| Literature DB >> 26104688 |
Arumugam Sivanesan1, Emad L Izake2, Roland Agoston3, Godwin A Ayoko4, Martin Sillence5.
Abstract
Erythropoietin (EPO), a glycoprotein hormone of ∼ 34 kDa, is an important hematopoietic growth factor, mainly produced in the kidney and controls the number of red blood cells circulating in the blood stream. Sensitive and rapid recombinant human EPO (rHuEPO) detection tools that improve on the current laborious EPO detection techniques are in high demand for both clinical and sports industry. A sensitive aptamer-functionalized biosensor (aptasensor) has been developed by controlled growth of gold nanostructures (AuNS) over a gold substrate (pAu/AuNS). The aptasensor selectively binds to rHuEPO and, therefore, was used to extract and detect the drug from horse plasma by surface enhanced Raman spectroscopy (SERS). Due to the nanogap separation between the nanostructures, the high population and distribution of hot spots on the pAu/AuNS substrate surface, strong signal enhancement was acquired. By using wide area illumination (WAI) setting for the Raman detection, a low RSD of 4.92% over 150 SERS measurements was achieved. The significant reproducibility of the new biosensor addresses the serious problem of SERS signal inconsistency that hampers the use of the technique in the field. The WAI setting is compatible with handheld Raman devices. Therefore, the new aptasensor can be used for the selective extraction of rHuEPO from biological fluids and subsequently screened with handheld Raman spectrometer for SERS based in-field protein detection.Entities:
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Year: 2015 PMID: 26104688 PMCID: PMC4477471 DOI: 10.1186/s12951-015-0102-8
Source DB: PubMed Journal: J Nanobiotechnology ISSN: 1477-3155 Impact factor: 10.435
Figure 1a–b SEM images of pAu/AuNS surface under different magnifications.
Figure 2A series of SERS spectra of 2-QT randomly collected over the entire 8 mm diameter pAu/AuNS disc using a 50× objective with a laser focusing area of 0.32 µ2 and b 5× objective with a laser focusing area of 12.56 µ2.
Figure 3SERS spectra of a I pAu/AuNS/rHuEPO (drop dry), II pAu/AuNS/Apt (self-assembled monolayer) and III pAu/AuNS/Apt/rHuEPO (selectively captured). b SERS spectra of pAu/AuNS/Apt incubated in I blank horse plasma and II rHuEPO spiked horse plasma. Each spectrum is the average of 10 spectra.
Scheme 1Graphical representation of rHuEPO captured aptasensor and subsequent SERS investigation.
Figure 4a SERS spectra of pAu/AuNS/Apt/rHuEPO with decreasing concentration of rHuEPO: 10 nM (black), 1 nM (red), 100 pM (green), and 10 pM (blue). b Plot demonstrating the linear relationship between log concentration of rHuEPO and SERS intensity at 1,676 cm−1.