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Fiber-based label-free D-dimer detection for early diagnosis of venous thromboembolism

机译:基于纤维的无标记D-二聚体检测可早期诊断静脉血栓栓塞

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D-dimer is a useful diagnostic biomarker for deep vein thrombosis or pulmonary embolism, collectively referred to as venous thromboembolism (VTE). The ability to detect in real-time the amount of D-dimer with a fast and reliable method is a key step to anticipate the appearance of these diseases. The combination of fiber-optic-based platforms for biosensing with the nanotechnologies is opening up the chance for the development of in situ, portable, lightweight, versatile, reliable and high-performance optical sensing devices towards lab-on-fiber technology. The generation of lossy mode resonances (LMRs) by means of the deposition of nm-thick absorbing metal-oxide films on special geometric-modified fibers allows measuring precisely and accurately surface refractive index changes, which are due to the binding interaction between a biological recognition element and the analyte under investigation. This approach enhances the light-matter interaction in a strong way, thus turning out to be more sensitive compared to other optical technology platforms, such as fiber gratings or surface plasmon resonance. Here, the results of a highly specific and sensitive biosensor for the detection of D-dimer based on LMR in fiber-optics are presented by monitoring in real-time the shift of the LMR related to the biomolecule interactions thanks to a conventional wavelength-interrogation system and an ad-hoc developed microfluidics. A detection limit of 100 ng/mL, a value 5-fold below the clinical cutoff value, has been attained for D-dimer spiked in human serum. The comparison of the results achieved with proteomics-based methodologies, which allows for the identification of beta-and gamma-chains of fibrinogen, demonstrates the ability of our platform to specifically (>90%) recognize D-dimer.
机译:D-二聚体是用于深静脉血栓形成或肺栓塞(统称为静脉血栓栓塞(VTE))的有用的诊断生物标志物。利用快速可靠的方法实时检测D-二聚体含量的能力是预测这些疾病出现的关键步骤。用于生物传感的基于光纤的平台与纳米技术的结合为面向光纤实验室技术的原位,便携式,轻便,多功能,可靠和高性能的光学传感设备的开发打开了机会。通过在特殊的几何改性纤维上沉积nm厚的吸收性金属氧化物膜来产生有损模共振(LMR),可以精确地测量表面折射率的变化,这是由于生物识别之间的结合相互作用而引起的。元素和被分析物。与其他光学技术平台(例如光纤光栅或表面等离振子共振)相比,这种方法可以极大地增强光与物质的相互作用,因此变得更加敏感。在此,通过实时监测与传统分子波长查询有关的与生物分子相互作用相关的LMR的位移,提出了一种用于检测光纤中基于LMR的D-二聚体的高度特异性和灵敏的生物传感器的结果。系统和临时开发的微流体技术。对于加标在人血清中的D-二聚体,已达到100 ng / mL的检测限,比临床临界值低5倍。与基于蛋白质组学的方法学所获得的结果进行比较,可以鉴定血纤蛋白原的β链和γ链,这表明我们平台能够特异性地(> 90%)识别D-二聚体。

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