Plug-and-play fiber-optic sensors based on engineered cells for neurochemical monitoring at high specificity in freely moving animals.
Bingqian ZhouKuikui FanJingjing GuoJiesi FengChangxi YangYu-Long LiSong-Hai ShiLingjie KongPublished in: Science advances (2023)
In vivo detection of neurochemicals, including neurotransmitters and neuromodulators, is critical for both understanding brain mechanisms and diagnosing brain diseases. However, few sensors are competent in monitoring neurochemical dynamics in vivo at high specificity. Here, we propose the fiber-optic probes based on engineered cells (FOPECs) for plug-and-play, real-time detection of neurochemicals in freely moving animals. Taking advantages of life-evolved neurochemical receptors as key components, the chemical specificity of FOPECs is unprecedented. We demonstrate the applications of FOPECs in real-time monitoring of neurochemical dynamics under various physiology and pathology conditions. With no requirement of viral infection in advance and no dependence on animal species, FOPECs can be widely adopted in vertebrates, such as mice, rats, rabbits, and chickens. Moreover, FOPECs can be used to monitor drug metabolisms in vivo. We demonstrated the neurochemical monitoring in blood circulation systems in vivo. We expect that FOPECs will benefit not only neuroscience study but also drug discovery.
Keyphrases
- induced apoptosis
- drug discovery
- cell cycle arrest
- optical coherence tomography
- resting state
- loop mediated isothermal amplification
- small molecule
- white matter
- cell death
- adipose tissue
- endoplasmic reticulum stress
- emergency department
- multiple sclerosis
- structural basis
- single molecule
- functional connectivity
- real time pcr
- high fat diet induced
- electronic health record
- living cells
- brain injury