Your Location:Home>Browse special issues>Journal:Study on the mechanism of Amiidan in improving sleep deprivation
Study on the mechanism of Amiidan in improving sleep deprivation
Study on the mechanism of Amiidan in improving sleep deprivation
  • The Paper
    • Yun-xia TAN, Ke JI, Fu-gui LIU, Jie FANG, Ling LIU

      Vol. 28, Issue 7, Pages: 18-25(2022) DOI: 10.13422/j.cnki.syfjx.20220202
      Abstract:ObjectiveTo explore the effect of Anmeidan (AMD) on the learning and memory ability of sleep-deprived rats and the mechanism.MethodA total of 50 SD rats were randomized into control group, model group, low-dose AMD group (4.55 g·kg-1·d-1), high-dose AMD group (18.18 g·kg-1·d-1), and estazolam group (0.09 mg·kg-1·d-1). Insomnia was induced in rats with the self-made sleep deprivation box (21 days). The learning and memory ability of rats was measured by Morris water maze. Immunofluorescence method was employed to detect the number of cells expressing N-myc downstream-regulated gene 2 (NDRG2) and glial fibrillary acidic protein (GFAP) in hippocampus of rats, real-time fluorescent quantitative polymerase chain reaction (Real-time PCR) to determine the mRNA expression of hippocampal NDRG2, glial glutamate transporter-1 (GLT-1), and GluNR2A and GluNR2B N-methyl-D-aspartate (NMDA) receptor subunits, and Western blot to examine the protein expression of NDRG2 and GLT-1 in hippocampus.ResultCompared with control group, the model group showed increase in the latency to reach the platform and total swimming distance, significant decrease in the total distance moved in the target quadrant, time in target quadrant, and times of crossing the platform (P<0.01), rise in the number of cells expressing NDRG2 and GFAP in the hippocampal CA1 region (P<0.01) and the mRNA level of NDRG2 and GluNR2B, reduction in the mRNA level of GLT-1 and GluNR2A, elevation in NDRG2 protein expression (P<0.01), and decrease in GLT-1 protein expression (P<0.01). In contrast to the model group, low-dose and high-dose AMD improved the learning and memory levels of sleep-deprived rats (P<0.01), reduced the number of cells expressing NDRG2 and GFAP (P<0.01), significantly decreased the mRNA expression of NDRG2 and GluNR2B, increased the mRNA expression of GLT-1 and GluNR2A, reduced NDRG2 protein level (P<0.05, P<0.01), and raised GLT-1 protein level (P<0.01).ConclusionAMD can improve the learning and memory ability of sleep-deprived rats. The mechanism is the likelihood that it regulates astrocyte activity, thereby affecting the neurotransmitter level and synaptic plasticity in the brain.  
      Keywords:Anmeidan;sleep deprivation;learning and memory;astrocytes;excitatory toxicity  
      209
      |
      109
      |
      10
      citations on Dimensions.
      citations on Dimensions.
      <HTML>
      <H-PDF><L-PDF>
      Updated:2022-03-07
      • Abstract:ObjectiveTo investigate the effects of Anmeidan (AMD) on neuronal structure and neuronal marker protein expression in the hippocampal CA1 region of sleep-deprived (SD) rats.MethodRats were randomly divided into control group, model group, an AMD group (9.09 g·kg-1·d-1), and melatonin group (0.27 g·kg-1·d-1). Rats in the control group and the model group received equal volumes of physiologicol saline. The SD model was induced by the self-made sleep deprivation box for four weeks. Ethovision XT system detected and analyzed the spontaneous behaviors of rats. The histomorphology of neurons in the hippocampal CA1 region was observed by hematoxylin-eosin (HE) staining and Nissl staining, and the changes in Nissl bodies were observed by Nissl staining. The ultrastructure of hippocampal cells was observed by transmission electron microscopy (TEM). Immunohistochemistry was used to detect the expression of glial fibrillary acidic protein (GFAP), microtubule-associated protein 2 (MAP2), nestin, and neuronal nuclei (NeuN) in the CA1 region.ResultCompared with the control group, the model group showed longer distance, increased average activity speed, cumulative duration, average body fill, and higher activity frequency (P<0.01). Besides, the neurons in the CA1 region were reduced in number with disorganized arrangement, wrinkled nuclei, deeply stained cytoplasm, reduced Nissl bodies, swollen and deformed mitochondria, shortened cristae, and swollen Golgi vesicles. Furthermore, the mean integral absorbance (IA) value of GFAP increased and those of MAP2, nestin, and NeuN decreased (P<0.01). Compared with the model group, the AMD group showed shortened distance traveled, lower average activity speed, shorter cumulative duration, decreased average body fill, and reduced activity frequency (P<0.05, P<0.01). Moreover, the neurons in the CA1 region were relieved from damage with increased cell number, clear nuclei and cytoplasm, increased Nissl bodies, and relieved mitochondrial damage. The IA value of GFAP decreased and those of MAP2, nestin, and NeuN increased (P<0.05, P<0.01).ConclusionAMD can improve structural damage of neurons in the hippocampal CA1 region of sleep-deprived rats, which may be achieved by decreasing GFAP expression and increasing MAP2, nestin, and NeuN expression.  
        Keywords:Anmeidan;sleep deprivation;glial fibrillary acidic protein (GFAP);microtubule-associated protein 2 (MAP2);nestin;neuronal nuclei (NeuN)  
        230
        |
        95
        |
        10
        citations on Dimensions.
        citations on Dimensions.
        <HTML>
        <H-PDF><L-PDF>
        Updated:2022-03-07
        • Abstract:ObjectiveTo investigate the effect of Anmeidan (AMD) on biological rhythm and related protein expression in sleep-deprived rats.MethodA total of 80 SD rats were randomized into control group (Ctrl, equivalent volume of saline), model group (SD, equivalent volume of saline), AMD group (9.09 g·kg-1·d-1), and melatonin group (MT, 0.27 g·kg-1·d-1). Insomnia was induced in rats by self-made sleep deprivation box (4 weeks). Circadian rhythm of spontaneous activity was evaluated by spontaneous activity video analysis system. Morphology of hypothalamus was observed based on hematoxylin-eosin (HE) staining, and the histomorphology of hypothalamus neurons and the Nissl's bodies based on Nissl staining. Western blotting was employed to detect the expression of hypothalamic proteins in cAMP-response element binding protein (CREB)/clock gene period (Per) pathway, and immunohistochemistry the expression of brain and muscle ARNT-like protein 1 (Bmal1), Clock, Per1, and cryptochrome circadian regulator 1 (Cry1).ResultThe model group demonstrated circadian rhythm disorder, as manifested by the significant increase in activity time in 6 designated time periods compared with the control group, and the rise in the activity speed and frequency (P<0.01). Moreover, model group showed decrease in number of neurons which were sparsely arranged with shrunken or fragmented nuclei, reduction in number and loss of Nissl's bodies with light color, and drop in the relative expression of p-CREB and Per1, and the positive rate of Bmal1, Clock, Per1, and Cry1 (P<0.01). Compared with model group, AMD group demonstrated reduction in time, speed, and frequency of activity (P<0.01). Moreover, the AMD group also showed alleviation of neuronal damage (P<0.01), and increase in the number of neurons with clear nuclei and cytoplasm in some, and the number of Nissl's bodies. AMD raised the expression of p-CREB and Per1 proteins, and the positive rate of Bmal1, Clock, Per1, and Cry1 (P<0.01).ConclusionAMD ameliorated spontaneous circadian rhythm of sleep-deprived rats by regulating CREB/Per signaling pathway and further increasing the expression of Bmal1, Clock, Per1, and Cry1.  
          Keywords:Anmeidan;sleep deprivation;circadian rhythm;Clock proteins;suprachiasmatic nucleus (SCN)  
          229
          |
          107
          |
          9
          citations on Dimensions.
          citations on Dimensions.
          <HTML>
          <H-PDF><L-PDF>
          Updated:2022-03-07
          • Jing XIA, Bo XU, Guang-jing XIE, Pan-pan HUANG, Ping WANG

            Vol. 28, Issue 7, Pages: 40-48(2022) DOI: 10.13422/j.cnki.syfjx.20220707
            Abstract:Sleep plays an important role in energy balance. As reported, sleep disorder is an important risk factor for metabolic diseases. Controlling the relationship between energy metabolism and sleep can affect sleep homeostasis and body metabolic rate. Chinese medicine, with remarkable curative effects in the prevention and treatment of insomnia, has the characteristics of green, safety, and few side effects, and attracts extensive attention of scholars in the world. In recent years, remarkable progress has been made in the research on the mechanism of Chinese medicine in interfering with sleep. This paper reviewed the research progress of mind-tranquilizing Chinese medicines, such as compounds (pterostilbene), Chinese medicinal drugs (Ziziphi Spinosae Semen), and Chinese medicinal prescriptions (Jiaotaiwan, Suanzaoren tang, Tianwang Buxindan, Anmeidan, Banxia Houpotang, Qihuo decoction, Songyu Anshen prescriptions, and Shuxie Yihao prescriptions) in the treatment of sleep disorders by regulating energy metabolism. The findings revealed that Chinese medicine can intervene in the sleep deprivation model by affecting metabolism-related pathways such as material metabolism, mitochondrial function, oxidative stress and inflammatory response, appetite system, and biological clock system. In terms of frequency of use, the top drugs are Ziziphi Spinosae Semen, Poria, Schisandrae Chinensis Fructus, and Salviae Miltiorrhizae Radix et Rhizoma which affect heart and liver meridians to regulate blood circulation, ensure energy supply, and play the role of nourishing the heart and tranquilizing the mind. The present paper summarized the effects and mechanisms of Chinese medicine in the treatment of insomnia and other sleep disorders from the perspective of energy metabolism to provide references for further research and exploration of diseases in the future.  
            Keywords:sleep;energy metabolism;molecular mechanism;Chinese medicine;mind tranquilizing  
            382
            |
            461
            |
            4
            citations on Dimensions.
            citations on Dimensions.
            <HTML>
            <H-PDF><L-PDF>
            Updated:2022-03-07