1.Genetic Profiles of Korean Patients With Glucose-6-Phosphate Dehydrogenase Deficiency.
Jaewoong LEE ; Joonhong PARK ; Hayoung CHOI ; Jiyeon KIM ; Ahlm KWON ; Woori JANG ; Hyojin CHAE ; Myungshin KIM ; Yonggoo KIM ; Jae Wook LEE ; Nack Gyun CHUNG ; Bin CHO
Annals of Laboratory Medicine 2017;37(2):108-116
BACKGROUND: We describe the genetic profiles of Korean patients with glucose-6-phosphate dehydrogenase (G6PD) deficiencies and the effects of G6PD mutations on protein stability and enzyme activity on the basis of in silico analysis. METHODS: In parallel with a genetic analysis, the pathogenicity of G6PD mutations detected in Korean patients was predicted in silico. The simulated effects of G6PD mutations were compared to the WHO classes based on G6PD enzyme activity. Four previously reported mutations and three newly diagnosed patients with missense mutations were estimated. RESULTS: One novel mutation (p.Cys385Gly, labeled G6PD Kangnam) and two known mutations [p.Ile220Met (G6PD São Paulo) and p.Glu416Lys (G6PD Tokyo)] were identified in this study. G6PD mutations identified in Koreans were also found in Brazil (G6PD São Paulo), Poland (G6PD Seoul), United States of America (G6PD Riley), Mexico (G6PD Guadalajara), and Japan (G6PD Tokyo). Several mutations occurred at the same nucleotide, but resulted in different amino acid residue changes in different ethnic populations (p.Ile380 variant, G6PD Calvo Mackenna; p.Cys385 variants, Tomah, Madrid, Lynwood; p.Arg387 variant, Beverly Hills; p.Pro396 variant, Bari; and p.Pro396Ala in India). On the basis of the in silico analysis, Class I or II mutations were predicted to be highly deleterious, and the effects of one Class IV mutation were equivocal. CONCLUSIONS: The genetic profiles of Korean individuals with G6PD mutations indicated that the same mutations may have arisen by independent mutational events, and were not derived from shared ancestral mutations. The in silico analysis provided insight into the role of G6PD mutations in enzyme function and stability.
Asian Continental Ancestry Group/*genetics
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Child
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Child, Preschool
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DNA/chemical synthesis/genetics/metabolism
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Exons
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Glucosephosphate Dehydrogenase/chemistry/*genetics/metabolism
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Glucosephosphate Dehydrogenase Deficiency/*genetics/pathology
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Humans
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Male
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Mutation, Missense
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Polymorphism, Genetic
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Protein Structure, Tertiary
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Republic of Korea
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Sequence Analysis, DNA
2.Cloning and expression analysis of glucose-6-phosphate dehydrogenase 1 (G6PDH1) gene from Chimonanthus praecox.
Xiao-hui WANG ; Xiao LIU ; Bo-wen GAO ; Zhong-xiu ZHANG ; She-po SHI ; Peng-fei TU
China Journal of Chinese Materia Medica 2015;40(21):4160-4164
Glucose-6-phosphate dehydrogenase is main regulatory enzyme for pentose phosphate pathway. To amplify the core sequence of G6PDH gene from Chimonanthus praecox, the primers were synthesized, based on the conserved nucleotide sequence of other reported plant G6PDH genes. The specific primers were designed according to the major fragment. The full length cDNA of the G6PDH1 gene was isolated by the 3' and 5' rapid amplification of cDNA ends approach. Transcript levels of G6PDH1 isoform was measured by real-time quantitative RT-PCR in different tissues and in responds to cold treatment. The G6PDH1 subcellular localization, transmembrane domain, three-dimensional structure, and phylogenetic analysis were predicted by different software to analysis the bioinformatics of G6PDH1 protein. The G6PDH1 cDNA sequence was 2 011 bp in length and consisted of 1 551 bp Open Reading Frame (ORF) , encoding a protein of 516 amino acids. Expression analysis results in different tissues showed that G6PDH1 was primarily observed in flowers and roots, as opposed to the leaves and stems. Cold treatment experiments indicated that cold treatment caused a rapid increase in G6PDH1 expression in flowers within 12 h. The full-length cDNA of G6PDH1 and its expression analysis will play an important role for further study on cold stress responses in Ch. praecox.
Calycanthaceae
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chemistry
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classification
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enzymology
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genetics
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Cloning, Molecular
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Enzyme Stability
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Glucosephosphate Dehydrogenase
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chemistry
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genetics
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metabolism
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Models, Molecular
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Open Reading Frames
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Phylogeny
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Plant Proteins
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chemistry
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genetics
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metabolism
3.Global gene expression analysis in liver of db/db mice treated with catalpol.
Jing LIU ; He-Ran ZHANG ; Yan-Bao HOU ; Xiao-Long JING ; Xin-Yi SONG ; Xiu-Ping SHEN
Chinese Journal of Natural Medicines (English Ed.) 2018;16(8):590-598
Catalpol, a major bioactive component from Rehmannia glutinosa, which has been used to treat diabetes. The present study was designed to elucidate the anti-diabetic effect and mechanism of action for catalpol in db/db mice. The db/db mice were randomly divided into six groups (10/group) according to their blood glucose levels: db/db control, metformin (positive control), and four dose levels of catalpol treatment (25, 50, 100, and 200 mg·kg), and 10 db/m mice were used as the normal control. All the groups were administered orally for 8 weeks. The levels of fasting blood glucose (FBG), random blood glucose (RBG), glucose tolerance, insulin tolerance, and glycated serum protein (GSP) and the globe gene expression in liver tissues were analyzed. Our results showed that catalpol treatment obviously reduced water intake and food intake in a dose-dependent manner. Catalpol treatment also remarkably reduce fasting blood glucose (FBG) and random blood glucose (RBG) in a dose-dependent manner. The RBG-lowering effect of catalpol was better than that of metformin. Furthermore, catalpol significantly improved glucose tolerance and insulin tolerance via increasing insulin sensitivity. Catalpol treatment significantly decreased GSP level. The comparisons of gene expression in liver tissues among normal control mice, db/db mice and catalpol treated mice (200 and 100 mg·kg) indicated that there were significant increases in the expressions of 287 genes, whichwere mainly involved in lipid metabolism, response to stress, energy metabolism, and cellular processes, and significant decreases in the expressions of 520 genes, which were mainly involved in cell growth, death, immune system, and response to stress. Four genes expressed differentially were linked to glucose metabolism or insulin signaling pathways, including Irs1 (insulin receptor substrate 1), Idh2 (isocitrate dehydrogenase 2 (NADP), mitochondrial), G6pd2 (glucose-6-phosphate dehydrogenase 2), and SOCS3 (suppressor of cytokine signaling 3). In conclusion, catalpol ecerted significant hypoglycemic effect and remarkable therapeutic effect in db/db mice via modulating various gene expressions.
Animals
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Blood Glucose
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metabolism
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Diabetes Mellitus, Experimental
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drug therapy
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genetics
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metabolism
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Disease Models, Animal
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Dose-Response Relationship, Drug
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Drugs, Chinese Herbal
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administration & dosage
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analysis
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Gene Expression
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drug effects
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Glucosephosphate Dehydrogenase
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genetics
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metabolism
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Humans
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Hypoglycemic Agents
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administration & dosage
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Insulin
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metabolism
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Insulin Receptor Substrate Proteins
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genetics
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metabolism
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Iridoid Glucosides
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administration & dosage
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analysis
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Isocitrate Dehydrogenase
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genetics
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metabolism
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Liver
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drug effects
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metabolism
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Male
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Mice
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Mice, Inbred C57BL
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Rehmannia
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chemistry
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Suppressor of Cytokine Signaling 3 Protein
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genetics
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metabolism