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Polyethylene glycol passivated nanoplasmonic biosensor for sensitive detection in complex biological samples

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Item type:Araştırmacı/Yazar,
Kılıç, Abdulhalim
Doktor Ogretim uyesi

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Yayıncı

Gumushane University Journal of Science and Technology Institute

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Araştırma Projeleri

Akademik Birimler

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Özet

Nanoplasmonic biosensors hold immense potential for diagnostics, yet their application in complex biological fluids is significantly hampered by non-specific binding (NSB). This study reports the development and systematic optimization of a robust gold nanoparticle (AuNP)-based localized surface plasmon resonance (LSPR) platform on a 96-well plate format, engineered to minimize NSB for reliable sensing. For this purpose, ~30 nm citrate-stabilized AuNPs were first synthesized and immobilized onto polyethylenimine (PEI) coated well plate bottoms. To mitigate surface fouling, PEI-AuNP platform was passivated using various concentrations of thiol-polyethylene glycol 2000 (PEG2K)-N-Hydroxysuccinimide (NHS). The anti-fouling efficacy was rigorously evaluated against both bovine serum albumin (BSA) and the more challenging fetal bovine serum (FBS). The platform's functionality for specific detection was then validated using a model IgG/anti-IgG immunoassay. The optimized PEI-AuNP platform exhibited a characteristic LSPR peak at ~527 nm and demonstrated a refractive index sensitivity of 55.6 nm/RIU. Critically, surface passivation with heterobifunctional PEG at concentrations of 50 µM and higher effectively resisted biofouling, resulting in statistically insignificant LSPR shifts upon exposure to both BSA and FBS (p gt; 0.1). The platform's quantitative performance was validated with a model immunoassay in undiluted FBS, yielding a limit of detection (LOD) of 0.73 nM. This study presents a well-characterized and robust nanoplasmonic biosensor platform on a standard 96-well plate, in which a single-molecule, heterobifunctional PEG-based surface chemistry is systematically optimized to achieve resistance to non-specific binding in complex biological media, representing an important step toward the development of high-throughput, label-free, and sensitive diagnostic assays suitable for point-of-care applications.

Tanım

Dergi veya Seri

Gümüşhane Üniversitesi Fen Bilimleri Enstitüsü Dergisi

ISSN

2146-538X

ISBN

Haklar

OPEN

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