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Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Human Health Effects Nanoplastics Reproductive & Development Sign in to save

Evaluation of nanoplastics toxicity to the human placenta in systems

Journal of Hazardous Materials 2022 61 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 55 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Prosper Eguono Ovuoraye, Chidi Edbert Duru, Chidi Edbert Duru, Chidi Edbert Duru, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Christian Ebere Enyoh, Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Chidi Edbert Duru, Chidi Edbert Duru, Chidi Edbert Duru, Chidi Edbert Duru, Prosper Eguono Ovuoraye, Prosper Eguono Ovuoraye, Prosper Eguono Ovuoraye, Qingyue Wang Qingyue Wang Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Prosper Eguono Ovuoraye, Prosper Eguono Ovuoraye, Prosper Eguono Ovuoraye, Qingyue Wang Qingyue Wang Christian Ebere Enyoh, Prosper Eguono Ovuoraye, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Qingyue Wang Qingyue Wang Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Qingyue Wang Christian Ebere Enyoh, Qingyue Wang Christian Ebere Enyoh, Christian Ebere Enyoh, Christian Ebere Enyoh, Qingyue Wang Christian Ebere Enyoh, Qingyue Wang

Summary

Researchers evaluated the toxicity of ten different types of nanoplastics on human placental enzymes using molecular docking and computational analysis. They found that polycarbonate and polyethylene terephthalate nanoplastics showed the highest binding affinity to critical placental enzymes responsible for metabolic and detoxification functions. The study suggests that nanoplastic exposure during pregnancy may interfere with placental enzyme activity, raising concerns about potential developmental effects.

Following the discovery of plastics in the human placenta, this study evaluated the toxicity of ten different nanoplastics (NPs) in the human placenta. Since the placenta performs metabolic and excretion functions by the enzymatic system, the NPs were docked on these human enzymes including soluble epoxide hydrolase, uracil phosphoribosyltransferase, beta 1,3-glucuronyltransferase I, sulfotransferase, N-acetyltransferase 2, and cytochrome P450 1A1at their active sites with toxicity (binding affinity) determined and compared to control compounds. Density functional theory analysis were conducted on the NPs to identify their global reactivity descriptors and Artificial Neural Networks to predict toxicity based on reactivity descriptors. Polycarbonate (PC), polyethylene terephthalate (PET) and polystyrene (PS) showed the highest toxicity to all enzymes and thus the most toxic polymers due to the presence of an electron-withdrawing group in their aromatic rings, which demonstrated an improved recognition of the enzyme active site by pi- and alkyl interactions. A 2 fractional factorial design approach was used in conjunction with a fixed effects model to assess the primary and secondary effects of NPs in a composite system on binding affinity to the placental enzymes. The simulation results suggest that NPs mixture may pose significant risks to the placenta through inhibition of its key enzymes.

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