多巴胺
光遗传学
神经递质
神经科学
微透析
类有机物
微流控
化学
细胞外
生物分析
生物物理学
纳米技术
脑干
毒品检测
药物输送
自愈水凝胶
突触裂
生物
人脑
神经传递
HEK 293细胞
抑制性突触后电位
作者
Hanjun Cho,Youngjun Kim,Nahyun Yoon,Trung Hoang,Jungho Ahn,Beomsu Kim,Gyusoo Bak,T.R. Lee,Won Jong Yu,Jong‐Chan Park,Inki Kim
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-09-17
卷期号:20 (38): 26096-26111
标识
DOI:10.1021/acsnano.6c09629
摘要
Abstract Disruption of dopamine signaling is central to Parkinson’s disease (PD) pathology and a primary target of symptomatic therapy. However, direct measurement of dopamine dynamics in human neural tissue with high sensitivity, temporal resolution, and compatibility with three-dimensional models remains technically challenging. Here, an organoid-on-a-chip platform that integrates a cavity-coupled nanoplasmonic aptasensor with human brainstem organoids (hBSOs) and microfluidic control is employed for label-free monitoring of the extracellular dopamine response. The plasmonic aptasensor achieves a limit of detection of 8.3 pM with minimal cross-reactivity with related catecholamines. Under static conditions, dopamine secretion from healthy- and PD-line hBSOs is quantified, revealing reduced basal secretion in PD-line organoids and selective enhancement by PD-targeted drugs compared with non-PD agents. Under perfused microfluidic conditions, L-DOPA-induced dopamine changes are monitored continuously over 12 h, and real-time spectral peak shifts are reconstructed into dopamine concentration–time profiles to assess kinetic responses to drug treatment. This real-time, nanoplasmonic neurotransmitter sensing framework links controlled drug dosing to extracellular dopamine dynamics in human neural organoid-on-chip systems for preclinical evaluation of PD therapies and other neuroactive perturbations.
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