Nanotip acetylcholine biosensor reveals cholinergic differentiated SH-SY5Y cells release partial vesicle content during exocytosis
Artikel i vetenskaplig tidskrift, 2026

Acetylcholine (ACh) is a central neurotransmitter in cognitive function, motor control, and synaptic modulation, yet its electrochemical inactivity and the rapid kinetics of exocytosis have hindered real-time quantal measurements. Micrometer-scale enzymatic ACh biosensors previously enabled sub-millisecond extracellular recordings but were too large for synaptic positioning and intracellular recordings. Here we present a short, ultrafast and low-noise amperometric ACh biosensor based on a needle-shaped carbon fiber nanotip electrode functionalized with gold nanoparticles and enzymes. The miniaturized geometry allows precise placement at neurite release sites and minimally invasive insertion into the cell cytoplasm, enabling high-temporal resolution monitoring of presynaptic exocytosis together with quantification of intracellular ACh vesicle content. We applied this platform to differentiated human cholinergic SH-SY5Y neuroblastoma cells, an established yet underutilized cell model for cholinergic signaling. The nanotip sensor successfully captured amperometric spikes from both intracellular vesicle burst events and presynaptic ACh release. Intracellular events released a larger amount of ACh than presynaptic exocytosis events, indicating a predominance of partial exocytosis mode in these cells. These results demonstrate the nanotip ACh biosensor as a unique tool for probing fusion pore dynamics at subcellular resolution and for providing quantitative insight into the quantal nature of cholinergic signaling in human neuronal models.

Partial exocytosis

Biosensor

Quantal storage

Amperometry

Ultrafast

Carbon fiber nanotip electrode

SH-SY5Y cells

Vesicle neurotransmitter analysis

Exocytosis

Full exocytosis

Acetylcholine

Författare

Yuanmo Wang

Chalmers, Kemi och kemiteknik, Kemi och biokemi

Ajay Pradhan

Göteborgs universitet

Pankaj Gupta

Chalmers, Kemi och kemiteknik, Kemi och biokemi

Jorg Hanrieder

Göteborgs universitet

Henrik Zetterberg

Göteborgs universitet

Ann-Sofie Cans

Chalmers, Kemi och kemiteknik, Kemi och biokemi

Bioelectrochemistry

1567-5394 (ISSN) 1878562x (eISSN)

Vol. 171 109260

Regulation in glutamate, acetylcholine and GABA chemical signalling

Carl Tryggers Stiftelse för Vetenskaplig Forskning (CTS21:1673), 2022-01-01 -- 2024-12-31.

Quantal fluctuations of glutamate in neurotransmission

Vetenskapsrådet (VR) (2020-04920), 2021-01-01 -- 2024-12-31.

Styrkeområden

Nanovetenskap och nanoteknik

Ämneskategorier (SSIF 2025)

Analytisk kemi

Neurovetenskaper

DOI

10.1016/j.bioelechem.2026.109260

PubMed

41812412

Mer information

Senast uppdaterat

2026-03-30