College of Science, Harbin Institute of Technology, Shenzhen, Guangdong, 518055, PR China.
College of Optoelectronic Engineering, Shenzhen University, Shenzhen, Guangdong, 518060, PR China.
Biosens Bioelectron. 2022 Dec 1;217:114719. doi: 10.1016/j.bios.2022.114719. Epub 2022 Sep 14.
Rapid and accurate monitoring of glucose, lactic acid, pyruvic acid, and 3-hydroxybutyric acid is essential in preventing, diagnosing, and treating diabetes, lactic acidosis and diabetic ketoacidosis. Herein, a novel sensing chip for multi-index determination of diabetes, lactic acidosis, and diabetic ketoacidosis was presented by integrating microfluidic device and photoelectrochemical (PEC) sensor. In order to block the interference from the reductive species in real samples, the PEC sensor was divided into a biocathode and a photoanode, which were installed separately in the upper and bottom layers of the device. The photoanodes were modified with ZnInS nanoflower as photosensitive material, while enzymes for catalyzing the analytes were immobilized on the biocathodes. The PEC chip displayed wide detection ranges with low detection limits of 0.035 μM, 0.34 μM, 3.3 μM and 0.035 μM for the four analytes (S/N = 3). The chip also demonstrated decent anti-interference capability and reliability in monitoring the four biomarkers in human serum. Furthermore, a household amperemeter was deployed to record the photocurrent signals, which helps to reduce the cost. By replacing the enzyme on the biocathode, the sensing chip could play a role in monitoring a broad range of species.
快速准确地监测葡萄糖、乳酸、丙酮酸和 3-羟丁酸对于预防、诊断和治疗糖尿病、乳酸性酸中毒和糖尿病酮症酸中毒至关重要。在此,通过集成微流控装置和光电化学(PEC)传感器,提出了一种用于糖尿病、乳酸性酸中毒和糖尿病酮症酸中毒多指标测定的新型传感芯片。为了阻止来自实际样品中还原物质的干扰,PEC 传感器分为生物阴极和光阳极,分别安装在装置的上下层。光阳极用 ZnInS 纳米花作为光敏材料进行修饰,而用于催化分析物的酶则固定在生物阴极上。PEC 芯片显示出宽的检测范围和低的检测限,对于四种分析物的检测限分别为 0.035 μM、0.34 μM、3.3 μM 和 0.035 μM(S/N = 3)。该芯片在监测人血清中的四种生物标志物时还表现出良好的抗干扰能力和可靠性。此外,使用家用安培计记录光电流信号有助于降低成本。通过更换生物阴极上的酶,该传感芯片可用于监测广泛的物质。