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Facile and High-Throughput Synthesis of Functional Microparticles with Quick Response Codes. | LitMetric

Facile and High-Throughput Synthesis of Functional Microparticles with Quick Response Codes.

Small

Multiplex Biotechnology Laboratory, Department of Chemistry, University at Albany, State University of New York, Albany, NY, 12222, USA.

Published: June 2016

AI Article Synopsis

  • Encoded microparticles are increasingly needed for multiplexed assays and labeling, but current synthesis methods struggle with reliability and coding capacity.
  • The new MiCODE technology utilizes a unique photocurable polymer and standard lithography to create large quantities of QR code microparticles using a photobleaching technique, allowing for efficient coding.
  • These microparticles can easily undergo surface modifications for incorporating DNA probes, making MiCODE suitable for scalable applications in bioassays and consumer product labeling.

Article Abstract

Encoded microparticles are high demand in multiplexed assays and labeling. However, the current methods for the synthesis and coding of microparticles either lack robustness and reliability, or possess limited coding capacity. Here, a massive coding of dissociated elements (MiCODE) technology based on innovation of a chemically reactive off-stoichimetry thiol-allyl photocurable polymer and standard lithography to produce a large number of quick response (QR) code microparticles is introduced. The coding process is performed by photobleaching the QR code patterns on microparticles when fluorophores are incorporated into the prepolymer formulation. The fabricated encoded microparticles can be released from a substrate without changing their features. Excess thiol functionality on the microparticle surface allows for grafting of amine groups and further DNA probes. A multiplexed assay is demonstrated using the DNA-grafted QR code microparticles. The MiCODE technology is further characterized by showing the incorporation of BODIPY-maleimide (BDP-M) and Nile Red fluorophores for coding and the use of microcontact printing for immobilizing DNA probes on microparticle surfaces. This versatile technology leverages mature lithography facilities for fabrication and thus is amenable to scale-up in the future, with potential applications in bioassays and in labeling consumer products.

Download full-text PDF

Source
http://dx.doi.org/10.1002/smll.201600456DOI Listing

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