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Multiplex Serum Cytokine Immunoassay Using Nanoplasmonic Biosensor Microarrays

机译:纳米血浆生物传感器微阵列多重血清细胞因子免疫测定。

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Precise monitoring of the rapidly changing immune status during the course of a disease requires multiplex analysis of cytokines from frequently sampled human blood. However, the current lack of rapid, multiplex, and low volume assays makes immune monitoring for clinical decision-making (e.g., critically ill patients) impractical. Without such assays, immune monitoring is even virtually impossible for infants and neonates with infectious diseases and/or immune mediated disorders as access to their blood in large quantities is prohibited. Localized surface plasmon resonance (LSPR)-based microfluidic optical biosensing is a promising to fill this technical gap as it could potentially permit real-time refractometric detection of biomolecular binding on a metallic nanoparticle surface and sensor miniaturization, both leading to rapid and sample-sparing analyte analysis. Despite this promise, practical implementation of such a microfluidic assay for cytokine biomarker detection in serum samples has not been established primarily due to the limited sensitivity of LSPR biosensing. Here, we developed a high-throughput, label-free, multiarrayed OR optical biosensor device with 480 nanoplasmonic sensing spots in microfluidic channel arrays and demonstrated parallel multiplex immunoassays of six cytokines in a complex serum matrix on a single device chip while overcoming technical limitations. The device was fabricated using easy-to-implement, one-step microfluidic patterning and antibody conjugation of gold nanorods (AuNRs). When scanning the scattering light intensity across the microarrays of AuNR ensembles with dark-field imaging optics, our LSPR biosensing technique allowed for high-sensitivity quantitative cytokine measurements at concentrations down to 5-20 pg/mL from a 1 mu L serum sample. Using the nanoplasmonic biosensor microarray device, we demonstrated the ability to monitor the inflammatory responses of infants following cardiopulmonary bypass (CPB) surgery through tracking the time-course variations of their serum cytokines. The whole parallel on-chip assays, which involved the loading, incubation, and washing of samples and reagents, and 10-fold replicated multianalyte detection for each sample using the entire biosensor arrays, were completed within 40 min.
机译:要精确监控疾病过程中迅速变化的免疫状态,需要对经常采样的人血中的细胞因子进行多重分析。然而,当前缺乏快速,多重和低容量的测定使得对临床决策(例如危重患者)的免疫监测不切实际。如果不进行此类检测,则对于患有传染病和/或免疫介导的疾病的婴儿和新生儿,甚至几乎不可能进行免疫监控,因为禁止了其大量血液的进入。基于局部表面等离振子共振(LSPR)的微流体光学生物传感技术有望填补这一技术空白,因为它可以潜在地实现对金属纳米颗粒表面上生物分子结合的实时折光检测和传感器的小型化,从而实现快速和样品保存分析物分析。尽管有这种希望,主要由于LSPR生物传感的灵敏度有限,尚未建立用于血清样品中细胞因子生物标志物检测的这种微流体测定的实际实施方法。在这里,我们开发了一种高通量,无标签,多阵列或光学生物传感器设备,在微流体通道阵列中具有480个纳米等离子体传感点,并在克服技术局限的同时,在单个设备芯片上展示了复杂血清基质中六种细胞因子的并行多重免疫测定。该设备使用易于实现的一步式微流控图形化和金纳米棒(AuNRs)抗体结合制成。当使用暗场成像光学器件扫描AuNR团簇微阵列上的散射光强度时,我们的LSPR生物传感技术允许从1μL血清样品中进行低至5-20 pg / mL浓度的高灵敏度定量细胞因子测量。使用纳米等离子体生物传感器微阵列设备,我们展示了通过追踪婴儿血清细胞因子随时间变化来监测婴儿体外循环(CPB)手术后炎症反应的能力。 40分钟内完成了完整的并行芯片上测定,包括样品和试剂的装载,孵育和洗涤,以及使用整个生物传感器阵列对每个样品进行10倍重复的多分析物检测。

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