Molecularly Imprinted Electrochemical Sensors Based on Ti 3 C 2 T x -MXene and Graphene Composite Modifications for Ultrasensitive Cortisol Detection.
Hengchao LiuWenjing QinXinXin LiLei FengChangshun GuJunji ChenZhenhao TianJianxing ChenMin YangHanying QiaoXiujie GuoYan ZhangBoxin ZhaoShougen YinPublished in: Analytical chemistry (2023)
The increasing pressure and unhealthy lifestyle are gradually eroding the physical and mental health of modern people. As a key hormone responsible for maintaining the normal functioning of human systems, cortisol plays a vital role in regulating physiological activities. Moreover, cortisol can serve as a marker for monitoring psychological stress. The development of cortisol detection sensors carries immense potential, as they not only facilitate timely adjustments and treatments by detecting abnormal physiological indicators but also provide comprehensive data for conducting research on the correlation between cortisol and several potential diseases. Here, we report a molecularly imprinted polymer (MIP) electrochemical biosensor that utilizes a porous composite (MXG) modified electrode. MXG composite is prepared by combining Ti 3 C 2 T x -MXene sheets and graphene (Gr). MXG composite material with high conductive properties and large electroactive surface area promotes the charge transfer capability of the electrode surface, expands the effective surface area of the sensor, and increases the content of cortisol-imprinted cavities on the electrode, thereby improving the sensing ability of the sensor. By optimizing the preparation process, the prepared sensor has an ultralow lower limit of detection of 0.4 fM, a wide detection range of 1 fM-10 μM, and good specificity for steroid hormones and interfering substances with similar cortisol structure. The ability of the sensor to detect cortisol in saliva was also confirmed experimentally. This highly sensitive and selective cortisol sensor is expected to be widely used in the fields of physiological and psychological care.
Keyphrases
- molecularly imprinted
- label free
- solid phase extraction
- mental health
- gold nanoparticles
- loop mediated isothermal amplification
- healthcare
- real time pcr
- endothelial cells
- physical activity
- machine learning
- electronic health record
- ionic liquid
- palliative care
- human health
- depressive symptoms
- room temperature
- mass spectrometry
- low cost
- heat stress
- tissue engineering
- pain management
- simultaneous determination
- climate change
- metal organic framework
- artificial intelligence