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Peptide Functionalization of Gold Nanoparticles for the Detection of Carcinoembryonic Antigen in Blood Plasma via SPR-Based Biosensor

机译:金纳米粒子的肽功能化,通过基于SPR的生物传感器检测血浆中的癌胚抗原

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摘要

Nanoparticles functionalized with specific biological recognition molecules play a major role for sensor response enhancement in surface plasmon resonance (SPR) based biosensors. The functionalization procedure of such nanoparticles is crucial, since it influences their interactions with the environment and determines their applicability to biomolecular detection in complex matrices. In this work we show how the ζ-potential (Zpot) of bio-functionalized gold spherical NPs (Bio-NPs) is related to the SPR sensor response enhancement of an immune-sandwich-assay for the detection of the carcinoembryonic antigen (CEA), a cancer marker for colorectal carcinomas. In particular, we prepare bio-functional nanoparticles by varying the amount of peptide (either streptavidin or antibody against CEA) bound on their surface. Specific and non-specific sensor responses, reproducibility, and colloidal stability of those bio-functional nanoparticles are measured via SPR and compared to ζ-potential values. Those parameters are first measured in buffer solution, then measured again when the surface of the biosensor is exposed to blood plasma, and finally when the nanoparticles are immersed in blood plasma and flowed overnight on the biosensor. We found that ζ-potential values can guide the design of bio-functional NPs with improved binding efficiency and reduced non-specific sensor response, suitable reproducibility and colloidal stability, even in complex matrixes like blood plasma.
机译:在特定的生物识别分子中功能化的纳米颗粒在基于表面等离振子共振(SPR)的生物传感器中增强传感器响应方面起着重要作用。此类纳米颗粒的功能化过程至关重要,因为它会影响它们与环境的相互作用,并决定其在复杂基质中生物分子检测的适用性。在这项工作中,我们展示了生物功能化的金球形NP(Bio-NP)的ζ电位(Zpot)与免疫夹心法检测癌胚抗原(CEA)的SPR传感器反应增强的关系。 ,是结直肠癌的癌症标记。特别是,我们通过改变结合在其表面上的肽(链霉亲和素或抗CEA抗体)的量来制备生物功能纳米颗粒。通过SPR测量这些生物功能纳米颗粒的特异性和非特异性传感器响应,重现性和胶体稳定性,并将其与ζ电位值进行比较。这些参数首先在缓冲溶液中测量,然后在生物传感器的表面暴露于血浆中时再次测量,最后在将纳米颗粒浸入血浆中并在生物传感器上过夜流动时再次测量。我们发现,ζ电位值可以指导生物功能NP的设计,即使在诸如血浆等复杂的基质中,其结合效率也得到提高,非特异性传感器响应降低,具有适当的可重复性和胶体稳定性。

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