Texas A&M University, Department of Biomedical Engineering, 101 Bizzell Street, College Station, Texas 77843, United StatesbUniversity of Strathclyde, Department of Pure and Applied Chemistry, 99 George Street, Glasgow G1 1RD, United Kingdom.
Texas A&M University, Department of Materials Science and Engineering, 575 Ross Street, College Station, Texas 77843, United States.
J Biomed Opt. 2016 Dec 1;21(12):127005. doi: 10.1117/1.JBO.21.12.127005.
Conjugation of aptamers and their corresponding analytes onto plasmonic nanoparticles mediates the formation of nanoparticle assemblies: molecularly bound nanoclusters that cause a measurable change in the colloid’s optical properties. The optimization of a surface-enhanced Raman spectroscopy (SERS) competitive binding assay utilizing plasmonic “target” and magnetic “probe” nanoparticles for the detection of the toxin bisphenol-A (BPA) is presented. These assay nanoclusters were housed inside three types of optofluidic chips patterned with magnetically activated nickel pads, in either a straight or array pattern. Both Fe 2 O 3 and Fe 2 CoO 4 were compared as potential magnetic cores for the silver-coated probe nanoparticles. We found that the Ag @ Fe 2 O 3 particles were, on average, more uniform in size and more stable than Ag @ Fe 2 CoO 4 , whereas the addition of cobalt significantly improved the collection time of particles. Using Raman mapping of the assay housed within the magnetofluidic chips, it was determined that a 1 × 5 array of 50 ?? ? m square nickel pads provided the most uniform SERS enhancement of the assay (coefficient of variation ? 25 % ) within the magnetofluidic chip. Additionally, the packaged assay demonstrated the desired response to BPA, verifying the technology’s potential to translate magnetic nanoparticle assays into a user-free optical analysis.
分子结合的纳米簇,导致胶体光学性质的可测量变化。本文提出了一种利用等离子体“靶”和磁性“探针”纳米粒子优化表面增强拉曼光谱(SERS)竞争结合分析检测毒素双酚 A(BPA)的方法。这些分析纳米簇被封装在三种带有磁性激活镍垫的光流控芯片中,呈直线或阵列图案。Fe 2 O 3 和 Fe 2 CoO 4 都被用作银涂覆探针纳米粒子的潜在磁性核进行了比较。我们发现,Ag @ Fe 2 O 3 粒子在尺寸上更均匀且更稳定,平均而言,比 Ag @ Fe 2 CoO 4 更稳定,而添加钴则显著提高了粒子的收集时间。通过对磁流控芯片内封装分析物的拉曼映射,确定了 1 × 5 个 50??? m 正方形镍垫阵列在磁流控芯片内提供了最均匀的 SERS 增强(变化系数? 25 %)。此外,封装后的分析物对 BPA 表现出了预期的响应,验证了将磁性纳米粒子分析转化为无需用户的光学分析的技术潜力。