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Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

By A Mystery Man Writer

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

High-efficiency optogenetic silencing with soma-targeted anion-conducting channelrhodopsins

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Ofer YIZHAR, Senior Scientist, Ph.D., Weizmann Institute of Science, Reẖovot, weizmann, Department of Neurobiology

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Targeting light-gated chloride channels to neuronal

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Cellular resolution circuit mapping with temporal-focused

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Targeting GtACR2 to the neuronal soma leads to enhanced

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

High performance microbial opsins for spatially and temporally

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Cre-dependent ACR2-expressing reporter mouse strain for efficient

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Targeting light-gated chloride channels to neuronal

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Aion is a bistable anion-conducting channelrhodopsin that provides

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Silencing of cue-associated BLA activity using stGtACR2 suppresses

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Single-Cell Resolution Optogenetics Via Expression of Soma

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

Targeting light-gated chloride channels to neuronal

Targeting GtACR2 to the neuronal soma leads to enhanced photocurrent

BiPOLES is an optogenetic tool developed for bidirectional dual