assessment.

Ying Wang, Ren-Jun Wang, Jun-Feng Chen et al. · 0 citations
Open access Sep 2026

Biointerface interactions and mechanistic ecotoxicity of polystyrene micro/nanoplastics and imidacloprid in juvenile Carassius auratus under single and combined exposure.

Agricultural intensification zones-especially pesticide-intensive, ponded rice drainage belts-are overlooked hotspots for plastic and pesticide pollution. Rice-fish co-culture is now widely promoted; crucian carp is the principal co-stocked species that provides food and supports crop yield yet experiences high plastic...

Zhao-Xuan Zhu, L. Peng, Xin-Zi Guo et al. · 0 citations
Aug 2026

Combined exposure to cypermethrin and sulfamethoxazole is associated with muscle injury in grass carp through oxidative stress, endoplasmic reticulum stress, MAPK activation, autophagy, and apoptosis.

The co-occurrence of pesticides and antibiotics in aquatic environments has raised increasing concern because of their potential effects on aquatic organisms. Cypermethrin (CMN) and sulfamethoxazole (SMZ) are representative pyrethroid pesticides and sulfonamide antibiotics, respectively, but their combined effects on f...

Yu-Shi Yin, Xin Zhang, Hongmin Lu et al. · 0 citations
Sep 2026

Aquaculture-relevant florfenicol exposure causes hepatopancreatic bioaccumulation and metabolic-immune toxicity in the mud crab Scylla paramamosain.

The overuse of the broad-spectrum antibiotic florfenicol (FF) and its residues in coastal benthic environments pose toxicological risks to marine crustaceans. As an economically important benthic species, the mud crab is vulnerable to FF pollution stress, yet its toxicological responses and underlying mechanisms remain...

Min-Ze Liao, Chang-Hong Cheng, Hong-Ling Ma et al. · 0 citations
Aug 2026

Polystyrene nanoplastics exacerbate cadmium-induced bioenergetic impairment and oxidized phospholipid accumulation in the mussel Mytilus coruscus.

The coexistence of nanoplastics and conventional heavy metals poses a serious ecological threat to marine ecosystems, yet the specific mechanisms underlying their synergistic toxicity remain unclear. This study employed a comprehensive approach, encompassing tissue cadmium quantification, biochemical assays, real-time...

Shihan Xu, Meng-Hong Hu, Wenlong Mei et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.