Kemp Emily, Palomäki Tommi, Ruuth Ida A, Boeva Zhanna A, Nurminen Teemu A, Vänskä Risto T, Zschaechner Laura K, Pérez Alejandro García, Hakala Tuuli A, Wardale Melissa, Haeggström Edward, Bobacka Johan
GlucoModicum Ltd, A.I. Virtasen Aukio 1, 00560, Helsinki, Finland.
GlucoModicum Ltd, A.I. Virtasen Aukio 1, 00560, Helsinki, Finland; Laboratory of Molecular Science and Engineering, Faculty of Science and Engineering, Åbo Akademi University, Henriksgatan 2, 20500, Åbo, Finland.
Biosens Bioelectron. 2022 Jun 15;206:114123. doi: 10.1016/j.bios.2022.114123. Epub 2022 Mar 1.
We integrated a magnetohydrodynamic fluid extractor with an amperometric glucose biosensor to develop a wearable device for non-invasive glucose monitoring. Reproducible fluid extraction through the skin and efficient transport of the extracted fluid to the biosensor surface are prerequisites for non-invasive glucose monitoring. We optimized the enzyme immobilization and the interface layer between the sensing device and the skin. The monitoring device was evaluated by extracting fluid through porcine skin followed by glucose detection at the biosensor. The biosensor featured a screen-printed layer of Prussian Blue that was coated with a layer containing glucose oxidase. Both physical entrapment of glucose oxidase in chitosan and tethering of glucose oxidase to electrospun nanofibers were evaluated. Binding of glucose oxidase to nanofibers under mild conditions provided a stable biosensor with analytical performance suitable for accurate detection of micromolar concentrations of glucose. Hydrogels of varying thickness (95-2000 μm) as well as a thin (30 μm) nanofibrous polycaprolactone mat were studied as an interface layer between the biosensor and the skin. The effect of mass transfer phenomena at the biosensor-skin interface on the analytical performance of the biosensor was evaluated. The sensing device detected glucose extracted through porcine skin with an apparent (overall) sensitivity of -0.8 mA/(M·cm), compared to a sensitivity of -17 mA/(M·cm) for measurement in solution. The amperometric response of the biosensor correlated with the glucose concentration in the fluid that had been extracted through porcine skin with the magnetohydrodynamic technique.
我们将磁流体动力流体提取器与安培型葡萄糖生物传感器集成在一起,开发出一种用于无创葡萄糖监测的可穿戴设备。通过皮肤进行可重复的流体提取以及将提取的流体有效传输到生物传感器表面是无创葡萄糖监测的先决条件。我们优化了酶固定化以及传感设备与皮肤之间的界面层。通过猪皮提取流体,然后在生物传感器上进行葡萄糖检测,对监测设备进行了评估。该生物传感器的特点是有一层丝网印刷的普鲁士蓝,上面涂有一层含有葡萄糖氧化酶的层。评估了葡萄糖氧化酶在壳聚糖中的物理包埋以及葡萄糖氧化酶与电纺纳米纤维的连接。在温和条件下葡萄糖氧化酶与纳米纤维的结合提供了一种稳定的生物传感器,其分析性能适合于准确检测微摩尔浓度的葡萄糖。研究了不同厚度(95 - 2000μm)的水凝胶以及薄(30μm)的纳米纤维聚己内酯垫作为生物传感器与皮肤之间的界面层。评估了生物传感器 - 皮肤界面处传质现象对生物传感器分析性能的影响。该传感设备检测通过猪皮提取的葡萄糖,表观(总体)灵敏度为 -0.8 mA/(M·cm),而在溶液中测量的灵敏度为 -17 mA/(M·cm)。生物传感器的安培响应与通过磁流体动力技术从猪皮中提取的流体中的葡萄糖浓度相关。