Karuppaiah Gopi, Velayutham Jayasudha, Hansda Shekhar, Narayana Nagesh, Bhansali Shekhar, Manickam Pandiaraj
Electrodics and Electrocatalysis Division, CSIR-Central Electrochemical Research Institute (CECRI), Karaikudi, Tamil Nadu 630 003, India.
Electrodics and Electrocatalysis Division, CSIR-Central Electrochemical Research Institute (CECRI), Karaikudi, Tamil Nadu 630 003, India; Academy of Scientific & Innovative Research (AcSIR), Ghaziabad, Uttar Pradesh 201 002, India.
Bioelectrochemistry. 2022 Jun;145:108098. doi: 10.1016/j.bioelechem.2022.108098. Epub 2022 Mar 16.
Continuous monitoring of stress through detecting specific biochemical markers such as cortisol plays a crucial role in the early detection of various diseases. Electrochemical aptamer sensor involving binding induced conformational change allows the continuous measurement of biomarkers. A reagent-less aptamer-based biosensing platform that allows a continuous and real-time cortisol measurement is developed in this context. The aptamer is conjugated with methylene blue, which acts as a redox reporter to probe the cortisol binding quantitatively on the sensor surface. The cortisol specific aptamers were chemically modified with amine and thiol functional groups to facilitate redox reporter conjugation and attachment of aptamer to a gold electrode, respectively. The sensor achieves a clinically meaningful cortisol concentration ranging from 0.05 ng/mL to 100 ng/mL and provides good selectivity when challenged with structurally similar targets. The reagent-less measurement capability was also demonstrated using an undiluted human serum. The newly developed cortisol sensor can enable the systemic cortisol measurement for providing insights into cortisol related clinical conditions and medical treatments.
通过检测皮质醇等特定生化标志物来持续监测压力,在各种疾病的早期检测中起着至关重要的作用。基于结合诱导构象变化的电化学适体传感器能够持续测量生物标志物。在此背景下,开发了一种基于适体的无试剂生物传感平台,可实现皮质醇的连续实时测量。该适体与亚甲蓝共轭,亚甲蓝作为氧化还原报告分子,用于定量探测传感器表面的皮质醇结合情况。皮质醇特异性适体分别用胺基和硫醇官能团进行化学修饰,以促进氧化还原报告分子的共轭以及适体与金电极的连接。该传感器可实现临床意义上0.05 ng/mL至100 ng/mL的皮质醇浓度测量,并且在面对结构相似的目标物时具有良好的选择性。使用未稀释的人血清也证明了其无试剂测量能力。新开发的皮质醇传感器能够实现系统性皮质醇测量,为深入了解与皮质醇相关的临床状况和医学治疗提供依据。