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使用无标记和多重金纳米棒生物探针定量检测心脏生物标志物用于心肌梗死诊断。

Quantification of cardiac biomarkers using label-free and multiplexed gold nanorod bioprobes for myocardial infarction diagnosis.

作者信息

Tang Liang, Casas Justin

机构信息

Department of Biomedical Engineering, University of Texas at San Antonio, One UTSA Circle, San Antonio, TX 78249, USA.

Department of Biomedical Engineering, University of Texas at San Antonio, One UTSA Circle, San Antonio, TX 78249, USA.

出版信息

Biosens Bioelectron. 2014 Nov 15;61:70-5. doi: 10.1016/j.bios.2014.04.043. Epub 2014 May 14.

Abstract

Gold nanorod (GNR) is an attractive optical transducer for label-free biosensing owing to the localized surface plasmon resonance (LSPR) which is highly sensitive to the dielectric constant of the surrounding medium modulated by biological bindings. By adjusting the nanorod aspect ratio (length to width ratio), desired absorption wavelength can be continuously tuned from 600 to 1100 nm. Here we demonstrated a linear relationship between the aspect ratio and the LSPR peak wavelength. Taking advantage of this tunability feature, we developed a multiplexed GNR sensor by combining nanorods with distinct LSPR wavelengths. Specifically, GNRs of AR 2.1 and 4.2 exhibiting longitudinal plasmonic band of 640 and 830 nm, respectively, were functionalized with specific antibody. Concentrations of multiple analytes were measured by correlating to the spectral shift at the distinct plasmon band maxima upon specific binding. The practical use of this mixed bioprobes for simultaneous quantification of cardiac biomarkers (myoglobin and cardiac troponin I) in the clinically significant sensing range was described. The LSPR red shift magnitude is linearly proportional to the increase in the target analyte concentration (R(2)=0.98). The calibration curve can clearly differentiate varying biomarker amounts with a high specificity. For multiplexed biosensing, the plasmon shift at the dedicated peak wavelength can be specifically correlated with spiked biomarker for simultaneous detection in the sample mixture. This technology can be further transformed onto miniaturized biochips based on the nanosized optical transducer to allow point-of-care blood testing for risk stratifications of cardiac patients in clinical settings.

摘要

金纳米棒(GNR)是一种极具吸引力的用于无标记生物传感的光学换能器,这归因于其局域表面等离子体共振(LSPR),该共振对由生物结合所调制的周围介质的介电常数高度敏感。通过调整纳米棒的纵横比(长度与宽度之比),可将所需的吸收波长在600至1100nm范围内连续调谐。在此,我们展示了纵横比与LSPR峰值波长之间的线性关系。利用这种可调谐特性,我们通过将具有不同LSPR波长的纳米棒组合在一起,开发了一种复用GNR传感器。具体而言,纵横比为2.1和4.2的GNR分别表现出640nm和830nm的纵向等离子体带,用特异性抗体进行功能化修饰。通过将特定结合时不同等离子体带最大值处的光谱位移与之相关联,来测量多种分析物的浓度。描述了这种混合生物探针在临床显著传感范围内同时定量心脏生物标志物(肌红蛋白和心肌肌钙蛋白I)的实际应用。LSPR红移幅度与目标分析物浓度的增加呈线性比例关系(R(2)=0.98)。校准曲线能够以高特异性清晰区分不同生物标志物的量。对于复用生物传感,专用峰值波长处的等离子体位移可与加标的生物标志物特异性相关联,以便在样品混合物中进行同时检测。基于纳米尺寸的光学换能器,该技术可进一步转化为小型化生物芯片,以实现临床环境中心脏病患者风险分层的即时床旁血液检测。

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