4.7 Article

Electrochemical Biosensors Based on Convectively Assembled Colloidal Crystals

期刊

BIOSENSORS-BASEL
卷 12, 期 7, 页码 -

出版社

MDPI
DOI: 10.3390/bios12070480

关键词

electrochemical biosensors; convective assembly; colloidal crystal; virus detection

资金

  1. Probing Biosystems Future Science Platform of the Commonwealth Scientific & Industrial Research Organisation (CSIRO) in Australia
  2. Australian Research Council [LP160101050]
  3. Australian Research Council [LP160101050] Funding Source: Australian Research Council

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The authors developed a bioreceptor-based biosensor with tunable nanochannels for the size-selective detection of intact viruses. The sensor demonstrated the ability to differentiate non-infectious viral particles from intact/infectious viruses with high sensitivity and low detection limit.
Rapid, sensitive, selective and portable virus detection is in high demand globally. However, differentiating non-infectious viral particles from intact/infectious viruses is still a rarely satisfied sensing requirement. Using the negative space within monolayers of polystyrene (PS) spheres deposited directly on gold electrodes, we fabricated tuneable nanochannels decorated with target-selective bioreceptors that facilitate the size-selective detection of intact viruses. Detection occurred through selective nanochannel blockage of diffusion of a redox probe, [Fe(CN)(6)](3/4-), allowing a quantifiable change in the oxidation current before and after analyte binding to the bioreceptor immobilised on the spheres. Our model system involved partial surface passivation of the mono-assembled PS spheres, by silica glancing angle deposition, to confine bioreceptor immobilisation specifically to the channels and improve particle detection sensitivity. Virus detection was first optimised and modelled with biotinylated gold nanoparticles, recognised by streptavidin immobilised on the PS layer, reaching a low limit of detection of 37 particles/mL. Intact, label-free virus detection was demonstrated using MS2 bacteriophage (similar to 23-28 nm), a marker of microbiological contamination, showing an excellent limit of detection of similar to 1.0 pfu/mL. Tuneable nanochannel geometries constructed directly on sensing electrodes offer label-free, sensitive, and cost-efficient point-of-care biosensing platforms that could be applied for a wide range of viruses.

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