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Lab-on-a-Chip Immunoassay for Multiple Antibodies Using Microsphere Light Scattering and Quantum Dot Emission

机译:使用微球光散射和量子点发射的多种抗体的实验室内芯片免疫测定

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Detection of multiple biomarkers has recently received great interest from the biosensors community. These diagnostic methods must be rapid, specific, sensitive, and cost-effective. In 2006, our group demonstrated a successful lab-on-a-chip Immunoassay using microsphere light scattering, which is essentially a one-step, automated protocol, on a reusable chip. In the past, this had been difficult due to the limitations of microfluidic mixing and false-positive readings of particle immunoassays in a chip environment. In this current study, we conjugated quantum dots (QDs) onto microspheres to enable multiplex assays as well as to enhance the limit of detection (LOD). We named this configuration "nano-on-micro"or "NOM." Upon radiation with UVlight (380nm), a stronger light scattering signal is observed with NOMs than QDs or microspheres alone. Additionally, NOMs are easier to handle than QDs. Since QDs also provide fluorescent emission, we are able to utilize an increase in light scattering for detecting antigen-antibody reaction and a decrease in QD emission to identify which antibody (or antigen) is present. Two types of NOM combinations were used. One batch of microspheres was coated with QDs emitting at 655 nm and mouse IgG (mlgG); the other with QDs emitting at 605 nm and bovine serum albumin (BSA). A mixture of these two NOMs was used to identify either anti-mlgG or anti-BSA. NOM particles and target solutions were mixed in a microfluidic device and on-chip detection was performed using proximity optical fibers. Forward light scattering at 380 nm was collected. With the positive target, the scattering signal was increased. The LOD was 25 ng ml~(-1) (165 pM) with p<0.05. Fluorescent emission (655 or 605 nm) was simultaneously collected. Withthe positive target, the emission signal was attenuated. Therefore, we were able to detect two different antibodies simultaneously with two different detection protocols. We believe this NOM bioassay has the ability to screen for and detect multiple antibodies with minimal sample processing and handling.
机译:多次生物标志物的检测最近从生物传感器社区获得了极大的兴趣。这些诊断方法必须快速,特定,敏感,经济效益。 2006年,我们的小组使用微球光散射展示了一个成功的实验室免疫测定,基本上是可重复使用的芯片上的一步自动化协议。过去,由于微流体混合和芯片环境中的颗粒免疫测定的假阳性读数的局限性,这一直很困难。在本研究中,我们将量子点(QDS)缀合到微球中以使多重测定能够增强检测限(LOD)。我们将此配置命名为“Nano-On-Micro”或“NOM”。在用紫外线(380nm)辐射时,单独比QDS或微球的NOM表示更强的光散射信号。此外,NOM比QD更容易处理。由于QD还提供荧光发射,我们能够利用用于检测抗原 - 抗体反应的光散射的增加,并且QD发射的降低以鉴定存在哪种抗体(或抗原)。使用了两种类型的NOM组合。将一批微球涂覆有655nm和小鼠IgG(MLGG)的QDS发射;另一种QD在605nm和牛血清白蛋白(BSA)发射。这两种NOM的混合物用于鉴定抗MLGG或抗BSA。将NOM颗粒和靶溶液混合在微流体装置中,并使用近距离光纤进行片上检测。收集380nm的前向光散射。利用阳性靶,增加散射信号。 LOD为25ng ml〜(-1)(165 pm),p <0.05。同时收集荧光发射(655或605nm)。利用阳性目标,发射信号衰减。因此,我们能够用两种不同的检测方案同时检测两种不同的抗体。我们认为,这个NOM生物测定能够筛选和检测多种抗体,具有最小的样品加工和处理。

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