A Novel Acetylcholine Nanosensor for Single Vesicle Storage and Sub‐Quantal Exocytosis in Living Neurons and Organoids

W Wanying Zhu (Institute of Stem Cell and Neural Regeneration, School of Pharmacy, Nanjing Medical University) Y Yufan Zhang (Key Laboratory of Photochemistry, Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences) H Hanwen Yu (Institute of Stem Cell and Neural Regeneration, School of Pharmacy, Nanjing Medical University) D Da Wang (Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics) X Xinyue Zhang X Xiaowen Du (School of Pharmacy Nanjing Medical University Nanjing 211166 China) S Shanshan Wu (College of Chemistry and Chemical Engineering, Frontiers Science Center for Rare Isotopes) B Bingzhi Li Y Yizhou Zhang H Hongliang Xin (Department of Chemical Engineering) X Xing Guo Y Yan Liu

Abstract

Abstract Acetylcholine (ACh) is a critical neurotransmitter that regulates diverse physiological functions, such as cognition and muscle contraction, through synaptic transmission. However, in situ quantitative chemical analysis of single‐vesicle storage and release dynamics at single‐cell level remains a major technical challenge, hindering mechanistic understanding of cholinergic synaptic plasticity across physiological and pathological states. To address this, we developed an Ti 3 C 2 T x MXene/enzyme‐functionalized (M@E@CF) nanosensor, enabling real‐time monitoring of vesicular ACh storage and exocytotic release in primary cholinergic neurons and human spinal cord organoids. Our findings reveal a sub‐quantal release mode in both mouse and human‐derived neurons. To further elucidate the regulatory principles of exocytosis kinetics, we classified single‐vesicle exocytosis patterns based on signal peak shapes using a 1D convolutional neural network (1D‐CNN) deep learning model, uncovering significant differences in the number of released molecules and kinetic parameters across modes. Critically, in Down syndrome models, we observed significantly reduced single vesicle ACh storage and release alongside an elevated release fraction, concurrent with shortened fusion pore durations during exocytosis. Thus, the M@E@CF nanosensor platform establishes a versatile tool for spatiotemporal investigation of neurotransmitter storage and release dynamics, providing a critical technical foundation for exploring physiological functions and pathological mechanisms of the cholinergic system.

Article Details

Volume / Issue Vol. 65, Issue 20
Published May 11, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

W

Wanying Zhu

Institute of Stem Cell and Neural Regeneration, School of Pharmacy, Nanjing Medical University

Y

Yufan Zhang

Key Laboratory of Photochemistry, Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences

H

Hanwen Yu

Institute of Stem Cell and Neural Regeneration, School of Pharmacy, Nanjing Medical University

D

Da Wang

Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, Institute of Electronic Paper Displays, South China Academy of Advanced Optoelectronics

X

Xinyue Zhang

X

Xiaowen Du

School of Pharmacy Nanjing Medical University Nanjing 211166 China

S

Shanshan Wu

College of Chemistry and Chemical Engineering, Frontiers Science Center for Rare Isotopes

B

Bingzhi Li

Y

Yizhou Zhang

H

Hongliang Xin

Department of Chemical Engineering

X

Xing Guo

Y

Yan Liu