Yu Ketian, Ma Yukun, Wei Yiming, Chen Wanying, Dai Zhen, Cai Yu, Ye Xuesong, Liang Bo
Biosensor National Special Laboratory, Key Laboratory of Biomedical Engineering of Ministry of Education, College of Biomedical Engineering and Instrument Science, Zhejiang University, Hangzhou 310027, China.
Binjiang Institute of Zhejiang University, Hangzhou 310053, China.
Biosensors (Basel). 2025 May 12;15(5):310. doi: 10.3390/bios15050310.
Electrolytes play crucial roles in regulating nerve and muscle functions. Currently, microneedle technology enables real-time electrolyte monitoring through minimally invasive methods. However, due to the small size of microneedles, performing multi-layer modifications on individual microneedles and ensuring the integrity of these layers pose significant challenges. Additionally, the puncture efficiency of the electrodes will be affected by the structure of microneedle array integration. To address these issues, we primarily focus on developing a multi-parameter ion monitoring system based on microneedle arrays. By optimizing the surface reconstruction of electrode substrates, the adhesion between the electrode surface and the modification layer was improved, enhancing the stability of the electrodes. Potassium, sodium, and calcium ion-selective electrodes based on microneedles were fabricated, demonstrating good sensitivity and linearity. To tackle the puncture efficiency of microneedle arrays, finite element simulation was employed to investigate the mechanical properties of different structural designs of microneedle arrays during skin insertion. Ultimately, an integrated microneedle array was designed and assembled, and a multi-parameter ion monitoring system was developed, validated through in vitro simulations and in vivo animal experiments. This research provides valuable insights into the development and advancement of minimally invasive, multi-parameter dynamic monitoring technologies in clinical settings.
电解质在调节神经和肌肉功能方面发挥着关键作用。目前,微针技术能够通过微创方法实现实时电解质监测。然而,由于微针尺寸小,在单个微针上进行多层修饰并确保这些层的完整性面临重大挑战。此外,电极的穿刺效率会受到微针阵列集成结构的影响。为了解决这些问题,我们主要致力于开发基于微针阵列的多参数离子监测系统。通过优化电极基板的表面重构,提高了电极表面与修饰层之间的附着力,增强了电极的稳定性。制备了基于微针的钾、钠和钙离子选择性电极,显示出良好的灵敏度和线性度。为了解决微针阵列的穿刺效率问题,采用有限元模拟研究了不同结构设计的微针阵列在皮肤插入过程中的力学性能。最终,设计并组装了集成微针阵列,并开发了多参数离子监测系统,通过体外模拟和体内动物实验进行了验证。这项研究为临床环境中微创、多参数动态监测技术的发展和进步提供了有价值的见解。