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Referanslar
Carskadon MA, Dement WC. Normal human sleep: an overview. Princ Pract sleep Med. 2005;4(1):13–23.
Schneider L. Neurobiology and Neuroprotective Benefits of Sleep. Contin Lifelong Learn Neurol. 2020;26(4):848–70.
Rasch B, Born J. About sleep’s role in memory. Physiol Rev. 2013;93(2):681–766.
Donlea JM. Roles for sleep in memory: insights from the fly. Curr Opin Neurobiol. 2019;54:120–6.
Stickgold R. Sleep-dependent memory consolidation. Nature. 2005;437(7063):1272–8.
Diekelmann S, Born J. The memory function of sleep. Nat Rev Neurosci [Internet]. 2010;11(2):114–26. Available from: http://dx.doi.org/10.1038/nrn2762
Saper CB, Fuller PM. Wake–sleep circuitry: an overview. Curr Opin Neurobiol. 2017;44:186–92.
Hasan R. Updates on the sleep-wake cycle. 2018;(February).
Borbely AA. A two process model of sleep regulation. Hum Neurobiol. 1982;1(3):195–204.
Krueger JM, Szentirmai E, Kapas L. Biochemistry of sleep function: a paradigm for brain organization of sleep. Basics sleep Guid 2nd ed Westchester, Sleep Res Soc. 2009;69–74.
Li H, Satinoff E. Changes in circadian rhythms of body temperature and sleep in old rats. Am J Physiol Integr Comp Physiol. 1995;269(1):R208–14.
Venner A, Todd WD, Fraigne J, Bowrey H, Eban-Rothschild A, Kaur S, et al. Newly identified sleep–wake and circadian circuits as potential therapeutic targets. Sleep. 2019;42(5):zsz023.
Klinzing JG, Niethard N, Born J. Mechanisms of systems memory consolidation during sleep. Nat Neurosci [Internet]. 2019;22(10):1598–610. Available from: http://dx.doi.org/10.1038/s41593-019-0467-3
Gott JA, Liley DTJ, Hobson JA. Towards a functional understanding of PGO waves. Front Hum Neurosci. 2017;11(March):1–12.
McGinty D, Szymusiak R. Neural control of sleep in mammals. In: Principles and practice of sleep medicine. Elsevier; 2017. p. 62–77.
Girardeau G, Lopes-Dos-Santos V. Brain neural patterns and the memory function of sleep. Science (80- ). 2021;374(6567):560–4.
Walker MP, Stickgold R. Sleep-dependent learning and memory consolidation. Neuron. 2004;44(1):121–33.
MacDonald KJ, Cote KA. Contributions of post-learning REM and NREM sleep to memory retrieval. Sleep Med Rev [Internet]. 2021;59:101453. Available from: https://doi.org/10.1016/j.smrv.2021.101453
Maquet P. The role of sleep in learning and memory. Science (80- ). 2001;294(5544):1048–52.
Plihal W, Born J. Effects of early and late nocturnal sleep on declarative and procedural memory. J Cogn Neurosci. 1997;9(4):534–47.
Plihal W, Born J. Effects of early and late nocturnal sleep on priming and spatial memory. Psychophysiology. 1999;36(5):571–82.
Wagner U, Gais S, Born J. Emotional memory formation is enhanced across sleep intervals with high amounts of rapid eye movement sleep. Learn Mem. 2001;8(2):112–9.
Horne JA, McGrath MJ. The consolidation hypothesis for REM sleep function: stress and other confounding factors—a review. Biol Psychol. 1984;18(3):165–84.
Gais S, Plihal W, Wagner U, Born J. Early sleep triggers memory for early visual discrimination skills. Nat Neurosci. 2000;3(12):1335–9.
Huber R, Felice Ghilardi M, Massimini M, Tononi G. Local sleep and learning. Nature. 2004;430(6995):78–81.
Aeschbach D, Cutler AJ, Ronda JM. A role for non-rapid-eye-movement sleep homeostasis in perceptual learning. J Neurosci. 2008;28(11):2766–72.
Fogel SM, Smith CT, Cote KA. Dissociable learning-dependent changes in REM and non-REM sleep in declarative and procedural memory systems. Behav Brain Res. 2007;180(1):48–61.
Rauchs G, Bertran F, Guillery-Girard B, Desgranges B, Kerrouche N, Denise P, et al. Consolidation of strictly episodic memories mainly requires rapid eye movement sleep. Sleep. 2004;27(3):395–401.
Giuditta A, Ambrosini MV, Montagnese P, Mandile P, Cotugno M, Zucconi GG, et al. The sequential hypothesis of the function of sleep. Behav Brain Res. 1995;69(1–2):157–66.
Stickgold R, Whidbee D, Schirmer B, Patel V, Hobson JA. Visual discrimination task improvement: A multi-step process occurring during sleep. J Cogn Neurosci. 2000;12(2):246–54.
Mednick S, Nakayama K, Stickgold R. Sleep-dependent learning: a nap is as good as a night. Nat Neurosci. 2003;6(7):697–8.
Ficca G, Salzarulo P. What in sleep is for memory. Sleep Med. 2004;5(3):225–30.
Sawangjit A, Oyanedel CN, Niethard N, Salazar C, Born J, Inostroza M. The hippocampus is crucial for forming non-hippocampal long-term memory during sleep. Nature. 2018;564(7734):109–13.
Rasch B, Büchel C, Gais S, Born J. Odor cues during slow-wave sleep prompt declarative memory consolidation. Science (80- ). 2007;315(5817):1426–9.
Helfrich RF, Lendner JD, Mander BA, Guillen H, Paff M, Mnatsakanyan L, et al. Bidirectional prefrontal-hippocampal dynamics organize information transfer during sleep in humans. Nat Commun [Internet]. 2019;10(1):3572. Available from: https://doi.org/10.1038/s41467-019-11444-x
Ribeiro S, Shi X, Engelhard M, Zhou Y, Zhang H, Gervasoni D, et al. Novel experience induces persistent sleep-dependent plasticity in the cortex but not in the hippocampus. Front Neurosci. 2007;3.
Tononi G, Cirelli C. Sleep and the price of plasticity: from synaptic and cellular homeostasis to memory consolidation and integration. Neuron. 2014;81(1):12–34.
Tononi G, Cirelli C. Sleep function and synaptic homeostasis. Sleep Med Rev. 2006;10(1):49–62.
Vyazovskiy V V, Cirelli C, Pfister-Genskow M, Faraguna U, Tononi G. Molecular and electrophysiological evidence for net synaptic potentiation in wake and depression in sleep. Nat Neurosci. 2008;11(2):200–8.
Dash MB, Douglas CL, Vyazovskiy V V, Cirelli C, Tononi G. Long-term homeostasis of extracellular glutamate in the rat cerebral cortex across sleep and waking states. J Neurosci. 2009;29(3):620–9.
De Vivo L, Bellesi M, Marshall W, Bushong EA, Ellisman MH, Tononi G, et al. Ultrastructural evidence for synaptic scaling across the wake/sleep cycle. Science (80- ). 2017;355(6324):507–10.
Diering GH, Nirujogi RS, Roth RH, Worley PF, Pandey A, Huganir RL. Homer1a drives homeostatic scaling-down of excitatory synapses during sleep. Science (80- ). 2017;355(6324):511–5.
Huber R, Ghilardi MF, Massimini M, Tononi G. Huber_nature2004. 2004;430(July):4–7.
Mölle M, Eschenko O, Gais S, Sara SJ, Born J. The influence of learning on sleep slow oscillations and associated spindles and ripples in humans and rats. Eur J Neurosci. 2009 Mar;29(5):1071–81.
Mölle M, Marshall L, Gais S, Born J. Learning increases human electroencephalographic coherence during subsequent slow sleep oscillations. Proc Natl Acad Sci U S A. 2004;101(38):13963–8.
Marshall L, Born J. The contribution of sleep to hippocampus-dependent memory consolidation. Trends Cogn Sci. 2007;11(10):442–50.
Sirota A, Csicsvari J, Buhl D, Buzsáki G. Communication between neocortex and hippocampus during sleep in rodents. Proc Natl Acad Sci. 2003;100(4):2065–9.
Latchoumane CF V., Ngo HV V., Born J, Shin HS. Thalamic Spindles Promote Memory Formation during Sleep through Triple Phase-Locking of Cortical, Thalamic, and Hippocampal Rhythms. Neuron [Internet]. 2017;95(2):424-435.e6. Available from: http://dx.doi.org/10.1016/j.neuron.2017.06.025
Gais S, Mölle M, Helms K, Born J. Learning-Dependent Increases in Sleep Spindle Density. J Neurosci [Internet]. 2002 Aug 1;22(15):6830 LP – 6834. Available from: http://www.jneurosci.org/content/22/15/6830.abstract
Schabus M, Gruber G, Parapatics S, Sauter C, Klösch G, Anderer P, et al. Sleep Spindles and Their Significance for Declarative Memory Consolidation. Sleep [Internet]. 2004 Dec 1;27(8):1479–85. Available from: https://doi.org/10.1093/sleep/27.7.1479
Fogel SM, Smith CT. Learning-dependent changes in sleep spindles and Stage 2 sleep. J Sleep Res. 2006;15(3):250–5.
Eschenko O, Mölle M, Born J, Sara SJ. Elevated sleep spindle density after learning or after retrieval in rats. J Neurosci. 2006;26(50):12914–20.
Schmidt C, Peigneux P, Muto V, Schenkel M, Knoblauch V, Münch M, et al. Encoding difficulty promotes postlearning changes in sleep spindle activity during napping. J Neurosci. 2006;26(35):8976–82.
Morin A, Doyon J, Dostie V, Barakat M, Hadj Tahar A, Korman M, et al. Motor sequence learning increases sleep spindles and fast frequencies in post-training sleep. Sleep. 2008 Aug;31(8):1149–56.
Clemens Z, Fabó D, Halász P. Overnight verbal memory retention correlates with the number of sleep spindles. Neuroscience. 2005;132(2):529–35.
Stoianov IP, Pennartz CMA, Lansink CS, Pezzulo G. Model-based spatial navigation in the hippocampus-ventral striatum circuit: A computational analysis. PLoS Comput Biol. 2018;14(9):1–28.
Ulloor J, Datta S. Spatio-temporal activation of cyclic AMP response element-binding protein, activity-regulated cytoskeletal-associated protein and brain-derived nerve growth factor: A mechanism for pontine-wave generator activation-dependent two-way active-avoidance memor. J Neurochem. 2005;95(2):418–28.
Datta S. Avoidance task training potentiates phasic pontine-wave density in the rat: A mechanism for sleep-dependent plasticity. J Neurosci. 2000;20(22):8607–13.
Louie K, Wilson MA. Temporally structured replay of awake hippocampal ensemble activity during rapid eye movement sleep. Neuron. 2001;29(1):145–56.
Poe GR, Nitz DA, McNaughton BL, Barnes CA. Experience-dependent phase-reversal of hippocampal neuron firing during REM sleep. Brain Res. 2000;855(1):176–80.
Nishida M, Pearsall J, Buckner RL, Walker MP. REM sleep, prefrontal theta, and the consolidation of human emotional memory. Cereb Cortex. 2009;19(5):1158–66.
Sopp MR, Michael T, Weeß HG, Mecklinger A. Remembering specific features of emotional events across time: The role of REM sleep and prefrontal theta oscillations. Cogn Affect Behav Neurosci. 2017;17(6):1186–209.
Popa D, Duvarci S, Popescu AT, Léna C, Paré D. Coherent amygdalocortical theta promotes fear memory consolidation during paradoxical sleep. Proc Natl Acad Sci U S A. 2010;107(14):6516–9.
Ognjanovski N, Broussard C, Zochowski M, Aton SJ. Hippocampal network oscillations rescue memory consolidation deficits caused by sleep loss. Cereb Cortex. 2018;28(10):3711–23.
Schabus M, Hödlmoser K, Pecherstorfer T, Klösch G. Influence of midday naps on declarative memory performance and motivation. Somnologie - Schlafforsch und Schlafmedizin [Internet]. 2005;9(3):148–53. Available from: https://doi.org/10.1111/j.1439-054X.2005.00054.x
Diekelmann S, Biggel S, Rasch B, Born J. Offline consolidation of memory varies with time in slow wave sleep and can be accelerated by cuing memory reactivations. Neurobiol Learn Mem [Internet]. 2012;98(2):103–11. Available from: http://dx.doi.org/10.1016/j.nlm.2012.07.002
Schönauer M, Alizadeh S, Jamalabadi H, Abraham A, Pawlizki A, Gais S. Decoding material-specific memory reprocessing during sleep in humans. Nat Commun [Internet]. 2017;8(1):15404. Available from: https://doi.org/10.1038/ncomms15404
Nishida M, Walker MP. Daytime naps, motor memory consolidation and regionally specific sleep spindles. PLoS One. 2007;2(4).
Landsness EC, Crupi D, Hulse BK, Peterson MJ, Huber R, Ansari H, et al. Sleep-dependent improvement in visuomotor learning: A causal role for slow waves. Sleep. 2009;32(10):1273–84.
Smith C, Young J, Young W. Prolonged Increases in Paradoxical Sleep During and After A voidance-Task Acquisition. Sleep [Internet]. 1980 Sep 1;3(1):67–81. Available from: https://doi.org/10.1093/sleep/3.1.67
Mandai O, Guerrien A, Sockeel P, Dujardin K, Leconte P. REM sleep modifications following a Morse code learning session in humans. Physiol Behav. 1989;46(4):639–42.
Smith C, Lapp L. Increases in Number of REMS and REM Density in Humans following an Intensive Learning Period. Sleep [Internet]. 1991 Jul 1;14(4):325–30. Available from: https://doi.org/10.1093/sleep/14.4.325
Verschoor GJ, Holdstock TL. REM bursts and REM sleep following visual and auditory learning. South African J Psychol. 1984;14(3):69–74.
De Koninck J, Christ G, Hébert G, Rinfret N. Language learning efficiency, dreams and REM sleep. Psychiatr J Univ Ottawa Rev Psychiatr l’Universite d’Ottawa. 1990 Jun;15(2):91–2.
Fischer S, Hallschmid M, Elsner AL, Born J. Sleep forms memory for finger skills. Proc Natl Acad Sci U S A. 2002;99(18):11987–91.