Department of Biomedical Engineering, City University of Hong Kong, Kowloon, Hong Kong SAR.
Department of Chemistry, City University of Hong Kong, Kowloon, Hong Kong SAR.
Sci Adv. 2024 Nov 22;10(47):eadq9207. doi: 10.1126/sciadv.adq9207.
Closed-loop strategies offer advanced therapeutic potential through intelligent disease management. Here, we develop a hydrogel-based, single-component, organic electronic device for closed-loop neurotherapy. Fabricated out of conductive hydrogels, the device consists of a flexible array of microneedle electrodes, each of which can be individually addressed to perform electrical recording and control chemical release with sophisticated spatiotemporal control, thus pioneering a smart antiseizure therapeutic system by combining electrical and pharmacological interventions. The recorded neural signal acts as the trigger for a voltage-driven drug release in detected pathological conditions predicted by real-time electrophysiology analysis. When implanted into epileptic animals, the device enables autonomous antiseizure management, where the dosing of antiepileptic drug is controlled in a time-sensitive, region-selective, and dose-adaptive manner, allowing the inhibition of seizure outbursts through the delivery of just-necessary drug dosages. The side effects are minimized with dosages three orders of magnitude lower than the usage in approaches simulating existing clinical treatments.
闭环策略通过智能疾病管理提供了先进的治疗潜力。在这里,我们开发了一种基于水凝胶的、单组分的有机电子设备,用于闭环神经治疗。该设备由导电水凝胶制成,由一个灵活的微针电极阵列组成,每个电极都可以单独寻址,以进行电记录,并通过复杂的时空控制来控制化学物质的释放,从而通过电和药理干预相结合,开创了一种智能抗癫痫治疗系统。记录的神经信号作为触发因素,在实时电生理学分析预测的病理条件下,驱动电压驱动的药物释放。当植入癫痫动物体内时,该设备能够实现自主抗癫痫管理,其中抗癫痫药物的剂量以时间敏感、区域选择性和剂量适应性的方式进行控制,只通过输送必要的药物剂量来抑制癫痫发作。与模拟现有临床治疗方法的方法相比,该设备的使用剂量降低了三个数量级,副作用最小。