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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 Human Health Effects Nanoplastics Sign in to save

Single-Particle Resolution Fluorescence Microscopy of Nanoplastics

Environmental Science & Technology 2022 74 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.
Brian Nguyen, Nathalie Tufenkji Brian Nguyen, Brian Nguyen, Brian Nguyen, Brian Nguyen, Brian Nguyen, Nathalie Tufenkji Nathalie Tufenkji Brian Nguyen, Brian Nguyen, Nathalie Tufenkji Brian Nguyen, Nathalie Tufenkji Nathalie Tufenkji Brian Nguyen, Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji Nathalie Tufenkji

Summary

Researchers developed a super-resolution fluorescence microscopy technique that enables single-particle detection and precise localization of nanoplastics in biological tissues and environmental samples. This advancement addresses a major limitation in nanoplastic research, as conventional microscopy lacks the resolution to distinguish individual nanoplastics from background fluorescence or free dye.

Understanding of nanoplastic prevalence and toxicology is limited by imaging challenges resulting from their small size. Fluorescence microscopy is widely applied to track and identify microplastics in laboratory studies and environmental samples. However, conventional fluorescence microscopy, due to diffraction, lacks the resolution to precisely localize nanoplastics in tissues, distinguish them from free dye, or quantify them in environmental samples. To address these limitations, we developed techniques to label nanoplastics for imaging with stimulated emission depletion (STED) microscopy to achieve resolution at an order of magnitude superior to conventional fluorescence microscopy. These techniques include (1) passive sorption; (2) swell incorporation; and (3) covalent coupling of STED-compatible fluorescence dyes to nanoplastics. We demonstrate that our labeling techniques, combined with STED microscopy, can be used to resolve nanoplastics of different shapes and compositions as small as 50 nm. The longevity of dye labeling is demonstrated in different media and conditions of biological and environmental relevance. We also test STED imaging of nanoplastics in exposure experiments with the model worm <i>Caenorhabditis elegans</i>. Our work shows the value of the method for detection and localization of nanoplastics as small as 50 nm in a whole animal without disruption of the tissue. These techniques will allow more precise localization and quantification of nanoplastics in complex matrices such as biological tissues in exposure studies.

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