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May 7, 2026MethodsX0 citationsOpen Access

Computational modeling and characterization methods for rotating magnetic nanochain-enhanced lateral flow immunoassays

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AOAlexey V. OrlovJMJuri A. MalkerovARAlexandra S. Rakitina

Key Points

  • The central aim is to optimize lateral flow immunoassays using rotating magnetic nanochains and computational modeling techniques.
  • Detailed workflows for computational fluid dynamics modeling using COMSOL Multiphysics.
  • Electron microscopy characterization of magnetic nanochain morphology and size distributions.
  • Design and operation methods for a rotating magnetic field generator.
  • Procedures for magnetic particle quantification measurement for volumetric signal readout.
  • Achieved sub-nanogram detection limits for lateral flow assays.
  • Enabled rapid analysis times of 6 minutes for diagnostic testing.
  • Presented comprehensive methodologies to support independent replication in other laboratories.

Abstract

This article provides comprehensive methodological guidance for implementing rotating magnetic nanochain-enhanced lateral flow immunoassays with volumetric magnetic detection. Rotating magnetic nanochains act as microscale stirrers that substantially enhance antibody-antigen binding kinetics through convective mixing, yet their integration into lateral flow platforms presents unique technical challenges requiring both computational optimization and specialized characterization. We describe complete workflows for: (i) computational fluid dynamics modeling using COMSOL Multiphysics to simulate nanochain rotation, fluid flow, and mass transport enhancement; (ii) electron microscopy characterization of magnetic nanochain morphology and size distributions; (iii) rotating magnetic field generator design and operation; and (iv) magnetic particle quantification measurement procedures for volumetric signal readout. Each section provides step-by-step instructions with sufficient detail to enable independent replication. The described methods enable development of lateral flow assays achieving sub-nanogram detection limits with rapid (6-minute) analysis times, addressing critical needs in point-of-care diagnostics. These methods complement our related research article in Biosensors and Bioelectronics by providing the technical foundation necessary for adoption and adaptation of this technology by other laboratories. • COMSOL Multiphysics workflow for modeling convective enhancement by rotating magnetic nanochains • Electron microscopy procedures for comprehensive nanochain characterization • Instrumentation methods for rotating field generation and volumetric magnetic particle quantification

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Cite This Study

Orlov et al. (2026) studied this question.

synapsesocial.com/papers/69fbefef164b5133a91a4036https://doi.org/10.1016/j.mex.2026.103936
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