Research Center of Experimental Acupuncture Science, College of Acumox and Tuina, Tianjin University of Traditional Chinese Medicine, Tianjin, 301617, PR China.
College of Pharmaceutical Engineering of Traditional Chinese Medicine, Tianjin University of Traditional Chinese Medicine, Tianjin, 301617, PR China; State Key Laboratory of Component-based Chinese Medicine, Tianjin University of Traditional Chinese Medicine, Tianjin 301617, PR China; Haihe Laboratory of Modern Chinese Medicine, Tianjin, 301617, PR China.
Biosens Bioelectron. 2023 Sep 1;235:115383. doi: 10.1016/j.bios.2023.115383. Epub 2023 May 12.
Rapid adenosine (ADO) signaling, on the time frame of seconds, regulates physiological and pathological processes, including the therapeutic efficacy of acupuncture. Nevertheless, standard monitoring strategies are limited by poor temporal resolution. Herein, an implantable needle-type microsensor capable of monitoring ADO release in vivo in response to acupuncture in real time has been developed. Electrocatalytic Prussian Blue nanoparticles, an immobilized multienzyme system, and a permselective poly-o-phenylenediamine-based membrane were used for the sequential modification of the sensing region of the electrode. The resultant sensor can perform amperometric measurements of ADO levels in response to a very low level of applied potential (-0.05 V vs Ag/AgCl). This microsensor also functioned across a broad linear range (0-50 μM) and exhibited good sensitivity (1.1 nA/μM) with a rapid response time of under 5 s. Importantly, the sensor also exhibited good reproducibility and high selectivity. For in vivo animal studies, the microsensor was employed for the continuous assessment of instantaneous ADO release at the ST36 (Zusanli) acupoint when this acupoint was subjected to twirling-rotating acupuncture manipulation. Benefiting from superior sensor in vivo performance and stability, the positive correlation between the variability in acupuncture-induced ADO release and the stimulus intensity levels that affect the clinical benefit can be demonstrated for the first time. Overall, these results highlight a powerful approach to analyzing the in vivo physiological effects of acupuncture, expanding application realm of micro-nano sensor technology on a fast time scale.
快速腺苷(ADO)信号在秒级时间范围内调节生理和病理过程,包括针灸的治疗效果。然而,标准监测策略受到时间分辨率差的限制。在此,开发了一种可植入的针型微传感器,能够实时监测针刺时体内 ADO 的释放,以进行体内实时监测。电催化普鲁士蓝纳米粒子、固定化多酶体系和基于聚邻苯二胺的选择性渗透膜被用于电极传感区域的顺序修饰。所得传感器可以对施加的非常低的电位(-0.05 V 对 Ag/AgCl)做出响应,进行 ADO 水平的电流测量。该微传感器还具有较宽的线性范围(0-50 μM)和良好的灵敏度(1.1 nA/μM),响应时间小于 5 s。重要的是,该传感器还表现出良好的重现性和高选择性。在体内动物研究中,该微传感器用于连续评估 ST36(足三里)穴位在接受捻转针法刺激时的即时 ADO 释放。得益于传感器在体内的优异性能和稳定性,可以首次证明针灸诱导的 ADO 释放变化的可变性与影响临床疗效的刺激强度水平之间存在正相关关系。总的来说,这些结果突出了一种强大的方法,可以分析针灸的体内生理效应,扩展微纳米传感器技术在快速时间尺度上的应用领域。