Integrity of the circadian clock determines regularity of high-frequency and diurnal LFP rhythms within and between brain areas.


Journal

Molecular psychiatry
ISSN: 1476-5578
Titre abrégé: Mol Psychiatry
Pays: England
ID NLM: 9607835

Informations de publication

Date de publication:
29 Oct 2024
Historique:
received: 11 10 2023
accepted: 14 10 2024
revised: 10 10 2024
medline: 30 10 2024
pubmed: 30 10 2024
entrez: 30 10 2024
Statut: aheadofprint

Résumé

Circadian clocks control most physiological processes of many species. We specifically wanted to investigate the influence of environmental and endogenous rhythms and their interplay on electrophysiological dynamics of neuronal populations. Therefore, we measured local field potential (LFP) time series in wild-type and Cryptochrome 1 and 2 deficient (Cry1/2

Identifiants

pubmed: 39472662
doi: 10.1038/s41380-024-02795-z
pii: 10.1038/s41380-024-02795-z
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : Deutsche Forschungsgemeinschaft (German Research Foundation)
ID : LA4126

Informations de copyright

© 2024. The Author(s).

Références

Hyman SE. Can neuroscience be integrated into the DSM-V? Nat Rev Neurosci. 2007;8:725–32.
pubmed: 17704814 doi: 10.1038/nrn2218
Uhlhaas PJ, Singer W. Neural synchrony in brain disorders: relevance for cognitive dysfunctions and pathophysiology. Neuron. 2006;52:155–68.
pubmed: 17015233 doi: 10.1016/j.neuron.2006.09.020
Patke A, Young MW, Axelrod S. Molecular mechanisms and physiological importance of circadian rhythms. Nat Rev Mol Cell Biol. 2020;21:67–84.
pubmed: 31768006 doi: 10.1038/s41580-019-0179-2
Hardin PE, Hall JC, Rosbash M. Feedback of the Drosophila period gene product on circadian cycling of its messenger RNA levels. Nature. 1990;343:536–40.
pubmed: 2105471 doi: 10.1038/343536a0
Konopka RJ, Benzer S. Clock mutants of Drosophila melanogaster. Proc Natl Acad Sci USA. 1971;68:2112–6.
pubmed: 5002428 pmcid: 389363 doi: 10.1073/pnas.68.9.2112
Stephan FK, Zucker I. Circadian rhythms in drinking behavior and locomotor activity of rats are eliminated by hypothalamic lesions. Proc Natl Acad Sci USA. 1972;69:1583–6.
pubmed: 4556464 pmcid: 426753 doi: 10.1073/pnas.69.6.1583
Zehring WA, Wheeler DA, Reddy P, Konopka RJ, Kyriacou CP, Rosbash M, et al. P-element transformation with period locus DNA restores rhythmicity to mutant, arrhythmic drosophila melanogaster. Cell. 1984;39:369–76.
pubmed: 6094014 doi: 10.1016/0092-8674(84)90015-1
Hastings MH, Maywood ES, Brancaccio M. Generation of circadian rhythms in the suprachiasmatic nucleus. Nat Rev Neurosci. 2018;19:453–69.
pubmed: 29934559 doi: 10.1038/s41583-018-0026-z
Libert S, Bonkowski MS, Pointer K, Pletcher SD, Guarente L. Deviation of innate circadian period from 24 h reduces longevity in mice: Impact of circadian clock on longevity. Aging Cell. 2012;11:794–800.
pubmed: 22702406 doi: 10.1111/j.1474-9726.2012.00846.x
Mohawk JA, Green CB, Takahashi JS. Central and peripheral circadian clocks in mammals. Annu Rev Neurosci. 2012;35:445–62.
pubmed: 22483041 pmcid: 3710582 doi: 10.1146/annurev-neuro-060909-153128
Gekakis N, Staknis D, Nguyen HB, Davis FC, Wilsbacher LD, King DP, et al. Role of the CLOCK protein in the mammalian circadian mechanism. Science. 1998;280:1564–9.
pubmed: 9616112 doi: 10.1126/science.280.5369.1564
Kume K, Zylka MJ, Sriram S, Shearman LP, Weaver DR, Jin X, et al. mCRY1 and mCRY2 are essential components of the negative limb of the circadian clock feedback loop. Cell. 1999;98:193–205.
pubmed: 10428031 doi: 10.1016/S0092-8674(00)81014-4
Weaver DR. The suprachiasmatic nucleus: a 25-year retrospective. J Biol Rhythms. 1998;13:100–12.
pubmed: 9554572 doi: 10.1177/074873098128999952
Farajnia S, Michel S, Deboer T, vanderLeest HT, Houben T, Rohling JHT, et al. Evidence for neuronal desynchrony in the aged suprachiasmatic nucleus clock. J Neurosci. 2012;32:5891–9.
pubmed: 22539850 pmcid: 6703600 doi: 10.1523/JNEUROSCI.0469-12.2012
Ralph MR, Foster RG, Davis FC, Menaker M. Transplanted suprachiasmatic nucleus determines circadian period. Science. 1990;247:975–8.
pubmed: 2305266 doi: 10.1126/science.2305266
Im C, Seo J-M. A review of electrodes for the electrical brain signal recording. Biomed Eng Lett. 2016;6:104–12.
doi: 10.1007/s13534-016-0235-1
Belle MD, Allen CN. The circadian clock: a tale of genetic–electrical interplay and synaptic integration. Curr Opin Physiol. 2018;5:75–79.
pubmed: 31011692 pmcid: 6474415 doi: 10.1016/j.cophys.2018.08.002
Iyer AR, Sheeba V. A new player in circadian networks: Role of electrical synapses in regulating functions of the circadian clock. Front Physiol. 2022;13:968574.
pubmed: 36406999 pmcid: 9669436 doi: 10.3389/fphys.2022.968574
Koronowski KB, Sassone-Corsi P. Communicating clocks shape circadian homeostasis. Science. 2021;371:eabd0951.
pubmed: 33574181 pmcid: 8123919 doi: 10.1126/science.abd0951
McCauley JP, Petroccione MA, D’Brant LY, Todd GC, Affinnih N, Wisnoski JJ, et al. Circadian modulation of neurons and astrocytes controls synaptic plasticity in hippocampal area CA1. Cell Rep. 2020;33:108255.
pubmed: 33053337 pmcid: 7700820 doi: 10.1016/j.celrep.2020.108255
Tokuda IT, Ono D, Honma S, Honma K-I, Herzel H. Coherency of circadian rhythms in the SCN is governed by the interplay of two coupling factors. PLoS Comput Biol. 2018;14:e1006607.
pubmed: 30532130 pmcid: 6301697 doi: 10.1371/journal.pcbi.1006607
Albus H, Bonnefont X, Chaves I, Yasui A, Doczy J, Van Der Horst GTJ, et al. Cryptochrome-deficient mice lack circadian electrical activity in the suprachiasmatic nuclei. Curr Biol. 2002;12:1130–3.
pubmed: 12121621 doi: 10.1016/S0960-9822(02)00923-5
Katzner S, Nauhaus I, Benucci A, Bonin V, Ringach DL, Carandini M. Local origin of field potentials in visual cortex. Neuron. 2009;61:35–41.
pubmed: 19146811 pmcid: 2730490 doi: 10.1016/j.neuron.2008.11.016
Mitzdorf U. Current source-density method and application in cat cerebral cortex: investigation of evoked potentials and EEG phenomena. Physiol Rev. 1985;65:37–100.
pubmed: 3880898 doi: 10.1152/physrev.1985.65.1.37
Liu D, Li J, Wu J, Dai J, Chen X, Huang Y, et al. Monochromatic blue light activates suprachiasmatic nucleus neuronal activity and promotes arousal in mice under sevoflurane anesthesia. Front Neural Circuits. 2020;14:55.
pubmed: 32973462 pmcid: 7461971 doi: 10.3389/fncir.2020.00055
Inouye ST, Kawamura H. Persistence of circadian rhythmicity in a mammalian hypothalamic ‘island’ containing the suprachiasmatic nucleus. Proc Natl Acad Sci USA. 1979;76:5962–6.
pubmed: 293695 pmcid: 411773 doi: 10.1073/pnas.76.11.5962
Frederick A, Bourget-Murray J, Chapman CA, Amir S, Courtemanche R. Diurnal influences on electrophysiological oscillations and coupling in the dorsal striatum and cerebellar cortex of the anesthetized rat. Front Syst Neurosci. 2014;8:145.
pubmed: 25309348 pmcid: 4163932 doi: 10.3389/fnsys.2014.00145
Landgraf D, Long JE, Welsh DK. Depression-like behaviour in mice is associated with disrupted circadian rhythms in nucleus accumbens and periaqueductal grey. Eur J Neurosci. 2016;43:1309–20.
pubmed: 26414405 doi: 10.1111/ejn.13085
Huang X, Tao Q, Ren C. A comprehensive overview of the neural mechanisms of light therapy. Neurosci Bull. 2024;40:350–62.
pubmed: 37555919 doi: 10.1007/s12264-023-01089-8
Michel S, Nakamura TJ, Meijer JH, Colwell CS Electrophysiological approaches to studying the suprachiasmatic nucleus. In: Brown SA, editor. Circadian Clocks, vol. 2130, New York, NY: Springer US; 2021. p. 303-24.
Becker-Krail DD, Walker WH, Nelson RJ. The ventral tegmental area and nucleus accumbens as circadian oscillators: implications for drug abuse and substance use disorders. Front Physiol. 2022;13:886704.
pubmed: 35574492 pmcid: 9094703 doi: 10.3389/fphys.2022.886704
Papazoglou A, Lundt A, Wormuth C, Ehninger D, Henseler C, Soós J, et al. Non-restraining EEG Radiotelemetry: Epidural and Deep Intracerebral Stereotaxic EEG Electrode Placement. JoVE. 2016:54216.
Fernandez LMJ, Comte J-C, Le Merre P, Lin J-S, Salin P-A, Crochet S Highly Dynamic Spatiotemporal Organization of Low-Frequency Activities During Behavioral States in the Mouse Cerebral Cortex. Cereb Cortex. 2016:cercor;bhw311v1.
Soltani S, Chauvette S, Bukhtiyarova O, Lina J-M, Dubé J, Seigneur J, et al. Sleep–wake cycle in young and older mice. Front Syst Neurosci. 2019;13:51.
pubmed: 31611779 pmcid: 6769075 doi: 10.3389/fnsys.2019.00051
Weiergräber M, Henry M, Hescheler J, Smyth N, Schneider T. Electrocorticographic and deep intracerebral EEG recording in mice using a telemetry system. Brain Res Protoc. 2005;14:154–64.
doi: 10.1016/j.brainresprot.2004.12.006
Lundt A, Wormuth C, Siwek ME, Müller R, Ehninger D, Henseler C, et al. EEG radiotelemetry in small laboratory rodents: a powerful state-of-the art approach in neuropsychiatric, neurodegenerative, and epilepsy research. Neural Plasticity. 2016;2016:1–19.
doi: 10.1155/2016/8213878
Paxinos G, Franklin KBJ Paxinos and Franklin’s The mouse brain in stereotaxic coordinates. Fifth edition. London: Academic Press, an imprint of Elsevier; 2019.
Heideman M, Johnson D, Burrus C. Gauss and the history of the fast fourier transform. IEEE ASSP Mag. 1984;1:14–21.
doi: 10.1109/MASSP.1984.1162257
R Core Team. R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R-project.org . 2022.
Markowski CA, Markowski EP. Conditions for the effectiveness of a preliminary test of variance. Am Statistician. 1990;44:322–6.
doi: 10.1080/00031305.1990.10475752
Wickham H. ggplot2: Elegant Graphics for Data Analysis. Springer-Verlag New York. ISBN 978-3-319-24277-4. 2016. https://ggplot2.tidyverse.org .
Kolde R pheatmap: Pretty Heatmaps. R package version 1.0.12. 2019. https://github.com/raivokolde/pheatmap .
signal developers. signal: Signal processing. 2023. https://r-forge.r-project.org/projects/signal .
Torrence C, Compo GP. A practical guide to wavelet analysis. Bull Am Meteor Soc. 1998;79:61–78.
doi: 10.1175/1520-0477(1998)079<0061:APGTWA>2.0.CO;2
Greenblatt RE, Pflieger ME, Ossadtchi AE. Connectivity measures applied to human brain electrophysiological data. J Neurosci Methods. 2012;207:1–16.
pubmed: 22426415 pmcid: 5549799 doi: 10.1016/j.jneumeth.2012.02.025
Karvat G, Schneider A, Alyahyay M, Steenbergen F, Tangermann M, Diester I. Real-time detection of neural oscillation bursts allows behaviourally relevant neurofeedback. Commun Biol. 2020;3:72.
pubmed: 32060396 pmcid: 7021904 doi: 10.1038/s42003-020-0801-z
Gouhier TC, Grinsted A, Simko V R package biwavelet: Conduct Univariate and Bivariate Wavelet Analyses. (Version 0.20.21), 2021. https://github.com/tgouhier/biwavelet .
Zeileis A, Grothendieck G zoo: S3 Infrastructure for Regular and Irregular Time Series. J Stat Soft. 2005;14.
Ruf T. The lomb-scargle periodogram in biological rhythm research: analysis of incomplete and unequally spaced time-series. Biol Rhythm Res. 1999;30:178–201.
doi: 10.1076/brhm.30.2.178.1422
Trapletti A, Hornik K tseries: Time Series Analysis and Computational Finance. R package version 0.10-43. 2023.
Sueur J, Aubin T, Simonis C. Seewave, a free modular tool for sound analysis and synthesis. Bi oacoustics. 2008;18:213–26.
Komsta L, Novomestky F moments: Moments, Cumulants, Skewness, Kurtosis and Related Tests. 2022. http://www.komsta.net .
Richman JS, Moorman JR. Physiological time-series analysis using approximate entropy and sample entropy. Am J Physiol-Heart Circulatory Physiol. 2000;278:H2039–H2049.
doi: 10.1152/ajpheart.2000.278.6.H2039
Tomcala J TSEntropies: Time Series Entropies. R package version 0.9, 2018. https://CRAN.R-project.org/package=TSEntropies .
Zeileis A, Hothorn T Diagnostic Checking in Regression Relationships. 2002.
Vu V ggbiplot: A ggplot2 based biplot. https://github.com/vqv/ggbiplot . 2011.
Fransen AMM, Van Ede F, Maris E. Identifying neuronal oscillations using rhythmicity. NeuroImage. 2015;118:256–67.
pubmed: 26054877 doi: 10.1016/j.neuroimage.2015.06.003
Buzsáki G, Anastassiou CA, Koch C. The origin of extracellular fields and currents-EEG, ECoG, LFP and spikes. Nat Rev Neurosci. 2012;13:407–20.
pubmed: 22595786 pmcid: 4907333 doi: 10.1038/nrn3241
Gallego-Carracedo C, Perich MG, Chowdhury RH, Miller LE, Gallego JÁ. Local field potentials reflect cortical population dynamics in a region-specific and frequency-dependent manner. eLife. 2022;11:e73155.
pubmed: 35968845 pmcid: 9470163 doi: 10.7554/eLife.73155
Baldauf D, Desimone R. Neural mechanisms of object-based attention. Science. 2014;344:424–7.
pubmed: 24763592 doi: 10.1126/science.1247003
Meador KJ, Ray PG, Echauz JR, Loring DW, Vachtsevanos GJ. Gamma coherence and conscious perception. Neurology. 2002;59:847–54.
pubmed: 12297565 doi: 10.1212/WNL.59.6.847
Turner JR, Wit M, Hajos T, Wit M, Howren MB, Insana S, et al. Quantitative EEG Including the Five Common Bandwidths (Delta, Theta, Alpha, Sigma, and Beta). In: Gellman MD, Turner JR, editors. Encyclopedia of Behavioral Medicine, New York, NY: Springer New York; 2013. p. 1606-9.
Van Dongen HP, Olofsen E, VanHartevelt JH, Kruyt EW. Searching for biological rhythms: peak detection in the periodogram of unequally spaced data. J Biol Rhythms. 1999;14:617–20.
pubmed: 10643760 doi: 10.1177/074873099129000984
Stevner ABA, Vidaurre D, Cabral J, Rapuano K, Nielsen SFV, Tagliazucchi E, et al. Discovery of key whole-brain transitions and dynamics during human wakefulness and non-REM sleep. Nat Commun. 2019;10:1035.
pubmed: 30833560 pmcid: 6399232 doi: 10.1038/s41467-019-08934-3
Lima B, Singer W, Chen N-H, Neuenschwander S. Synchronization dynamics in response to plaid stimuli in monkey V1. Cereb Cortex. 2010;20:1556–73.
pubmed: 19812238 doi: 10.1093/cercor/bhp218
Groth D, Hartmann S, Klie S, Selbig J Principal Components Analysis. In: Reisfeld B, Mayeno AN, editors. Computational Toxicology, 930, Totowa, NJ: Humana Press; 2013. p. 527-47.
Shirakawa T, Honma S, Katsuno Y, Oguchi H, Honma K. Synchronization of circadian firing rhythms in cultured rat suprachiasmatic neurons: Synchronization of neuronal rhythms in the SCN. Eur J Neurosci. 2000;12:2833–8.
pubmed: 10971625 doi: 10.1046/j.1460-9568.2000.00170.x
Moore RY, Speh JC. GABA is the principal neurotransmitter of the circadian system. Neurosci Lett. 1993;150:112–6.
pubmed: 8097023 doi: 10.1016/0304-3940(93)90120-A
Seguin C, Sporns O, Zalesky A. Brain network communication: concepts, models and applications. Nat Rev Neurosci. 2023;24:557–74.
pubmed: 37438433 doi: 10.1038/s41583-023-00718-5
Mesgar S, Eskandari K, Karimian-Sani-Varjovi H, Salemi-Mokri-Boukani P, Haghparast A. The dopaminergic system modulates the electrophysiological activity of the suprachiasmatic nucleus dependent on the circadian cycle. Neurochem Res. 2023;48:3420–9.
pubmed: 37452257 doi: 10.1007/s11064-023-03988-8
Buzsáki G, Draguhn A. Neuronal oscillations in cortical networks. Science. 2004;304:1926–9.
pubmed: 15218136 doi: 10.1126/science.1099745
Donnelly NA, Holtzman T, Rich PD, Nevado-Holgado AJ, Fernando ABP, Van Dijck G, et al. Oscillatory activity in the medial prefrontal cortex and nucleus accumbens correlates with impulsivity and reward outcome. PLoS ONE. 2014;9:e111300.
pubmed: 25333512 pmcid: 4205097 doi: 10.1371/journal.pone.0111300
Palva JM, Palva S, Kaila K. Phase synchrony among neuronal oscillations in the human cortex. J Neurosci. 2005;25:3962–72.
pubmed: 15829648 pmcid: 6724920 doi: 10.1523/JNEUROSCI.4250-04.2005
Bauer M, Stenner M-P, Friston KJ, Dolan RJ. Attentional modulation of alpha/beta and gamma oscillations reflect functionally distinct processes. J Neurosci. 2014;34:16117–25.
pubmed: 25429152 pmcid: 4244475 doi: 10.1523/JNEUROSCI.3474-13.2014
Jensen O. Distractor inhibition by alpha oscillations is controlled by an indirect mechanism governed by goal-relevant information. Commun Psychol. 2024;2:36.
pubmed: 38665356 pmcid: 11041682 doi: 10.1038/s44271-024-00081-w
Friston KJ, Bastos AM, Pinotsis D, Litvak V. LFP and oscillations—what do they tell us? Curr Opin Neurobiol. 2015;31:1–6.
pubmed: 25079053 pmcid: 4376394 doi: 10.1016/j.conb.2014.05.004
Colwell CS. Rhythmic coupling among cells in the suprachiasmatic nucleus. J Neurobiol. 2000;43:379–88.
pubmed: 10861563 pmcid: 2577317 doi: 10.1002/1097-4695(20000615)43:4<379::AID-NEU6>3.0.CO;2-0
Yamaguchi S, Isejima H, Matsuo T, Okura R, Yagita K, Kobayashi M, et al. Synchronization of cellular clocks in the suprachiasmatic nucleus. Science. 2003;302:1408–12.
pubmed: 14631044 doi: 10.1126/science.1089287
Welsh DK, Takahashi JS, Kay SA. Suprachiasmatic nucleus: cell autonomy and network properties. Annu Rev Physiol. 2010;72:551–77.
pubmed: 20148688 pmcid: 3758475 doi: 10.1146/annurev-physiol-021909-135919
Welsh DK, Logothetis DE, Meister M, Reppert SM. Individual neurons dissociated from rat suprachiasmatic nucleus express independently phased circadian firing rhythms. Neuron. 1995;14:697–706.
pubmed: 7718233 doi: 10.1016/0896-6273(95)90214-7
Floresco SB. The nucleus accumbens: an interface between cognition, emotion, and action. Annu Rev Psychol. 2015;66:25–52.
pubmed: 25251489 doi: 10.1146/annurev-psych-010213-115159
Kokarovtseva L, Jaciw-Zurakiwsky T, Mendizabal Arbocco R, Frantseva MV, Perez Velazquez JL. Excitability and gap junction–mediated mechanisms in nucleus accumbens regulate self-stimulation reward in rats. Neuroscience. 2009;159:1257–63.
pubmed: 19409225 doi: 10.1016/j.neuroscience.2009.01.065
DePoy LM, Petersen KA, Zong W, Ketchesin KD, Matthaei RC, Yin R, et al. Cell-type and sex-specific rhythmic gene expression in the nucleus accumbens. Mol Psychiatry. 2024. https://doi.org/10.1038/s41380-024-02569-7 .
Dzirasa K, Coque L, Sidor MM, Kumar S, Dancy EA, Takahashi JS, et al. Lithium ameliorates nucleus accumbens phase-signaling dysfunction in a genetic mouse model of mania. J Neurosci. 2010;30:16314–23.
pubmed: 21123577 pmcid: 3165036 doi: 10.1523/JNEUROSCI.4289-10.2010
Dzirasa K, McGarity DL, Bhattacharya A, Kumar S, Takahashi JS, Dunson D, et al. Impaired Limbic Gamma Oscillatory Synchrony during Anxiety-Related Behavior in a Genetic Mouse Model of Bipolar Mania. J Neurosci. 2011;31:6449–56.
pubmed: 21525286 pmcid: 3112006 doi: 10.1523/JNEUROSCI.6144-10.2011
Oishi Y, Xu Q, Wang L, Zhang B-J, Takahashi K, Takata Y, et al. Slow-wave sleep is controlled by a subset of nucleus accumbens core neurons in mice. Nat Commun. 2017;8:734.
pubmed: 28963505 pmcid: 5622037 doi: 10.1038/s41467-017-00781-4
Kayser C, Montemurro MA, Logothetis NK, Panzeri S. Spike-phase coding boosts and stabilizes information carried by spatial and temporal spike patterns. Neuron. 2009;61:597–608.
pubmed: 19249279 doi: 10.1016/j.neuron.2009.01.008
Likhtik E, Stujenske JM, A Topiwala M, Harris AZ, Gordon JA. Prefrontal entrainment of amygdala activity signals safety in learned fear and innate anxiety. Nat Neurosci. 2014;17:106–13.
pubmed: 24241397 doi: 10.1038/nn.3582
Boivin DB, Boudreau P, Kosmadopoulos A. Disturbance of the circadian system in shift work and its health impact. J Biol Rhythms. 2022;37:3–28.
pubmed: 34969316 doi: 10.1177/07487304211064218
Jagannath A, Taylor L, Wakaf Z, Vasudevan SR, Foster RG. The genetics of circadian rhythms, sleep and health. Hum Mol Genet. 2017;26:R128–R138.
pubmed: 28977444 pmcid: 5886477 doi: 10.1093/hmg/ddx240
Walker WH, Walton JC, DeVries AC, Nelson RJ. Circadian rhythm disruption and mental health. Transl Psychiatry. 2020;10:28.
pubmed: 32066704 pmcid: 7026420 doi: 10.1038/s41398-020-0694-0
Hühne A, Echtler L, Kling C, Stephan M, Schmidt MV, Rossner MJ, et al. Circadian gene × environment perturbations influence alcohol drinking in Cryptochrome-deficient mice. Addict Biol. 2022;27:e13105.
pubmed: 34672045 doi: 10.1111/adb.13105
Leach G, Adidharma W, Yan L. Depression-like responses induced by daytime light deficiency in the diurnal grass rat (Arvicanthis niloticus). PLoS ONE. 2013;8:e57115.
pubmed: 23437327 pmcid: 3577787 doi: 10.1371/journal.pone.0057115
Monje FJ, Cabatic M, Divisch I, Kim E-J, Herkner KR, Binder BR, et al. Constant Darkness Induces IL-6-Dependent Depression-Like Behavior through the NF- B Signaling Pathway. J Neurosci. 2011;31:9075–83.
pubmed: 21697358 pmcid: 6623479 doi: 10.1523/JNEUROSCI.1537-11.2011
Hühne A, Volkmann P, Stephan M, Rossner M, Landgraf D An in‐depth neurobehavioral characterization shows anxiety‐like traits, impaired habituation behavior, and restlessness in male Cryptochrome ‐deficient mice. Genes, Brain and Behavior. 2020. May. https://doi.org/10.1111/gbb.12661 .
De Bundel D, Gangarossa G, Biever A, Bonnefont X, Valjent E Cognitive dysfunction, elevated anxiety, and reduced cocaine response in circadian clock-deficient cryptochrome knockout mice. Front Behav Neurosci. 2013;7.
Hühne A, Welsh DK, Landgraf D. Prospects for circadian treatment of mood disorders. Ann Med. 2018;50:637–54.
pubmed: 30265156 doi: 10.1080/07853890.2018.1530449
Bayassi-Jakowicka M, Lietzau G, Czuba E, Patrone C, Kowiański P. More than addiction—the nucleus accumbens contribution to development of mental disorders and neurodegenerative diseases. IJMS. 2022;23:2618.
pubmed: 35269761 pmcid: 8910774 doi: 10.3390/ijms23052618
Grueter BA, Rothwell PE, Malenka RC. Integrating synaptic plasticity and striatal circuit function in addiction. Curr Opin Neurobiol. 2012;22:545–51.
pubmed: 22000687 doi: 10.1016/j.conb.2011.09.009

Auteurs

Paul Volkmann (P)

Circadian Biology Group, Section of Molecular Neurobiology, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany. paul.volkmann@dpag.ox.ac.uk.
Molecular Neurobiology Group, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany. paul.volkmann@dpag.ox.ac.uk.
Centre for Neural Circuits and Behaviour, University of Oxford, OX1 3SR, Oxford, UK. paul.volkmann@dpag.ox.ac.uk.

Annika E I Geiger (AEI)

Circadian Biology Group, Section of Molecular Neurobiology, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany.

Anisja Hühne-Landgraf (A)

Circadian Biology Group, Section of Molecular Neurobiology, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany.

Nina Miljanovic (N)

Institute of Pharmacology, Toxicology, and Pharmacy, LMU, 80539, Munich, Germany.

Jessica Bly (J)

Molecular Neurobiology Group, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany.

Tobias Engl (T)

Circadian Biology Group, Section of Molecular Neurobiology, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany.

Heidrun Potschka (H)

Institute of Pharmacology, Toxicology, and Pharmacy, LMU, 80539, Munich, Germany.

Moritz J Rossner (MJ)

Molecular Neurobiology Group, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany.
Systasy Bioscience GmbH, 81669, Munich, Germany.

Dominic Landgraf (D)

Circadian Biology Group, Section of Molecular Neurobiology, Department of Psychiatry and Psychotherapy, LMU University Hospital, 80336, Munich, Germany.

Classifications MeSH