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. 2014 Dec 1;24(23):2838-44.
doi: 10.1016/j.cub.2014.10.019. Epub 2014 Nov 13.

Circadian factor BMAL1 in histaminergic neurons regulates sleep architecture

Affiliations

Circadian factor BMAL1 in histaminergic neurons regulates sleep architecture

Xiao Yu et al. Curr Biol. .

Abstract

Circadian clocks allow anticipation of daily environmental changes. The suprachiasmatic nucleus (SCN) houses the master clock, but clocks are also widely expressed elsewhere in the body. Although some peripheral clocks have established roles, it is unclear what local brain clocks do. We tested the contribution of one putative local clock in mouse histaminergic neurons in the tuberomamillary nucleus to the regulation of the sleep-wake cycle. Histaminergic neurons are silent during sleep, and start firing after wake onset; the released histamine, made by the enzyme histidine decarboxylase (HDC), enhances wakefulness. We found that hdc gene expression varies with time of day. Selectively deleting the Bmal1 (also known as Arntl or Mop3) clock gene from histaminergic cells removes this variation, producing higher HDC expression and brain histamine levels during the day. The consequences include more fragmented sleep, prolonged wake at night, shallower sleep depth (lower nonrapid eye movement [NREM] δ power), increased NREM-to-REM transitions, hindered recovery sleep after sleep deprivation, and impaired memory. Removing BMAL1 from histaminergic neurons does not, however, affect circadian rhythms. We propose that for mammals with polyphasic/nonwake consolidating sleep, the local BMAL1-dependent clock directs appropriately timed declines and increases in histamine biosynthesis to produce an appropriate balance of wake and sleep within the overall daily cycle of rest and activity specified by the SCN.

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Figures

Figure 1
Figure 1
Rhythmic Expression of HDC and Histamine Requires BMAL1 in HDC-Positive Cells (A and B) Expression of HDC in the mouse TMN varies with time of day. The intensity of immunocytochemical staining of neurons with antiserum to HDC (green) was higher at ZT18 than at ZT6 (n = 3 mice in both groups; n = 17 cells in control mice; n = 18 cells in HDC-ΔBmal1 mice). Boxed regions in (A) are shown at higher power. The scale bars represent 40 μm. The graph (B) was obtained by imaging the fluorescence intensity of individual neurons; bars indicate SEM; ∗∗∗p < 0.001. (C) Quantitative PCR analysis of RNA from posterior hypothalamic tissue shows that transcripts encoding HDC vary with time of day, but in HDC-ΔBmal1 mice (red traces) these rhythms were altered. HNMT transcript levels were unchanged; all transcript levels were normalized to expression of the 18S rRNA gene. Bars represent SEM; ∗∗p < 0.01, ∗∗∗p < 0.001. (D) Histaminergic neurons in the TMN area, identified by immunocytochemistry with HDC (red), also contained BMAL1 protein (green); in HDC-ΔBmal1 mice, BMAL1 staining was selectively removed. Magnifications are shown in the boxed regions. 4′,6-diamidino-2-phenylindole (DAPI) (blue) shows the position of cell nuclei. Arrowheads indicate examples of HDC-positive cells with BMAL1 (control) or without BMAL1 (HDC-ΔBmal1 knockouts). The scale bars represent 40 μm. (E) Compared with littermate controls, HDC protein is elevated at all ZT points in the TMN of HDC-ΔBmal1 mice. The scale bar represents 40 μm. (F) Average histamine levels are elevated in HDC-ΔBmal1 brains during the day (bars represent SEM; p < 0.05). (G and H) HDC-ΔBmal1 mice (red trace) traveled farther than littermate control mice in a 30 min period (G), and speed in total 30 min was higher (H) (n = 10 control; n = 10 HDC-ΔBmal1; bars represent SEM; p < 0.05, ∗∗p < 0.01). See also Figures S1–S3.
Figure 2
Figure 2
HDC-ΔBmal1 Mice Have a Functionally Normal Circadian Clock (A) Representative wheel-running actograms from homozygous loxBmal1 mice and HDC-ΔBmal1 mice. Mice were initially entrained to 12 h white light, 12 h dim red light (LD) and then transferred to continuous dim red light (DD) or continuous white light (LL). (B) HDC-ΔBmal1 mice (n = 6) and littermate controls (n = 8) did not have differing circadian periods or amplitudes during LD, LL, or DD (bars represent SEM; p > 0.05). (C and D) Immunocytochemical analysis shows that the circadian rhythm of BMAL1 (green) and PER2 (green) expression is unaffected in the SCN of HDC-ΔBmal1 mice. Sections are counterstained to show all cell nuclei with DAPI. The scale bar represents 0.5 mm.
Figure 3
Figure 3
HDC-ΔBmal1 Mice Have Fragmented Sleep (A–F) The number of vigilance (wake, NREM, and REM) episodes (A, C, and E, respectively) and episode duration (B, D, and F, respectively) over the 24 hr interval for HDC-ΔBmal1 mice (n = 10) (red traces) and littermate controls (n = 10). Bars represent SEM; p < 0.05, ∗∗p < 0.01. D, day; N, night. (G) Number of transitions between wake (W), NREM (NR), and REM (R) sleep in the day and night. Significant differences in transition numbers are shown with red arrows; ∗∗∗p < 0.001. See also Figure S4.
Figure 4
Figure 4
HDC-ΔBmal1 Mice Have Compromised Recovery Sleep and Elevated HDC Expression after Sleep Deprivation and Compromised Novel Object Recognition (A) After 5 hr of sleep deprivation (SD) during the day, littermate control mice (n = 5) had sustained NREM sleep; in contrast, the recovery sleep time of the HDC-ΔBmal1 mice (red trace; n = 5) was reduced. (B) Rate of accumulated NREM change following SD. (C) Graph of NREM δ power of HDC-ΔBmal1 mice and littermate controls before and after sleep deprivation. RS, recovery sleep. (D) HDC immunocytochemical staining in littermate control and HDC-ΔBmal1 mice at the end of SD (ZT5) and following 4 hr of recovery sleep (ZT9). The scale bar represents 40 μm. (E) Quantification of relative HDC expression following sleep deprivation and recovery sleep. Each point represents an HDC-positive neuron. Bars represent SEM; ∗∗∗p < 0.001. (F) Control littermates (n = 7) and HDC-ΔBmal1 mice (n = 5) were trained for 10 min to explore the same object, and then the mice were allowed 22 hr of normal sleep-wake behavior or subjected to 5 hr of sleep deprivation and allowed 17 hr of recovery sleep. One of the objects was then exchanged with a new object, and the mice were again tested for 10 min. Both control littermates and HDC-ΔBmal1 mice performed worse after SD + RS, compared with those that had only a normal sleep-wake experience; however, HDC-ΔBmal1 mice performed less well. The “novel object performance” was defined as the time exploring the novel object divided by the time exploring the familiar object and novel object, expressed as a percentage. Bars represent SEM; ∗∗p < 0.01, ∗∗∗p < 0.001. See also Figure S4.

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References

    1. Mohawk J.A., Green C.B., Takahashi J.S. Central and peripheral circadian clocks in mammals. Annu. Rev. Neurosci. 2012;35:445–462. - PMC - PubMed
    1. Kyriacou C.P., Hastings M.H. Circadian clocks: genes, sleep, and cognition. Trends Cogn. Sci. 2010;14:259–267. - PubMed
    1. Franken P. A role for clock genes in sleep homeostasis. Curr. Opin. Neurobiol. 2013;23:864–872. - PubMed
    1. Takahashi K., Lin J.S., Sakai K. Neuronal activity of histaminergic tuberomammillary neurons during wake-sleep states in the mouse. J. Neurosci. 2006;26:10292–10298. - PMC - PubMed
    1. Saper C.B., Fuller P.M., Pedersen N.P., Lu J., Scammell T.E. Sleep state switching. Neuron. 2010;68:1023–1042. - PMC - PubMed

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