TY - JOUR
T1 - Long-lasting silencing of orexin/hypocretin neurons using archaerhodopsin induces slow-wave sleep in mice
AU - Tsunematsu, Tomomi
AU - Tabuchi, Sawako
AU - Tanaka, Kenji F.
AU - Boyden, Edward S.
AU - Tominaga, Makoto
AU - Yamanaka, Akihiro
N1 - Funding Information:
This study was supported by the JST PRESTO program, Grant-in-Aid for Scientific Research on Innovative Areas “Mesoscopic Neurocircuitry” (23115103), Grant-in-Aid for Scientific Research (B) (23300142) (A.Y.), a Japan Society for Promotion of Science postdoctoral fellowship (T.T.).We thank Dr. A. Inutsuka for confocal microscopic observation, C. Saito and K. Nishimura for technical assistance.
PY - 2013/10/15
Y1 - 2013/10/15
N2 - Orexin/hypocretin neurons have a crucial role in the regulation of sleep and wakefulness. Recent optogenetic studies revealed that the activation or inhibition of orexin neuronal activity affects the probability of sleep/wakefulness transition in the acute phase. To expand our understanding of how orexin neurons maintain wakefulness, we generated new transgenic mice in which orexin neurons expressed archaerhodopsin from Halorubrum strain TP009 (ArchT), a green light-driven neuronal silencer, using the tet-off system (orexin-tTA; TetO ArchT mice). Slice patch clamp recordings of ArchT-expressing orexin neurons demonstrated that long-lasting photic illumination was able to silence the activity of orexin neurons. We further confirmed that green light illumination for 1. h in the dark period suppressed orexin neuronal activity in vivo using c-Fos expression. Continuous 1. h silencing of orexin neurons in freely moving orexin-tTA; TetO ArchT mice during the night (the active period, 20:00-21:00) significantly increased total time spent in slow-wave sleep (SWS) and decreased total wake time. Additionally, photic inhibition increased sleep/wakefulness state transitions, which is also evident in animals lacking the prepro-orexin gene, orexin neurons, or functional orexin-2 receptors. However, continuous 1. h photic illumination produced little effect on sleep/wakefulness states during the day (the inactive period, 12:00-13:00). These results suggest that orexin neuronal activity plays a crucial role in the maintenance of wakefulness especially in the active phase in mice.
AB - Orexin/hypocretin neurons have a crucial role in the regulation of sleep and wakefulness. Recent optogenetic studies revealed that the activation or inhibition of orexin neuronal activity affects the probability of sleep/wakefulness transition in the acute phase. To expand our understanding of how orexin neurons maintain wakefulness, we generated new transgenic mice in which orexin neurons expressed archaerhodopsin from Halorubrum strain TP009 (ArchT), a green light-driven neuronal silencer, using the tet-off system (orexin-tTA; TetO ArchT mice). Slice patch clamp recordings of ArchT-expressing orexin neurons demonstrated that long-lasting photic illumination was able to silence the activity of orexin neurons. We further confirmed that green light illumination for 1. h in the dark period suppressed orexin neuronal activity in vivo using c-Fos expression. Continuous 1. h silencing of orexin neurons in freely moving orexin-tTA; TetO ArchT mice during the night (the active period, 20:00-21:00) significantly increased total time spent in slow-wave sleep (SWS) and decreased total wake time. Additionally, photic inhibition increased sleep/wakefulness state transitions, which is also evident in animals lacking the prepro-orexin gene, orexin neurons, or functional orexin-2 receptors. However, continuous 1. h photic illumination produced little effect on sleep/wakefulness states during the day (the inactive period, 12:00-13:00). These results suggest that orexin neuronal activity plays a crucial role in the maintenance of wakefulness especially in the active phase in mice.
KW - Archaerhodopsin
KW - Hypocretin
KW - Optogenetic
KW - Orexin
KW - Slow-wave sleep
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U2 - 10.1016/j.bbr.2013.05.021
DO - 10.1016/j.bbr.2013.05.021
M3 - Article
C2 - 23707248
AN - SCOPUS:84884979110
SN - 0166-4328
VL - 255
SP - 64
EP - 74
JO - Behavioural Brain Research
JF - Behavioural Brain Research
ER -