MoRe Research Örnsköldsvik AB, SE-891 22, Örnsköldsvik, Sweden.
Department of Chemical Engineering, Faculty of Engineering, Mahidol University, Nakhon Pathom, 73170, Thailand.
Sci Rep. 2024 Oct 8;14(1):23434. doi: 10.1038/s41598-024-74899-z.
Electrochemical analysis of glucose monitoring without painful blood collection provides a new noninvasive route for monitoring glucose levels. Thus, in this study, biobased cellulosic papers (methylated and phosphorylated one) based glucose monitoring sensor is developed. To achieve high hydrophilicity, microfibrillated cellulose (MFC) were functionalized using hexokinase mediated phosphorylation (-OH to -[Formula: see text]). The instinctive increased surface charge density from 36.2 ± 3.4 to 118.4 ± 1.2 µmol/g and decrease contact angle (45°-22°) confirms the increased hydrophilicity of paper. Furthermore, functionalized phos-MFC paper increase the capillary flow of sweat, required low quantity (1 µl) of sweat for accurate analysis of glucose level. Additionally, chemically induced methyl groups (-CH) make the sensor more barrier to other chemicals. In addition, a multilayer patch design combined with sensor miniaturization was used to lead to an increase in the efficiency of the sweat collection and sensing processes. Besides, this paper sensor integrated with artificial transdermal drug delivery unit (agarose gel as skin) for monitoring glucose levels in sweat. The patch monitoring system increase the accuracy of sensing with fluctuation in sweat vol. (1-4 µl), temperature (20-70 °C), and pH (4.0-7.0). In addition, temperature dependency artificial transdermal delivery (within agarose gel) of drug metformin agrees the measurement accuracy of sensor, called "switch system" without any error. As a result, the reported MFC paper based multi-patch disposable sensing system provides a novel closed-loop solution for the noninvasive sweat-based management of diabetes mellitus.
无痛苦采血的葡萄糖监测电化学分析为监测血糖水平提供了一种新的非侵入性途径。因此,本研究开发了基于生物基纤维素纸(甲基化和磷酸化)的葡萄糖监测传感器。为了实现高亲水性,使用己糖激酶介导的磷酸化(-OH 到 -[Formula: see text])对微纤化纤维素(MFC)进行功能化。自发增加的表面电荷密度从 36.2 ± 3.4 增加到 118.4 ± 1.2 µmol/g,接触角从 45°降低到 22°,证实了纸张亲水性的提高。此外,功能化的 phos-MFC 纸增加了汗液的毛细流动,仅需 1 µl 的少量汗液即可准确分析葡萄糖水平。此外,化学诱导的甲基(-CH)使传感器对其他化学物质具有更高的阻隔性。此外,还采用多层贴片设计与传感器小型化相结合,以提高汗液收集和传感过程的效率。此外,该纸传感器与人工透皮药物输送单元(琼脂糖凝胶作为皮肤)集成在一起,用于监测汗液中的葡萄糖水平。该贴片监测系统通过汗液体积波动(1-4 µl)、温度(20-70°C)和 pH 值(4.0-7.0)提高了传感的准确性。此外,在琼脂糖凝胶内的药物二甲双胍的温度依赖性人工透皮输送与传感器的测量精度相吻合,称为“开关系统”,没有任何误差。结果,所报道的基于 MFC 纸的多贴片一次性传感系统为非侵入性基于汗液的糖尿病管理提供了一种新的闭环解决方案。