1.Yigong Powder regulates CXCL12/CXCR4 signaling to reduce glutamate release and prevent cognitive decline in mouse model of aging.
Jiang-Ping WEI ; Zi-Xuan ZHAO ; Jing ZENG ; Fang-Hong SHANG ; Lei HUA ; Yong YANG ; Xiao-Mei ZHANG
China Journal of Chinese Materia Medica 2023;48(23):6483-6491
		                        		
		                        			
		                        			This study aims to explore the effect of preventive administration of Yigong Powder on the learning and memory abilities of the mouse model of aging induced by D-galactose and decipher the underlying mechanism, so as to provide a basis for the application of Yigong Powder in the prevention and treatment of cognitive decline. Forty KM mice were randomized into control, model, donepezil(1.5 mg·kg~(-1)), and high-dose(7.5 g·kg~(-1)) and low-dose(3.75 g·kg~(-1)) Yigong Powder groups. The mice in other groups except the control group were injected with D-galactose(200 g·kg~(-1)) at the back of the neck for the modeling of aging. At the same time, the mice were administrated with corresponding drugs by gavage for one month. Morris water maze was used to examine the learning and memory abilities of the mice. Hematoxylin-eosin staining was employed to observe the pathological and morphological changes of the hippocampus. The immunofluorescence assay was employed to detect the expression of ionized calcium-binding adapter molecule 1(IBA1), glial fibrillary acidic protein(GFAP), chemokine C-X-C-motif ligand 12(CXCL12), chemokine C-X-C-motif receptor 4(CXCR4) in the hippocampus and observe the positional relationship between IBA1, GFAP, and CXCR4. Western blot was employed to determine the protein levels of extracellular regulated kinase(ERK), p-ERK, and tumor necrosis factor receptor 1(TNFR1). Enzyme-linked immunosorbent assay was employed to measure the levels of glutamate and tumor necrosis factor(TNF-α) in the brain tissue and the level of TNF-α in the serum and spleen. Yigong Powder significantly shortened the escape latency, increased the times crossing platforms, and prolonged the cumulative time in quadrants of the aging mice. It alleviated the nerve cell disarrangement, increased intercellular space, and cell degeneration or death in the hippocampus and reduced the pathology score of the damaged nerve. Moreover, Yigong Powder reduced the positive area of IBA1 and GFAP, reduced the levels of TNF-α in the brain tissue, serum, and spleen, and decreased spleen index. Furthermore, Yigong Powder decreased the average fluorescence intensity of CXCL12 and CXCR4, reduced CXCR4-positive astrocytes and microglia, down-regulated the protein levels of p-ERK/ERK and TNFR1, and lowered the level of glutamate in the brain tissue. This study showed that the preventive administration of Yigong Powder can ameliorate the learning and memory decline of the D-galactose-induced aging mice by regulating the immune function of the spleen and the CXCL12/CXCR4 signaling in the brain to reduce glutamate release. However, the mechanism of Yigong San in preventing and treating dementia via regulating spleen and stomach function remains to be studied.
		                        		
		                        		
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Powders
		                        			;
		                        		
		                        			Receptors, Tumor Necrosis Factor, Type I
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			Tumor Necrosis Factor-alpha/metabolism*
		                        			;
		                        		
		                        			Galactose/adverse effects*
		                        			;
		                        		
		                        			Disease Models, Animal
		                        			;
		                        		
		                        			Cognitive Dysfunction/prevention & control*
		                        			;
		                        		
		                        			Chemokines
		                        			;
		                        		
		                        			Drugs, Chinese Herbal
		                        			
		                        		
		                        	
2.Activation of the adenosine A2A receptor at the acute stage of moderate traumatic brain injury enhances the neuroprotective effects of oxaloacetate.
Nan YANG ; Zhi-Zhong HUANG ; Si-Wei TAN ; Xing CHEN ; Yan PENG ; Yuan-Guo ZHOU ; Ya-Lei NING
Acta Physiologica Sinica 2022;74(4):505-512
		                        		
		                        			
		                        			The purpose of the present study was to investigate the effect of glutamate scavenger oxaloacetate (OA) combined with CGS21680, an adenosine A2A receptor (A2AR) agonist, on acute traumatic brain injury (TBI), and to elucidate the underlying mechanisms. C57BL/6J mice were subjected to moderate-level TBI by controlled cortical impact, and then were treated with OA, CGS21680, or OA combined with CGS21680 at acute stage of TBI. At 24 h post TBI, neurological severity score, brain water content, glutamate concentration in cerebrospinal fluid (CSF), mRNA and protein levels of IL-1β and TNF-α, mRNA level and activity of glutamate oxaloacetate aminotransferase (GOT), and ATP level of brain tissue were detected. The results showed that neurological deficit, brain water content, glutamate concentration in CSF, and the inflammatory cytokine IL-1β and TNF-α production were exacerbated in CGS21680 treated mice. Administrating OA suppressed the rise of both glutamate concentration in CSF and brain water content, and elevated the ATP level of cerebral tissue. More interestingly, neurological deficit, brain edema, glutamate concentration, IL-1β and TNF-α levels were ameliorated significantly in mice treated with OA combined with CGS21680. The combined treatment exhibited better therapeutic effects than single OA treatment. We also observed that GOT activity was enhanced in single CGS21680 treatment group, and both the GOT mRNA level and GOT activity were up-regulated in early-stage combined treatment group. These results suggest that A2AR can improve the efficiency of GOT and potentiate the ability of OA to metabolize glutamate. This may be the mechanism that A2AR activation in combination group augmented the neuroprotective effect of OA rather than aggravated the brain damages. Taken together, the present study provides a new insight for the clinical treatment of TBI with A2AR agonists and OA.
		                        		
		                        		
		                        		
		                        			Adenosine A2 Receptor Agonists/therapeutic use*
		                        			;
		                        		
		                        			Adenosine Triphosphate
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Brain Injuries/metabolism*
		                        			;
		                        		
		                        			Brain Injuries, Traumatic/metabolism*
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Mice, Inbred C57BL
		                        			;
		                        		
		                        			Neuroprotective Agents/therapeutic use*
		                        			;
		                        		
		                        			Oxaloacetic Acid/therapeutic use*
		                        			;
		                        		
		                        			RNA, Messenger
		                        			;
		                        		
		                        			Receptor, Adenosine A2A/metabolism*
		                        			;
		                        		
		                        			Tumor Necrosis Factor-alpha/genetics*
		                        			;
		                        		
		                        			Water
		                        			
		                        		
		                        	
3.Mechanism of Cordyceps militaris against non-small cell lung cancer: based on serum metabolomics.
Ying-Ying LU ; Xiao HUANG ; Zi-Chen LUO ; Ming-Yuan QI ; Jin-Jun SHAN ; Wen ZHANG ; Liu-Qing DI
China Journal of Chinese Materia Medica 2022;47(18):5032-5039
		                        		
		                        			
		                        			This study investigated the potential mechanism of Cordyceps militaris(CM) against non-small cell lung cancer(NSCLC) based on serum untargeted metabolomics. Specifically, Balb/c nude mice were used to generate the human lung cancer A549 xenograft mouse model. The tumor volume, tumor weight, and tumor inhibition rate in mice in the model, cisplatin, Cordyceps(low-, medium-, and high-dose), and CM(low-, medium-, and high-dose) groups were compared to evaluate the influence of CM on lung cancer. Gas chromatography-mass spectrometry(GC-MS) was used for the analysis of mouse serum, SIMCA 13.0 for the compa-rison of metabolic profiles, and MetaboAnalyst 5.0 for the analysis of metabolic pathways. According to the pharmacodynamic data, the tumor volume and tumor weight of mice in high-dose CM group and cisplatin group decreased as compared with those in the model group(P<0.05 or P<0.01). The results of serum metabolomics showed that the metabolic profiles of the model group were significantly different from those of the high-dose CM group, and the content of endogenous metabolites was adjusted to different degrees. A total of 42 differential metabolites and 7 differential metabolic pathways were identified. In conclusion, CM could significantly inhibit the tumor growth of lung cancer xenograft mice. The mechanism is the likelihood that it influences the aminoacyl-tRNA biosynthesis, the metabolism of D-glutamine and D-glutamate, metabolism of alanine, aspartate, and glutamate, metabolism of glyoxylate and dicarboxylic acid, biosynthesis of phenylalanine, tyrosine, and tryptophan, arginine biosynthesis as well as nitrogen metabolism. This study elucidated the underlying mechanism of CM against NSCLC from the point of metabolites. The results would lay a foundation for the anticancer research and clinical application of CM.
		                        		
		                        		
		                        		
		                        			Alanine/metabolism*
		                        			;
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Arginine/metabolism*
		                        			;
		                        		
		                        			Aspartic Acid
		                        			;
		                        		
		                        			Carcinoma, Non-Small-Cell Lung/drug therapy*
		                        			;
		                        		
		                        			Cisplatin/pharmacology*
		                        			;
		                        		
		                        			Cordyceps
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			Glutamine
		                        			;
		                        		
		                        			Glyoxylates/metabolism*
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Lung Neoplasms/drug therapy*
		                        			;
		                        		
		                        			Metabolomics/methods*
		                        			;
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Mice, Nude
		                        			;
		                        		
		                        			Nitrogen/metabolism*
		                        			;
		                        		
		                        			Phenylalanine/metabolism*
		                        			;
		                        		
		                        			RNA, Transfer/metabolism*
		                        			;
		                        		
		                        			Tryptophan/metabolism*
		                        			;
		                        		
		                        			Tyrosine/metabolism*
		                        			
		                        		
		                        	
4.Sexual Dimorphism of Inputs to the Lateral Habenula in Mice.
Xue LIU ; Hongren HUANG ; Yulin ZHANG ; Liping WANG ; Feng WANG
Neuroscience Bulletin 2022;38(12):1439-1456
		                        		
		                        			
		                        			The lateral habenula (LHb), which is a critical neuroanatomical hub and a regulator of midbrain monoaminergic centers, is activated by events resulting in negative valence and contributes to the expression of both appetitive and aversive behaviors. However, whole-brain cell-type-specific monosynaptic inputs to the LHb in both sexes remain incompletely elucidated. In this study, we used viral tracing combined with in situ hybridization targeting vesicular glutamate transporter 2 (vGlut2) and glutamic acid decarboxylase 2 (Gad2) to generate a comprehensive whole-brain atlas of inputs to glutamatergic and γ-aminobutyric acid (GABA)ergic neurons in the LHb. We found >30 ipsilateral and contralateral brain regions that projected to the LHb. Of these, there were significantly more monosynaptic LHb-projecting neurons from the lateral septum, anterior hypothalamus, dorsomedial hypothalamus, and ventromedial hypothalamus in females than in males. More interestingly, we found a stronger GABAergic projection from the medial septum to the LHb in males than in females. Our results reveal a comprehensive connectivity atlas of glutamatergic and GABAergic inputs to the LHb in both sexes, which may facilitate a better understanding of sexual dimorphism in physiological and pathological brain functions.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Male
		                        			;
		                        		
		                        			Mice
		                        			;
		                        		
		                        			Glutamic Acid/metabolism*
		                        			;
		                        		
		                        			Habenula/metabolism*
		                        			;
		                        		
		                        			Hypothalamus/metabolism*
		                        			;
		                        		
		                        			Neural Pathways/physiology*
		                        			;
		                        		
		                        			Sex Characteristics
		                        			;
		                        		
		                        			Vesicular Glutamate Transport Protein 2/metabolism*
		                        			;
		                        		
		                        			Female
		                        			
		                        		
		                        	
5.Effect of key notes of TCA cycle on L-glutamate production.
Zhina QIAO ; Meijuan XU ; Mengfei LONG ; Taowei YANG ; Xian ZHANG ; Nakanishi HIDEKI ; Zhiming RAO
Chinese Journal of Biotechnology 2020;36(10):2113-2125
		                        		
		                        			
		                        			Glutamic acid is an important amino acid with wide range of applications and huge market demand. Therefore, by performing transcriptome sequencing and re-sequencing analysis on Corynebacterium glutamicum E01 and high glutamate-producing strain C. glutamicum G01, we identified and selected genes with significant differences in transcription and gene levels in the central metabolic pathway that may have greatly influenced glutamate synthesis and further increased glutamic acid yield. The oxaloacetate node and α-ketoglutarate node play an important role in glutamate synthesis. The oxaloacetate node and α-ketoglutarate node were studied to explore effect on glutamate production. Based on the integrated strain constructed from the above experimental results, the growth rate in a 5-L fermenter was slightly lower than that of the original strain, but the glutamic acid yield after 48 h reached (136.1±5.53) g/L, higher than the original strain (93.53±4.52) g/L, an increase by 45.5%; sugar-acid conversion rate reached 58.9%, an increase of 13.7% compared to 45.2% of the original strain. The application of the above experimental strategy improved the glutamic acid yield and the sugar-acid conversion rate, and provided a theoretical basis for the metabolic engineering of Corynebacterium glutamicum.
		                        		
		                        		
		                        		
		                        			Citric Acid Cycle
		                        			;
		                        		
		                        			Corynebacterium glutamicum/metabolism*
		                        			;
		                        		
		                        			Glutamic Acid/metabolism*
		                        			;
		                        		
		                        			Metabolic Engineering
		                        			;
		                        		
		                        			Metabolic Networks and Pathways/genetics*
		                        			
		                        		
		                        	
6.Effect of Gastrodin on Early Brain Injury and Neurological Outcome After Subarachnoid Hemorrhage in Rats.
Xinzhi WANG ; Shuyue LI ; Jinbang MA ; Chuangang WANG ; Anzhong CHEN ; Zhenxue XIN ; Jianjun ZHANG
Neuroscience Bulletin 2019;35(3):461-470
		                        		
		                        			
		                        			Gastrodin is a phenolic glycoside that has been demonstrated to provide neuroprotection in preclinical models of central nervous system disease, but its effect in subarachnoid hemorrhage (SAH) remains unclear. In this study, we showed that intraperitoneal administration of gastrodin (100 mg/kg per day) significantly attenuated the SAH-induced neurological deficit, brain edema, and increased blood-brain barrier permeability in rats. Meanwhile, gastrodin treatment significantly reduced the SAH-induced elevation of glutamate concentration in the cerebrospinal fluid and the intracellular Ca overload. Moreover, gastrodin suppressed the SAH-induced microglial activation, astrocyte activation, and neuronal apoptosis. Mechanistically, gastrodin significantly reduced the oxidative stress and inflammatory response, up-regulated the expression of nuclear factor erythroid 2-related factor 2, heme oxygenase-1, phospho-Akt and B-cell lymphoma 2, and down-regulated the expression of BCL2-associated X protein and cleaved caspase-3. Our results suggested that the administration of gastrodin provides neuroprotection against early brain injury after experimental SAH.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Apoptosis
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Astrocytes
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Benzyl Alcohols
		                        			;
		                        		
		                        			administration & dosage
		                        			;
		                        		
		                        			Blood-Brain Barrier
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Brain
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Brain Edema
		                        			;
		                        		
		                        			etiology
		                        			;
		                        		
		                        			prevention & control
		                        			;
		                        		
		                        			Calcium
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Glucosides
		                        			;
		                        		
		                        			administration & dosage
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Male
		                        			;
		                        		
		                        			Microglia
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Neurons
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Neuroprotective Agents
		                        			;
		                        		
		                        			administration & dosage
		                        			;
		                        		
		                        			Oxidative Stress
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Rats, Sprague-Dawley
		                        			;
		                        		
		                        			Subarachnoid Hemorrhage
		                        			;
		                        		
		                        			complications
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			prevention & control
		                        			
		                        		
		                        	
7.Therapeutic Effects of Amino Acids in Liver Diseases: Current Studies and Future Perspectives
Journal of Cancer Prevention 2019;24(2):72-78
		                        		
		                        			
		                        			Hepatocellular carcinoma (HCC) is the most common primary malignant tumor of the liver and the third most common cause of cancer-related death worldwide. HCC is caused by infection of hepatitis B/C virus and liver dysfunctions, such as alcoholic liver disease, nonalcoholic fatty liver disease, and cirrhosis. Amino acids are organic substances containing amine and carboxylic acid functional groups. There are over 700 kinds of amino acids in nature, but only about 20 of them are used to synthesize proteins in cells. Liver is an important organ for protein synthesis, degradation and detoxification as well as amino acid metabolism. In the liver, there are abundant non-essential amino acids, such as alanine, aspartate, glutamate, glycine, and serine and essential amino acids, such as histidine and threonine. These amino acids are involved in various cellular metabolisms, the synthesis of lipids and nucleotides as well as detoxification reactions. Understanding the role of amino acids in the pathogenesis of liver and the effects of amino acid intake on liver disease can be a promising strategy for the prevention and treatment of liver disease. In this review, we describe the biochemical properties and functions of amino acids and to review how they have been applied to treatment of liver diseases.
		                        		
		                        		
		                        		
		                        			Alanine
		                        			;
		                        		
		                        			Amino Acids
		                        			;
		                        		
		                        			Amino Acids, Essential
		                        			;
		                        		
		                        			Aspartic Acid
		                        			;
		                        		
		                        			Carcinoma, Hepatocellular
		                        			;
		                        		
		                        			Fibrosis
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			Glycine
		                        			;
		                        		
		                        			Hepatitis
		                        			;
		                        		
		                        			Histidine
		                        			;
		                        		
		                        			Liver Diseases
		                        			;
		                        		
		                        			Liver Diseases, Alcoholic
		                        			;
		                        		
		                        			Liver
		                        			;
		                        		
		                        			Metabolism
		                        			;
		                        		
		                        			Non-alcoholic Fatty Liver Disease
		                        			;
		                        		
		                        			Nucleotides
		                        			;
		                        		
		                        			Serine
		                        			;
		                        		
		                        			Therapeutic Uses
		                        			;
		                        		
		                        			Threonine
		                        			
		                        		
		                        	
8.Identification of proteins differentially expressed by glutamate treatment in cerebral cortex of neonatal rats
Ju Bin KANG ; Dong Ju PARK ; Phil Ok KOH
Laboratory Animal Research 2019;35(4):172-179
		                        		
		                        			
		                        			Glutamate leads to neuronal cell damage by generating neurotoxicity during brain development. The objective of this study is to identify proteins that differently expressed by glutamate treatment in neonatal cerebral cortex. Sprague-Dawley rat pups (post-natal day 7) were intraperitoneally injected with vehicle or glutamate (10 mg/kg). Brain tissues were isolated 4 h after drug treatment and fixed for morphological study. Moreover, cerebral cortices were collected for protein study. Two-dimensional gel electrophoresis and mass spectrometry were carried out to identify specific proteins. We observed severe histopathological changes in glutamate-exposed cerebral cortex. We identified various proteins that differentially expressed by glutamate exposure. Identified proteins were thioredoxin, peroxiredoxin 5, ubiquitin carboxy-terminal hydrolase L1, proteasome subunit alpha proteins, isocitrate dehydrogenase, and heat shock protein 60. Heat shock protein 60 was increased in glutamate exposed condition. However, other proteins were decreased in glutamate-treated animals. These proteins are related to anti-oxidant, protein degradation, metabolism, signal transduction, and anti-apoptotic function. Thus, our findings can suggest that glutamate leads to neonatal cerebral cortex damage by regulation of specific proteins that mediated with various functions.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Brain
		                        			;
		                        		
		                        			Cerebral Cortex
		                        			;
		                        		
		                        			Chaperonin 60
		                        			;
		                        		
		                        			Electrophoresis, Gel, Two-Dimensional
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Infant, Newborn
		                        			;
		                        		
		                        			Isocitrate Dehydrogenase
		                        			;
		                        		
		                        			Mass Spectrometry
		                        			;
		                        		
		                        			Metabolism
		                        			;
		                        		
		                        			Neurons
		                        			;
		                        		
		                        			Peroxiredoxins
		                        			;
		                        		
		                        			Proteasome Endopeptidase Complex
		                        			;
		                        		
		                        			Proteolysis
		                        			;
		                        		
		                        			Proteomics
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Rats, Sprague-Dawley
		                        			;
		                        		
		                        			Signal Transduction
		                        			;
		                        		
		                        			Thioredoxins
		                        			;
		                        		
		                        			Ubiquitin Thiolesterase
		                        			
		                        		
		                        	
9.Obesity-Associated Metabolic Signatures Correlate to Clinical and Inflammatory Profiles of Asthma: A Pilot Study.
Ying LIU ; Jing ZHENG ; Hong Ping ZHANG ; Xin ZHANG ; Lei WANG ; Lisa WOOD ; Gang WANG
Allergy, Asthma & Immunology Research 2018;10(6):628-647
		                        		
		                        			
		                        			PURPOSE: Obesity is associated with metabolic dysregulation, but the underlying metabolic signatures involving clinical and inflammatory profiles of obese asthma are largely unexplored. We aimed at identifying the metabolic signatures of obese asthma. METHODS: Eligible subjects with obese (n = 11) and lean (n = 22) asthma underwent body composition and clinical assessment, sputum induction, and blood sampling. Sputum supernatant was assessed for interleukin (IL)-1β, -4, -5, -6, -13, and tumor necrosis factor (TNF)-α, and serum was detected for leptin, adiponectin and C-reactive protein. Untargeted gas chromatography time-of-flight mass spectrometry (GC-TOF-MS)-based metabolic profiles in sputum, serum and peripheral blood monocular cells (PBMCs) were analyzed by orthogonal projections to latent structures-discriminate analysis (OPLS-DA) and pathway topology enrichment analysis. The differential metabolites were further validated by correlation analysis with body composition, and clinical and inflammatory profiles. RESULTS: Body composition, asthma control, and the levels of IL-1β, -4, -13, leptin and adiponectin in obese asthmatics were significantly different from those in lean asthmatics. OPLS-DA analysis revealed 28 differential metabolites that distinguished obese from lean asthmatic subjects. The validation analysis identified 18 potential metabolic signatures (11 in sputum, 4 in serum and 2 in PBMCs) of obese asthmatics. Pathway topology enrichment analysis revealed that cyanoamino acid metabolism, caffeine metabolism, alanine, aspartate and glutamate metabolism, phenylalanine, tyrosine and tryptophan biosynthesis, pentose phosphate pathway in sputum, and glyoxylate and dicarboxylate metabolism, glycerolipid metabolism and pentose phosphate pathway in serum are suggested to be significant pathways related to obese asthma. CONCLUSIONS: GC-TOF-MS-based metabolomics indicates obese asthma is characterized by a metabolic profile different from lean asthma. The potential metabolic signatures indicated novel immune-metabolic mechanisms in obese asthma with providing more phenotypic and therapeutic implications, which needs further replication and validation.
		                        		
		                        		
		                        		
		                        			Adiponectin
		                        			;
		                        		
		                        			Alanine
		                        			;
		                        		
		                        			Aspartic Acid
		                        			;
		                        		
		                        			Asthma*
		                        			;
		                        		
		                        			Body Composition
		                        			;
		                        		
		                        			C-Reactive Protein
		                        			;
		                        		
		                        			Caffeine
		                        			;
		                        		
		                        			Chromatography, Gas
		                        			;
		                        		
		                        			Glutamic Acid
		                        			;
		                        		
		                        			Interleukins
		                        			;
		                        		
		                        			Leptin
		                        			;
		                        		
		                        			Mass Spectrometry
		                        			;
		                        		
		                        			Metabolism
		                        			;
		                        		
		                        			Metabolome
		                        			;
		                        		
		                        			Metabolomics
		                        			;
		                        		
		                        			Obesity
		                        			;
		                        		
		                        			Pentose Phosphate Pathway
		                        			;
		                        		
		                        			Phenylalanine
		                        			;
		                        		
		                        			Pilot Projects*
		                        			;
		                        		
		                        			Sputum
		                        			;
		                        		
		                        			Tryptophan
		                        			;
		                        		
		                        			Tumor Necrosis Factor-alpha
		                        			;
		                        		
		                        			Tyrosine
		                        			
		                        		
		                        	
10.Measurement of the metabolites in the cortical masticatory area of patients with sleep bruxism: a magnetic resonance spectroscopy study.
Xiao FAN ; Jijun WANG ; Weicai LIU
Chinese Journal of Stomatology 2016;51(5):305-309
OBJECTIVETo determine whether there are in vivo differences of metabolites levels in bilateral cortical masticatory area(CMA) of patients with sleep bruxism, compared with healthy controls using proton magnetic resonance spectroscopy(1H-MRS). Accordingly to explore if cortical control of the central jaw motor system is abnormal in sleep bruxism patients.
METHODSFifteen sleep bruxism patients and fifteen age- and gender-matched healthy controls underwent 1H-MRS of bilateral CMA using J-difference edited point-resolved spectroscopy sequence(MEGA-PRESS) technique. Levels of metabolites were quantified from the ratio of the metabolite integral to the unsuppressed water signal. Differences of levels of γ-aminobutyric acid(GABA), glutmate(Glu) and N-acetyl aspartate(NAA) in bilateral CMA between sleep bruxism patients and healthy controls were tested using two-way ANOVA.
RESULTSEdited spectra were successfully obtained from the bilateral CMA in all of the participants. Levels of GABA+, glutmate and NAA in right and left CMA in sleep bruxism patients were (2.45±0.48)×10(-3), (2.35±0.62)×10(-3), (10.65±1.84)×10(-3), (10.49±2.37)×10(-3), (10.70±3.61)×10(-3), and (11.26±4.01)×10(-3) respectively. In contrast, levels of GABA+, glutmate and NAA in right and left CMA in healthy controls were (2.63±0.68)×10(-3), (2.65±0.97)×10(-3), (11.19± 1.34)×10(-3), (10.58±3.14)×10(-3), (11.82±1.80)×10(-3), and (11.95±3.23)×10(-3). There were no differences in levels of GABA+(P=0.196), Glu(P=0.590), and NAA(P=0.292) between sleep bruxism patients and healthy controls, nor in inbilateral CMA(GABA+: P=0.837; Glu: P=0.510; NAA: P=0.628).
CONCLUSIONSThe results indicate the absence of any alteration of the cortical control of the central jaw motor system in the levels of GABA, Glu and NAA in patients with sleep bruxism.
Analysis of Variance ; Aspartic Acid ; analogs & derivatives ; analysis ; metabolism ; Case-Control Studies ; Glutamic Acid ; analysis ; metabolism ; Humans ; Magnetic Resonance Imaging ; Magnetic Resonance Spectroscopy ; methods ; Masticatory Muscles ; metabolism ; physiopathology ; Motor Neurons ; metabolism ; Sleep Bruxism ; metabolism ; physiopathology ; gamma-Aminobutyric Acid ; analysis ; metabolism
            
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