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基于 MWCNT-PPY 纳米复合物的无标记、超灵敏、快速检测血浆中 FDA 批准的 TBI 特异性 UCHL1 生物标志物:迈向即时诊断 TBI 的一步。

Label-free, ultrasensitive and rapid detection of FDA-approved TBI specific UCHL1 biomarker in plasma using MWCNT-PPY nanocomposite as bio-electrical transducer: A step closer to point-of-care diagnosis of TBI.

机构信息

Department of Electrical Engineering, Indian Institute of Technology Hyderabad, 502285, India.

Department of Electronics and Communication Engineering, Indian Institute of Information Technology Surat, 395007, India.

出版信息

Biosens Bioelectron. 2022 Nov 15;216:114631. doi: 10.1016/j.bios.2022.114631. Epub 2022 Aug 12.

Abstract

Traumatic Brain Injury (TBI), a major cause of mortality and neurological disability affecting people of all ages worldwide, remains a diagnostic and therapeutic challenge to date. Rapid, ultra-sensitive, selective, and wide-range detection of TBI biomarkers in easily accessible body fluids is an unmet clinical need. Considering this, in this work, we report the design and development of a facile, label-free, highly stable and sensitive, chemi-impedance-based sensing platform for rapid and wide range detection of Ubiquitin-carboxy terminal hydrolase L1 (UCHL1: FDA-approved TBI specific plasma biomarker), using carboxylic functionalized MWCNTs embedded polypyrrole (PPY) nanocomposites (PPY/f-MWCNT). The said nanocomposites were synthesized using chemical oxidative polymerization method. Herein, the functionalized MWCNTs are used as conducting fillers so as to increase the polymer's dielectric constant according to the micro-capacitor model, thereby augmenting both DC electrical conductivity and AC dielectric property of the nanocomposite. The proposed immunosensing platform comprises of PPY/f-MWCNT modified interdigitated microelectrode (IDμEs) array, on which anti-UCHL1-antibodies are immobilized using suitable covalent chemistry. The AC electrical characterization of the nanocomposite modified IDμEs, with and without the antibodies, was performed through generic capacitance vs. frequency (C-F, 1 KHz - 1 MHz) and capacitance vs. applied bias (C-V, 0.1 V-1 V) measurements, using an Agilent B1500A parametric analyzer. The binding event of UCHL1 peptides to anti-UCHL1-antibodies was transduced in terms of normalised changes in parallel capacitance, via the C-F analysis. Further, we have tested the detection efficiency of the said immunoassay against UCHL1 spiked human plasma samples in the concentration range 10 fg/mL - 1 μg/mL. The proposed sensing platform detected UCHL1 in spiked-plasma samples linearly in the range of 10 fg/mL - 1 ng/mL with a sensitivity and LoD of 4.22 ((ΔC/C)/ng.mL)/cm and 0.363 fg/mL, respectively. Further, it showed excellent stability (30 weeks), repeatability, reproducibility, selectivity and interference-resistance. The proposed approach is label-free, and if desired, can be used in conjunction with DC measurements, for biosensing applications.

摘要

创伤性脑损伤 (TBI) 是全球各年龄段人群死亡和神经功能障碍的主要原因,至今仍是诊断和治疗的挑战。在容易获得的体液中快速、超灵敏、选择性和宽范围检测 TBI 生物标志物是未满足的临床需求。有鉴于此,在这项工作中,我们报告了一种简便、无标记、高稳定性和灵敏度的电化学生物传感器平台的设计和开发,用于快速和宽范围检测泛素羧基末端水解酶 L1 (UCHL1:FDA 批准的 TBI 特异性血浆生物标志物),使用羧酸功能化 MWCNTs 嵌入聚吡咯 (PPY) 纳米复合材料 (PPY/f-MWCNT)。所述纳米复合材料是通过化学氧化聚合方法合成的。在此,功能化 MWCNTs 用作导电填料,根据微电容器模型增加聚合物的介电常数,从而提高纳米复合材料的直流电导率和交流介电性能。所提出的免疫传感平台包括 PPY/f-MWCNT 修饰的叉指微电极 (IDμE) 阵列,在其上使用合适的共价化学固定抗 UCHL1 抗体。通过使用 Agilent B1500A 参数分析仪进行通用电容与频率 (C-F,1 kHz-1 MHz) 和电容与施加偏压 (C-V,0.1 V-1 V) 测量,对纳米复合材料修饰的 IDμE 进行了 AC 电特性表征,包括有无抗体。UCHL1 肽与抗 UCHL1 抗体的结合事件通过 C-F 分析转化为归一化的平行电容变化。此外,我们还测试了针对 UCHL1 加标人血浆样品在 10 fg/mL-1 μg/mL 浓度范围内的免疫测定的检测效率。在所提出的传感平台中,UCHL1 可以在 10 fg/mL-1 ng/mL 的范围内线性检测到加标血浆样品,灵敏度和 LoD 分别为 4.22((ΔC/C)/ng.mL)/cm 和 0.363 fg/mL。此外,它表现出优异的稳定性 (30 周)、重复性、再现性、选择性和抗干扰性。所提出的方法是无标记的,如果需要,它可以与直流测量结合使用,用于生物传感应用。

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