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Updated: Aug 30, 2026

Evaluation of Polymeric Gene Delivery Nanoparticles by Nanoparticle Tracking Analysis and High-throughput Flow Cytometry
Published on: March 1, 2013
An aptamer-guided flow-cytometric biosensor for simultaneous sizing and polymer identification of nanoplastics
Hakan Eligul1, Murat Kavruk2, Ali Dogan Dursun3
1Vocational School of Health Services, Atilim University, Ankara, 06830, Türkiye; Department of Biology, Graduate School of Science, Ankara University, Ankara, 06100, Türkiye.
Abstract:
Nanoplastics are an emerging class of environmental contaminants whose analysis is limited by the difficulty of resolving both particle size and polymer identity at the submicrometre scale in a single high-throughput measurement. Here, a dual-parameter flow-cytometric biosensor was developed that combined polymer-selective DNA aptamers with violet side scatter (VSSC; 405 nm) to provide single-acquisition particle-size and polymer-identity readouts for nanoplastic targets. Polymer-specific aptamers against up to one-year sunlight equivalent photoaged polystyrene (PS), polyethylene terephthalate (PET), polyethylene (PE), polypropylene (PP), and polyvinyl chloride (PVC) nanoplastics were obtained by a Cell-SELEX procedure with counter-selection and were characterised by fluorescence saturation binding, giving apparent dissociation constants (KD) of 1.19-9.27 μg mL-1. Implemented on a CytoFLEX platform, the biosensor resolved polystyrene calibration beads down to ∼100 nm, below the practical cut-off of conventional 488 nm side scatter, and assigned polymer identity within the same VSSC window. A count-based calibration yielded limits of detection of 0.038-0.165 events μL-1 (≈40-200 particles mL-1), a polymer-independent figure of merit that was insensitive to fragment density or weathering state. Polymer-specific fluorescein (FITC)-channel-positive populations were retained in spiked ultrapure, tap, sea, and lake water matrices, with only modest matrix-dependent fluorescence attenuation that did not affect per-event polymer classification. The approach provided a potentially transferable biosensor architecture for nanoscale-particle analysis and was compatible with existing flow-cytometry data-analysis pipelines; adaptation to field-portable cytometers remains to be demonstrated.

