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Multiplexed Enrichment and Detection of Malarial Biomarkers Using a Stimuli-responsive Iron Oxide and Gold Nanoparticle Reagent System

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Journal ACS Nano
Specialty Biotechnology
Date 2012 Jul 19
PMID 22804625
Citations 24
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Abstract

There is a need for simple yet robust biomarker and antigen purification and enrichment strategies that are compatible with current rapid diagnostic modalities. Here, a stimuli-responsive nanoparticle system is presented for multiplexed magneto-enrichment and non-instrumented lateral flow strip detection of model antigens from spiked pooled plasma. The integrated reagent system allows purification and enrichment of the gold-labeled biomarker half-sandwich that can be applied directly to lateral flow test strips. A linear diblock copolymer with a thermally responsive poly(N-isopropylacrylamide) (pNIPAm) segment and a gold-binding block composed of NIPAm-co-N,N-dimethylaminoethylacrylamide was prepared by reversible addition-fragmentation chain transfer polymerization. The diblock copolymer was used to functionalize gold nanoparticles (AuNPs), with subsequent bioconjugation to yield thermally responsive pNIPAm-AuNPs that were co-decorated with streptavidin. These AuNPs efficiently complexed biotinylated capture antibody reagents that were bound to picomolar quantities of pan-aldolase and Plasmodium falciparum histidine-rich protein 2 (PfHRP2) in spiked pooled plasma samples. The gold-labeled biomarker half-sandwich was then purified and enriched using 10 nm thermally responsive magnetic nanoparticles that were similarly decorated with pNIPAm. When a thermal stimulus was applied in conjunction with a magnetic field, coaggregation of the AuNP half-sandwiches with the pNIPAm-coated iron oxide nanoparticles created large aggregates that were efficiently magnetophoresed and separated from bulk serum. The purified biomarkers from a spiked pooled plasma sample could be concentrated 50-fold into a small volume and applied directly to a commercial multiplexed lateral flow strip to dramatically improve the signal-to-noise ratio and test sensitivity.

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References
1.
Nash M, Yager P, Hoffman A, Stayton P . Mixed stimuli-responsive magnetic and gold nanoparticle system for rapid purification, enrichment, and detection of biomarkers. Bioconjug Chem. 2010; 21(12):2197-204. PMC: 3075363. DOI: 10.1021/bc100180q. View

2.
Beadle C, Long G, Weiss W, McElroy P, Maret S, Oloo A . Diagnosis of malaria by detection of Plasmodium falciparum HRP-2 antigen with a rapid dipstick antigen-capture assay. Lancet. 1994; 343(8897):564-8. DOI: 10.1016/s0140-6736(94)91520-2. View

3.
Yager P, Edwards T, Fu E, Helton K, Nelson K, Tam M . Microfluidic diagnostic technologies for global public health. Nature. 2006; 442(7101):412-8. DOI: 10.1038/nature05064. View

4.
Gijs M, Lacharme F, Lehmann U . Microfluidic applications of magnetic particles for biological analysis and catalysis. Chem Rev. 2009; 110(3):1518-63. DOI: 10.1021/cr9001929. View

5.
Posthuma-Trumpie G, Korf J, van Amerongen A . Lateral flow (immuno)assay: its strengths, weaknesses, opportunities and threats. A literature survey. Anal Bioanal Chem. 2008; 393(2):569-82. DOI: 10.1007/s00216-008-2287-2. View