Key Laboratory for Biorheological Science and Technology of Ministry of Education, Bioengineering College of Chongqing University, Chongqing, 400044, PR China.
Key Laboratory for Biorheological Science and Technology of Ministry of Education, Bioengineering College of Chongqing University, Chongqing, 400044, PR China.
Anal Chim Acta. 2024 Apr 22;1299:342441. doi: 10.1016/j.aca.2024.342441. Epub 2024 Mar 1.
In health assessment and personalized medical services, accurate detection of biological markers such as dopamine (DA) and uric acid (UA) in sweat is crucial for providing valuable physiological information. However, there are challenges in detecting sweat biomarkers due to their low concentrations, variations in sweat yield among individuals, and the need for efficient sweat collection.
We synthesized CuNi-MOF@rGO as a high-activity electrocatalyst and investigated its feasibility and electrochemical mechanism for simultaneously detecting low-concentration biomarkers UA and DA. Interaction between the non-coordinating carboxylate group and the sample produces effective separation signals for DA and UA. The wearable biomimetic biosensor has a wide linear range of 1-500 μM, with a detection limit of 9.41 μM and sensitivity of 0.019 μA μM cm for DA, and 10-1000 μM, with a detection limit of 9.09 μM and sensitivity of 0.026 μA μM cm for UA. Thus, our sensor performs excellently in detecting low-concentration biomarkers. To improve sweat collection, we designed a microfluidic-controlled device with hydrophilic modification in the microchannel. Experimental results show optimal ink flow at 2% concentration. Overall, we developed an innovative and highly active electrocatalyst, successfully enabling simultaneous detection of low-concentration biomarkers UA and DA.
This study provides a strategy for sweat analysis and health monitoring. Moreover, the sensor also showed good performance in detecting real sweat samples. This study has shown great potential in future advances in sweat analysis and health monitoring.
在健康评估和个性化医疗服务中,准确检测多巴胺(DA)和尿酸(UA)等生物标志物对于提供有价值的生理信息至关重要。然而,由于生物标志物在汗液中的浓度较低、个体间汗液产量的差异以及高效汗液采集的需求,对汗液生物标志物的检测存在挑战。
我们合成了 CuNi-MOF@rGO 作为一种高活性电催化剂,并研究了其同时检测低浓度生物标志物 UA 和 DA 的可行性和电化学机制。非配位羧酸盐基团与样品之间的相互作用产生了 DA 和 UA 的有效分离信号。可穿戴仿生生物传感器具有 1-500 μM 的宽线性范围,DA 的检测限为 9.41 μM,灵敏度为 0.019 μA μM cm,UA 的线性范围为 10-1000 μM,检测限为 9.09 μM,灵敏度为 0.026 μA μM cm。因此,我们的传感器在检测低浓度生物标志物方面表现出色。为了改善汗液采集,我们设计了一种带有微通道亲水改性的微流控控制装置。实验结果表明,最佳墨水浓度为 2%。总之,我们开发了一种创新且高活性的电催化剂,成功实现了低浓度生物标志物 UA 和 DA 的同时检测。
本研究为汗液分析和健康监测提供了一种策略。此外,该传感器在检测真实汗液样本时也表现出良好的性能。这项研究在未来的汗液分析和健康监测方面具有很大的潜力。