4.8 Article

AC Electroosmosis-Enhanced Nanoplasmofluidic Detection of Ultralow-Concentration Cytokine

期刊

NANO LETTERS
卷 17, 期 4, 页码 2374-2380

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.6b05313

关键词

Nanorod biosensor; AC electroosmosis; localized surface plasmon resonance; immunoassay; cytokine analysis

资金

  1. National Institute of Health [R01 HL119542]
  2. National Science Foundation [CBET1263889]
  3. Coulter Foundation
  4. Michigan Institute for Clinical & Health Research - National Center for Advancing Translational Sciences [2UL1TR000433]

向作者/读者索取更多资源

Label-free, nanoparticle-based plasmonic optical biosensing, combined with device miniaturization and microarray integration, has emerged as a promising approach for rapid, multiplexed biomolecular analysis. However, limited sensitivity prevents the wide use of such integrated label-free nanoplasmonic biosensors in clinical and life science applications where low abundance biomolecule detection is needed. Here, we present a nanoplasmofluidic device integrated with microelectrodes for rapid, label-free analysis of a low-abundance cell signaling protein, detected by AC electroosmosis-enhanced localized surface plasmon resonance (ACE-LSPR) biofunctional nanopartide imaging. The ACE-LSPR device is constructed using both bottom up and top-down sensor fabrication methods, allowing the seamless integration of antibody-conjugated gold nanorod (AuNR) biosensor arrays with microelectrodes on the same microfluidic platform. Applying an AC voltage to microelectrodes while scanning the scattering light intensity variation of the AuNR biosensors results in significantly enhanced biosensing performance. The AC electroosmosis (ACEO) based enhancement of the biosensor performance enables rapid (5-15 min) quantification of IL-1 beta, a pro-inflammatory cytokine biomarker, with a sensitivity down to 158.5 fg/mL (9.1 fM) for spiked samples in PBS and 1 pg/mL (58 fM) for diluted human serum. Together with the optimized detection sensitivity and speed, our study presents the first critical step toward the application of nanoplasmonic biosensing technology to immune status monitoring guided by low-abundance cytokine measurement.

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