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1.
China Journal of Chinese Materia Medica ; (24): 704-711, 2018.
Artigo em Chinês | WPRIM | ID: wpr-771679

RESUMO

According to the previous results from transcriptome analysis of Ligustrum quihoui, a glycosyltransferase gene(xynzUGT) was cloned by rapid amplification of cDNA ends(RACE). The full length cDNA of xynzUGT was 1 598 bp, consisting of 66 bp 5'-UTR, 1 440 bp ORF and 92 bp 3'-UTR. The ORF encoded a 480 amino-acid protein(xynzUGT) with a molecular weight of 54 826.67 Da and isoelectric point of 5.82. The structure of enzyme was analyzed by using bioinformatics method, the results showed that the primary structure contained a highly conserved PSPG box of glycosyltransferase, the secondary structure included α helix(38%), sheet(12.1%) and random coil(49.9%), and tertiary structure was constructed by peptide chain folding to form two face-to-face domains(often referred to as a Rossmann domains), between which a substrate binding pocket is sandwiched. The phylogenetic tree analysis indicated that xynzUGT might catalyze glycosylation of phenylpropanoids, such as tyrosol. Further simulation experiment of molecular docking between enzyme and tyrosol showed that Gly138 and Ser285 located in the binding pocket interacted with tyrosol by hydrogen bonding. SDS-PAGE analysis exhibited that the prokaryotic expression system successfully expressed recombinant xynzUGT with molecular weight of 58 370.57 Da, but it exists in the form of non-soluble inclusion bodies. Using the molecular chaperone and enzyme co-expression method, the soluble expression was promoted to some extent. The above works laid the foundation for further studying on enzymatic reaction and clarifying the functional mechanism of enzyme.


Assuntos
Clonagem Molecular , DNA Complementar , Glicosiltransferases , Genética , Ligustrum , Genética , Simulação de Acoplamento Molecular , Filogenia , Proteínas de Plantas , Genética , Estrutura Secundária de Proteína , Estrutura Terciária de Proteína
2.
Acta Pharmaceutica Sinica ; (12): 609-614, 2009.
Artigo em Chinês | WPRIM | ID: wpr-278211

RESUMO

To study the condensation mechanism of sodium new houttuyfonate, and determinate the chemical structure of condensation products, dimer was prepared, and LC-DAD-MS/MS multiple techniques were employed to investigate the ultraviolet absorption feature and mass spectrum of transformation solution of dimer, and the transformation kinetics and half-life were studied by ultraviolet spectrophotometry. The pure substance of stable condensation product was obtained by extracting with organic solvent and purifying with column chromatography, the chemical structure of this substance was identified by assaying of IR, HR-ESI-MS and NMR, and the data of LC-MS/MS were compared with that of transformation products of dimer. The results indicated that the dimer is unstable, it will be rapidly dissociated in aqueous solution to form free new houttuyfonate and then cycloaddition reaction will occur and followed by an in situ dehydration to generate 1, 3, 5-tri (dodecanoyl) benzene (trimer) with a six-ring which is stable in aqueous solution. The transformation process may fit second-order kinetics, and the half-times were found to be 3.17 hours at 25 degrees C (298 K) and 6.39 min at 100 degrees C (373 K), separately. It suggests that dimer is an intermediate in condensation reaction, and the end condensation product of sodium new houttuyfonate injection may exist as trimer.


Assuntos
Alcanos , Química , Farmacologia , Cromatografia Líquida , Estrutura Molecular , Preparações Farmacêuticas , Sulfitos , Química , Farmacologia , Espectrometria de Massas em Tandem
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