Effects of acute sleep deprivation on behavior and synaptic biomarker expression in rats at different times
CSTR:
Author:
Affiliation:

1.Baotou Medical College, Inner Mongolia University of Science and Technology;2.Department of Human Anatomy, Baotou Medical College, Inner Mongolia University of Science and Technology

  • Article
  • | |
  • Metrics
  • |
  • Reference [31]
  • | | | |
  • Comments
    Abstract:

    Objective: To investigate the effects of acute sleep deprivation on the behavior and synaptic protein expression in rats at different times. Methods: Seventy healthy male Wistar rats were randomly divided into 7 groups, control group, different time sleep deprivation groups (24 hour, 48 hour, 72 hour, 96 hour, 120 hour and 144 hour). The sleep deprivation rat model was established by modified multi-platform water environment sleep deprivation method. Spatial learning and memory was detected by Morris water maze, anxiety was detected by open field test, and the morphology and quantity of hippocampal neurons were observed by Nissl staining. Western blotting and Real-time PCR determined the expressions of synaptophysin (SYN), post-synaptic density protein-95 (PSD-95) and brain-derived neurotrophic factor (BDNF) in rats. Results: Compared with the control group, the numbers of standing and modification all significantly increased accompanied by the prolongation of sleep deprivation time (P<0.05). The escape latency and path length significantly increased in rats in the 120 h and 144 h groups (P<0.05), while the number of crossing platforms and the percentage of target quadrant time all significantly decreased (P<0.01), and were negatively correlated with sleep deprivation time. The expression levels of BDNF, SYN and PSD-95 all significantly decreased accompanied by the prolongation of sleep deprivation time (P<0.01), and was negatively correlated with sleep deprivation time. Conclusion: With the increase of sleep deprivation time, cognitive dysfunction and anxiety gradually deteriorated, which may be related to decrease in expression level of synaptic biomarkers.

    Reference
    [1] Xie L, Kang H, Xu Q, et al. Sleep drives metabolite clearance from the adult brain?[J].Science, 2013, 342(6156): 373-377.
    [2] Eide PK, Vinje V, Pripp AH, et al. Sleep deprivation impairs molecular clearance from the human brain[J].?Brain, 2021, 144(3): 863-874.
    [3] Harma M, Tenkanen L, Sjoblom T, et al. Combined effects of shift work and life-style on the prevalence of insomnia, sleep deprivation and daytime sleepiness[J] Scand J Work Environ Health, 1998, 24(4): 300-307.
    [4] Salehpour F, Farajdokht F, Erfani M, et al. Transcranial near-infrared photobiomodulation attenuates memory impairment and hippocampal oxidative stress in sleep-deprived mice[J].?Brain Res, 2018, 1682: 36-43.
    [5] Lewis LD. The interconnected causes and consequences of sleep in the brain[J].?Science, 2021, 374(6567): 564-568.
    [6] Lo JC, Chong PL, Ganesan S, et al. Sleep deprivation increases formation of false memory[J].?J Sleep Res, 2016, 25(6): 673-682.
    [7] Killgore WD. Effects of sleep deprivation on cognition[J].?Prog Brain Res, 2010, 185: 105-129.
    [8] Zhu Y, Gong S.?Research Progress in the Effect of Sleep Deprivation on Working Memory and Its Mechanisms[J]. Sichuan Da Xue Xue Bao Yi Xue Ban, 2023, 54(2): 240-245.
    [9] 李运, 王海云. Homer1a在睡眠剥夺损伤学习和记忆功能中的研究进展[J]. 临床麻醉学杂志, 2021, 37(08): 891-894.
    [10] 左昕, 潘奇波, 林春辉. 学习记忆中长时记忆形成的分子机制[J]. 海军医学杂志, 2008, 29(04): 364-366.
    [11] Magee JC, Grienberger C. Synaptic Plasticity Forms and Functions[J].?Annu Rev Neurosci, 2020, 43: 95-117.
    [12] Mansvelder HD, Verhoog MB, Goriounova NA. Synaptic plasticity in human cortical circuits: cellular mechanisms of learning and memory in the human brain? [J]. Curr Opin Neurobiol, 2019, 54: 186-193.
    [13] Bin Ibrahim MZ, Benoy A, Sajikumar S. Long-term plasticity in the hippocampus: maintaining within and ''tagging'' between synapses[J].?FEBS J, 2022, 289(8): 2176-2201.
    [14] Compans B, Camus C, Kallergi E, et al. NMDAR-dependent long-term depression is associated with increased short term plasticity through autophagy mediated loss of PSD-95[J]. Nat Commun, 2021, 12(1): 2849.
    [15] Wang X, Huang X, Yang M, et al. Tongxinluo promotes axonal plasticity and functional recovery after stroke[J]. Transl Neurosci, 2020, 11(1): 428-438.
    [16] von Bohlen Und Halbach O, von Bohlen Und Halbach V. BDNF effects on dendritic spine morphology and hippocampal function[J].?Cell Tissue Res, 2018, 373(3): 729-741.
    [17] Kowianski P, Lietzau G, Czuba E, et al. BDNF: A Key Factor with Multipotent Impact on Brain Signaling and Synaptic Plasticity[J].?Cell Mol Neurobiol, 2018, 38(3): 579-593.
    [18] Keifer J. Regulation of AMPAR trafficking in synaptic plasticity by BDNF and the impact of neurodegenerative disease[J].?J Neurosci Res, 2022, 100(4): 979-991.
    [19] 刘心朗, 周丽丽, 杨占君, 等. 肉苁蓉总苷对SAMP8小鼠学习记忆能力及突触可塑性的影响[J]. 中华中医药学刊, 2022, 40(01):110-115+276-277.
    [20] ?王若冲, 戴宁, 李儒婷, 等. 平台水环境法构建人类疾病动物模型的应用与思考[J]. 中国实验方剂学杂志, 2022, 28(22): 205-213.
    [21] Reyes-Resina I, Samer S, Kreutz MR, et al. Molecular Mechanisms of Memory Consolidation That Operate During Sleep[J]. Front Mol Neurosci, 2021, 14: 767384.
    [22] Nabaee E, Kesmati M, Shahriari A, et al. Cognitive and hippocampus biochemical changes following sleep deprivation in the adult male rat[J]. Biomed Pharmacother, 2018, 104: 69-76.
    [23] Killgore WD. Effects of sleep deprivation on cognition[J].?Prog Brain Res, 2010, 185: 105-129.?
    [24] Liu H, Huang X, Li Y, et al. TNF signaling pathway-mediated microglial activation in the PFC underlies acute paradoxical sleep deprivation-induced anxiety-like behaviors in mice[J].?Brain Behav Immun, 2022, 100: 254-266.
    [25] Zhou H, Wu J, Gong Y, et al. Isoquercetin alleviates sleep deprivation dependent hippocampal neurons damage by suppressing NLRP3-induced pyroptosis[J]. Immunopharmacol Immunotoxicol, 2022, 44(5): 766-772.
    [26] Feng Y, Shi R, Hu J, et al. Effects of neural-derived estradiol on actin polymerization and synaptic plasticity-related proteins in prefrontal and hippocampal cells of mice[J]. Steroids, 2022, 177: 108935.
    [27] 周芮. 蒙药珍宝丸改善大鼠睡眠剥夺所致海马氧化应激及突触可塑性的研究[D]. 内蒙古医科大学, 2021.
    [28] Lian WW, Zhou W, Zhang BY, et al. DL0410 ameliorates cognitive disorder in SAMP8 mice by promoting mitochondrial dynamics and the NMDAR-CREB-BDNF pathway[J]. Acta Pharmacol Sin, 2021, 42(7): 1055-1068.
    [29] Yao Y, Wang F, Yang X, et al. Bombesin attenuated ischemia-induced spatial cognitive and synaptic plasticity impairment associated with oxidative damage[J]. Biomed Pharmacother,2018, 103: 87-93.
    [30] Dandi E, Kalamari A, Touloumi O, et al. Beneficial effects of environmental enrichment on behavior,stress reactivity and synaptophysin/BDNF expression in hippocampus following early life stress[J]. Int J Dev Neurosci, 2018, 67: 19-32.
    [31] Pei W, Meng F, Deng Q, et al. Electroacupuncture promotes the survival and synaptic plasticity of hippocampal neurons and improvement of sleep deprivation-induced spatial memory impairment[J].?CNS Neurosci Ther, 2021, 27(12): 1472-1482.
    Related
    Cited by
Get Citation
Share
Article Metrics
  • Abstract:162
  • PDF: 0
  • HTML: 0
  • Cited by: 0
History
  • Received:October 15,2023
  • Revised:December 24,2023
  • Adopted:May 21,2024
Article QR Code