癫痫
荧光
荧光寿命成像显微镜
材料科学
癫痫外科
生物医学工程
人口
神经科学
光学成像
切除术
医学
瞬态(计算机编程)
神经影像学
外科切除术
难治性癫痫
脑电图
纳米技术
成像技术
作者
Xin Wang,Bohan Li,Min Li,Yuncan Chen,Yurui Tang,Aiyan Ji,Jing Zhao,Chenchen Sun,Zhenrong Li,Dan Ni,Yanlong Cheng,Wanbing Sun,Zuhai Lei,J. Wang,Annamaria Vezzani,Xiaoyu Li,Cong Li,Xiao Zhu,Zhen Cheng,Cong Wang
标识
DOI:10.1002/adma.202514336
摘要
Accurate localization of the epileptogenic network (EN) is essential for surgical intervention in drug-resistant epilepsy, which affects over 15 million people globally. However, current approaches are limited by their low specificity, insufficient sensitivity, and challenges in capturing transient epileptiform discharges, which results in surgical success rates ranging from 30% to 70%. Here, we present a cascade-amplified ratiometric imaging strategy employing an engineered fluorescent polymeric probe (CAR-FM) that tandemly targets two temporally distinct pathological features within the epileptogenic network: transient acidosis fluctuations triggered by discharges and sustained neuroinflammation. This dual-cascade amplification enables CAR-FM to achieve more than a >150-fold enhancement in fluorescence ratio with markedly improved specificity and sensitivity. In addition, CAR-FM demonstrates robust applicability across four epilepsy models, which enables time-locked EN delineation for up to 100 h. In epileptic mouse models, CAR-FM-guided resection yields a 67% greater reduction in seizure burden compared to that of conventional electrocorticography. Given its ultrahigh imaging sensitivity and biocompatibility, CAR-FM offers a clinically translatable strategy for intraoperatively refining EN visualization, which potentially expands the population eligible for epilepsy surgery.
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