Mandal Debdyuti, Indaleeb Mustahseen M, Younan Alexandra, Banerjee Sourav
Integrated Material Assessment and Predictive Simulation Laboratory, University of South Carolina, Columbia, SC, USA.
Sens Biosensing Res. 2022 Aug;37:100510. doi: 10.1016/j.sbsr.2022.100510. Epub 2022 Jul 14.
It is always challenging to diagnose a disease using a biosensor reliably, and quickly with high sensitivity and selectivity, simultaneosuly. Recently the world experienced a global pandemic caused by a novel coronavirus (COVID-19). Although the vaccines are available, COVID-19 resulted a huge threat to the entire world with high mortality rates. Irrespective of a specific disease, there is a constant need for a cheaper and faster in-vitro, lab-on-a-chip sensor with high sensitivity and selectivity. Such sensors will not only facilitate the disease detection but will expedite and vaccine development process through detection of its corresponding antibodies when developed. In this article, we present an ultrasonic guided wave sensor using 128° YX lithium niobate piezoelectric wafer, specially designed in a shape of a multi-threaded comb with cantilever beams which is equally selective and sensitive for the detection of corresponding antigen-antibody assays. As a proof of concept in this article, the diagnostic sensor is created and tested for detection of SARS-COV-2 antibodies. Sensors were functionalized with SARS-COV-2 antigens and target antibody for the same was detected. Unique and judicially tuned acoustic features are analyzed for successful detection of the right antibodies. The proposed lab-on-a-chip device utilizes a wide range of diagnostic frequencies resulting into a highly sensitive platform for the diagnostics even to the slightest biophysical changes. The proposed sensor is also believed to extend to the detection of various other antigens/antibodies of different diseases in the future.
使用生物传感器同时可靠、快速且高灵敏度和高选择性地诊断疾病一直具有挑战性。最近,世界经历了由新型冠状病毒(COVID-19)引起的全球大流行。尽管有疫苗可用,但COVID-19以高死亡率对整个世界构成了巨大威胁。无论特定疾病如何,始终需要一种更便宜、更快的体外芯片实验室传感器,具有高灵敏度和高选择性。这样的传感器不仅将有助于疾病检测,而且在开发疫苗时,通过检测其相应抗体,将加快疫苗开发过程。在本文中,我们展示了一种使用128°YX铌酸锂压电晶片的超声导波传感器,其特别设计为带有悬臂梁的多线程梳状形状,对检测相应的抗原-抗体分析具有同等的选择性和敏感性。作为本文概念验证,创建了诊断传感器并测试其对SARS-CoV-2抗体的检测。传感器用SARS-CoV-2抗原进行功能化,并检测了相应的目标抗体。分析了独特且经过合理调整的声学特征,以成功检测出正确的抗体。所提出的芯片实验室设备利用了广泛的诊断频率,形成了一个高度灵敏的平台,即使对最微小的生物物理变化也能进行诊断。所提出的传感器未来还有望扩展到检测不同疾病的各种其他抗原/抗体。