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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. Detection Methods Nanoplastics Sign in to save

Extraction and quantification of polystyrene nanoplastics from biological samples

Environmental Pollution 2022 19 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Pei Li, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Caijiao He, Daohui Lin Caijiao He, Caijiao He, Daohui Lin Caijiao He, Daohui Lin Caijiao He, Caijiao He, Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin Daohui Lin

Summary

Researchers developed a new method to extract and quantify polystyrene nanoplastics from biological samples using alkaline digestion, centrifugation, cloud point extraction, and single-particle ICP-MS with gold nanoparticle labeling. The method achieved recovery rates above 80% and was validated in tissue samples, addressing a major analytical gap for nanoplastic detection in complex biological matrices.

Accurate quantification of nanoplastics (NPs) in complex matrices remains a challenge, especially for biological samples containing high content of organic matters. Herein, a new method extracting and quantifying polystyrene (PS) NPs from biological samples was developed. The extraction included alkaline digestion, centrifugation, and cloud point extraction (CPE), and the quantification included gold nanoparticles formation and labeling on surfaces of the extracted NPs and thereafter measurement with single particle inductively coupled plasma mass spectrometry (SP-ICP-MS). Results show that 25% tetramethylammonium hydroxide solution was an effective alkaline digestion solution for biological matrices, and CPE after centrifugation (3000 rpm, 10 min) was applicable to purify and enrich PS NPs with different sizes (100 and 500 nm) and surface functionalities (-COOH and -NH modifications) from the digestion solution. The efficiency of Au labeling on PS NPs surface was improved by about 70% in the presence of 100 μM cetyltrimethylammonium bromide. The performance of the quantification method was examined by extraction and measurement of PS NPs spiked in four representative organism samples including bacteria, algae, nematode, and earthworm, and was further validated by analyzing the accumulated PS NPs in exposed nematodes. Good recovery rates (65 ± 10%-122 ± 22%) were achieved for spiking levels of 5-50 μg g; the limit of detection was 3.7 × 10 particles g, corresponding to the mass concentration of about 0.02 and 2.5 μg g for the 100 nm and 500 nm PS NPs, respectively. The established extraction and quantification methods are efficient and sensitive, providing a useful approach for further exploring the environmental behavior and toxicity of NPs.

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