Functionally Collaborative Nanostructure for Direct Monitoring of Neurotransmitter Exocytosis in Living Cells.
Pengcheng XuXuefeng WangJiaci ShiWei ChenZhan-Jun LuHao JiaDaixin YeXinxin LiPublished in: Nano letters (2023)
Neurotransmitter exocytosis of living cells plays a vital role in neuroscience. However, the available amperometric technique with carbon fiber electrodes typically measures exocytotic events from one cell during one procedure, which requires professional operations and takes time to produce statistical results of multiple cells. Here, we develop a functionally collaborative nanostructure to directly measure the neurotransmitter dopamine (DA) exocytosis from living rat pheochromocytoma (PC12) cells. The functionally collaborative nanostructure is constructed of metal-organic framework (MOF)-on-nanowires-on-graphene oxide, which is highly sensitive to DA molecules and enables direct detection of neurotransmitter exocytosis. Using the microsensor, the exocytosis from PC12 cells pretreated with the desired drugs (e.g., anticoronavirus drug, antiflu drug, or anti-inflammatory drug) has been successfully measured. Our achievements demonstrate the feasibility of the functionally collaborative nanostructure in the real-time detection of exocytosis and the potential applicability in the highly efficient assessment of the modulation effects of medications on exocytosis.
Keyphrases
- living cells
- fluorescent probe
- metal organic framework
- highly efficient
- single molecule
- quality improvement
- induced apoptosis
- reduced graphene oxide
- drug induced
- label free
- loop mediated isothermal amplification
- single cell
- metabolic syndrome
- adverse drug
- cell therapy
- cell death
- climate change
- minimally invasive
- wastewater treatment
- nitric oxide
- mass spectrometry
- high resolution
- quantum dots
- clinical evaluation
- liquid chromatography
- carbon nanotubes