4.7 Article

QCM-based assay designs for human serum albumin

Journal

ANALYTICAL AND BIOANALYTICAL CHEMISTRY
Volume 414, Issue 1, Pages 731-741

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s00216-021-03771-0

Keywords

Molecularly imprinted polymer; Nanoparticles; Competitive assay; Human serum albumin; Quartz crystal microbalance

Funding

  1. Ernst Mach Grant - ASEA-UNINET scholarship program - Austrian Federal Ministry of Education, Science and Research (BMBWF)

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Solid-phase synthesis produces small molecularly imprinted polymer nanoparticles that selectively bind to human serum albumin, allowing for competitive QCM-based assays with low detection limits and high recovery rates.
Solid-phase synthesis is an elegant way to create molecularly imprinted polymer nanoparticles (nano-MIPs) comprising a single binding site, i.e. mimics of antibodies. When using human serum albumin (HSA) as the template, one achieves nano-MIPs with 53 +/- 19 nm diameter, while non-imprinted polymer nanoparticles (nano-NIPs) reach 191 +/- 96 nm. Fluorescence assays lead to Stern-Volmer plots revealing selective binding to HSA with selectivity factors of 1.2 compared to bovine serum albumin (BSA), 1.9 for lysozyme, and 4.1 for pepsin. Direct quartz crystal microbalance (QCM) assays confirm these results: nano-MIPs bind to HSA immobilized on QCM surfaces. This opens the way for competitive QCM-based assays for HSA: adding HSA to nanoparticle solutions indeed reduces binding to the QCM surfaces in a concentration-dependent manner. They achieve a limit of detection (LoD) of 80 nM and a limit of quantification (LoQ) of 244 nM. Furthermore, the assay shows recovery rates around 100% for HSA even in the presence of competing analytes.

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