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ACS Applied Polymer Materials· 2026Q1

Polystyrene Nanodiscs via Seeded Dispersion Polymerization for Enhanced Sensitivity in Turbidimetric Immunoassays

Hayato Yokose, Yosuke Okamura

Short summary

Polystyrene nanodiscs, engineered via seeded dispersion polymerization, achieved a four-fold improvement in detection sensitivity for turbidimetric immunoassays compared to spherical nanoparticles.

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Key points

  • Polystyrene nanodiscs were synthesized using seeded dispersion polymerization, phase separation, and selective extraction.
  • Nanodiscs showed enhanced aggregation via face-to-face stacking compared to spherical nanoparticles.
  • The nanodiscs resulted in a four-fold improvement in detection sensitivity for turbidimetric immunoassays.
  • The study establishes a direct link between nanoparticle shape and biosensing performance.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Particle shape plays a critical yet underexplored role in aggregation-based biosensing, particularly at the nanoscale, where quantitative detection is required. In this study, we demonstrate a simple strategy for engineering nonspherical polymer nanoparticles that substantially enhance the sensitivity of turbidimetric immunoassays. Polystyrene (PS) nanospheres with diameters of a few hundred nanometers, suitable for quantitative turbidimetric detection, were synthesized via dispersion polymerization under unconventional conditions. The nanospheres were subsequently deformed into disc-shaped nanoparticles (∼300 nm) through seeded dispersion polymerization coupled with phase separation and selective extraction. The resultant PS nanodiscs exhibited markedly enhanced aggregation behavior upon antigen–antibody interactions, forming larger anisotropic aggregates via face-to-face stacking than their spherical counterparts. Consequently, the nanodiscs achieved an approximately four-fold improvement in detection sensitivity, while providing a wider quantitative detection range. These findings demonstrate a direct link between the shape of polymer nanoparticles and biosensing performance and may provide a versatile platform for designing next-generation high-sensitivity immunoassay systems based on shape-engineered polymer nanoparticles.

The authors' abstract, as published at the source. ACS Applied Polymer Materials, 2026 · DOI ↗

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Field: Surfaces, Coatings and Films

Surfaces, Coatings and FilmsMaterials Science