Temporally precise single-cell-resolution optogenetics

© 2017 The Author(s). Optogenetic control of individual neurons with high temporal precision within intact mammalian brain circuitry would enable powerful explorations of how neural circuits operate. Two-photon computer-generated holography enables precise sculpting of light and could in principle e...

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書目詳細資料
Main Authors: Shemesh, Or A, Tanese, Dimitrii, Zampini, Valeria, Linghu, Changyang, Piatkevich, Kiryl, Ronzitti, Emiliano, Papagiakoumou, Eirini, Boyden, Edward S, Emiliani, Valentina
格式: Article
語言:English
出版: Springer Nature 2021
在線閱讀:https://hdl.handle.net/1721.1/134881
實物特徵
總結:© 2017 The Author(s). Optogenetic control of individual neurons with high temporal precision within intact mammalian brain circuitry would enable powerful explorations of how neural circuits operate. Two-photon computer-generated holography enables precise sculpting of light and could in principle enable simultaneous illumination of many neurons in a network, with the requisite temporal precision to simulate accurate neural codes. We designed a high-efficacy soma-targeted opsin, finding that fusing the N-terminal 150 residues of kainate receptor subunit 2 (KA2) to the recently discovered high-photocurrent channelrhodopsin CoChR restricted expression of this opsin primarily to the cell body of mammalian cortical neurons. In combination with two-photon holographic stimulation, we found that this somatic CoChR (soCoChR) enabled photostimulation of individual cells in mouse cortical brain slices with single-cell resolution and <1-ms temporal precision. We used soCoChR to perform connectivity mapping on intact cortical circuits.