期刊论文详细信息
eLife
Visualizing synaptic plasticity in vivo by large-scale imaging of endogenous AMPA receptors
Han L Tan1  Elena Lopez-Ortega1  Richard C Johnson1  Alexei M Bygrave1  Richard H Roth1  Qianwen Zhu1  Ingie Hong1  Alina C Spiegel2  Richard L Huganir2  Austin R Graves2  Joshua T Vogelstein3  Daniel J Tward3  Michael I Miller3 
[1] Department of Neuroscience, Johns Hopkins University School of Medicine, Baltimore, United States;Department of Neuroscience, Johns Hopkins University School of Medicine, Baltimore, United States;Kavli Neuroscience Discovery Institute, Baltimore, United States;Kavli Neuroscience Discovery Institute, Baltimore, United States;Center for Imaging Science, Johns Hopkins University School of Engineering, Baltimore, United States;Department of Biomedical Engineering, Johns Hopkins University, Baltimore, United States;
关键词: synapse;    plasticity;    in vivo imaging;    AMPA receptor;    behavior;    Mouse;   
DOI  :  10.7554/eLife.66809
来源: eLife Sciences Publications, Ltd
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【 摘 要 】

Elucidating how synaptic molecules such as AMPA receptors mediate neuronal communication and tracking their dynamic expression during behavior is crucial to understand cognition and disease, but current technological barriers preclude large-scale exploration of molecular dynamics in vivo. We have developed a suite of innovative methodologies that break through these barriers: a new knockin mouse line with fluorescently tagged endogenous AMPA receptors, two-photon imaging of hundreds of thousands of labeled synapses in behaving mice, and computer vision-based automatic synapse detection. Using these tools, we can longitudinally track how the strength of populations of synapses changes during behavior. We used this approach to generate an unprecedentedly detailed spatiotemporal map of synapses undergoing changes in strength following sensory experience. More generally, these tools can be used as an optical probe capable of measuring functional synapse strength across entire brain areas during any behavioral paradigm, describing complex system-wide changes with molecular precision.

【 授权许可】

CC BY   

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