Voltage imaging and optogenetics reveal behaviour-dependent changes in hippocampal dynamics
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Author
Adam, Yoav
Kim, Jeong J.
Lou, Shan
Zhao, Yongxin
Xie, Michael E.
Brinks, Daan
Wu, Hao
Mostajo-Radji, Mohammed A.
Kheifets, Simon
Parot, Vicente
Chettih, Selmaan
Williams, Katherine J.
Gmeiner, Benjamin
Farhi, Samouil L.
Madisen, Linda
Buchanan, E. Kelly
Kinsella, Ian
Zhou, Ding
Paninski, Liam
Harvey, Christopher D.
Zeng, Hongkui
Arlotta, Paola
Campbell, Robert E.
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https://doi.org/10.1038/s41586-019-1166-7Metadata
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Adam, Y., Kim, J.J., Lou, S. et al. Voltage imaging and optogenetics reveal behaviour-dependent changes in hippocampal dynamics. Nature 569, 413–417 (2019). https://doi.org/10.1038/s41586-019-1166-7Abstract
A technology to record membrane potential from multiple neurons, simultaneously, in behaving animals will have a transformative impact on neuroscience research1, 2. Genetically encoded voltage indicators are a promising tool for these purposes, but were so far limited to single-cell recordings with marginal signal to noise ratio (SNR) in vivo3-5. We developed improved near infrared voltage indicators, high speed microscopes and targeted gene expression schemes which enabled recordings of supra- and subthreshold voltage dynamics from multiple neurons simultaneously in mouse hippocampus, in vivo. The reporters revealed sub-cellular details of back-propagating action potentials and correlations in sub-threshold voltage between multiple cells. In combination with optogenetic stimulation, the reporters revealed brain state-dependent changes in neuronal excitability, reflecting the interplay of excitatory and inhibitory synaptic inputs. These tools open the possibility for detailed explorations of network dynamics in the context of behavior.Other Sources
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6613938/Terms of Use
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http://nrs.harvard.edu/urn-3:HUL.InstRepos:42658795
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