| Literature DB >> 29853555 |
Tommaso Patriarchi1, Jounhong Ryan Cho2, Katharina Merten3, Mark W Howe4, Aaron Marley5, Wei-Hong Xiong6, Robert W Folk3, Gerard Joey Broussard1, Ruqiang Liang1, Min Jee Jang2, Haining Zhong6, Daniel Dombeck4, Mark von Zastrow5, Axel Nimmerjahn3, Viviana Gradinaru2, John T Williams6, Lin Tian7.
Abstract
Neuromodulatory systems exert profound influences on brain function. Understanding how these systems modify the operating mode of target circuits requires spatiotemporally precise measurement of neuromodulator release. We developed dLight1, an intensity-based genetically encoded dopamine indicator, to enable optical recording of dopamine dynamics with high spatiotemporal resolution in behaving mice. We demonstrated the utility of dLight1 by imaging dopamine dynamics simultaneously with pharmacological manipulation, electrophysiological or optogenetic stimulation, and calcium imaging of local neuronal activity. dLight1 enabled chronic tracking of learning-induced changes in millisecond dopamine transients in mouse striatum. Further, we used dLight1 to image spatially distinct, functionally heterogeneous dopamine transients relevant to learning and motor control in mouse cortex. We also validated our sensor design platform for developing norepinephrine, serotonin, melatonin, and opioid neuropeptide indicators.Entities:
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Year: 2018 PMID: 29853555 PMCID: PMC6287765 DOI: 10.1126/science.aat4422
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728