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1.
NMR Biomed ; 34(7): e4511, 2021 07.
Artículo en Inglés | MEDLINE | ID: mdl-33772915

RESUMEN

Nucleotide sugars are required for the synthesis of glycoproteins and glycolipids, which play crucial roles in many cellular functions such as cell communication and immune responses. Uridine diphosphate-glucose (UDP-Glc) was previously believed to be the only nucleotide sugar detectable in brain by 31 P-MRS. Using spectra of high SNR and high resolution acquired at 7 T, we showed that multiple nucleotide sugars are coexistent in brain and can be measured simultaneously. In addition to UDP-Glc, these also include UDP-galactose (UDP-Gal), -N-acetyl-glucosamine (UDP-GlcNAc) and -N-acetyl-galactosamine (UDP-GalNAc), collectively denoted as UDP(G). Coexistence of these UDP(G) species is evident from a quartet-like multiplet at -9.8 ppm (M-9.8 ), which is a common feature seen across a wide age range (24-64 years). Lineshape fitting of M-9.8 allows an evaluation of all four UDP(G) components, which further aids in analysis of a mixed signal at -8.2 ppm (M-8.2 ) for deconvolution of NAD+ and NADH. For a group of seven young healthy volunteers, the concentrations of UDP(G) species were 0.04 ± 0.01 mM for UDP-Gal, 0.07 ± 0.03 mM for UDP-Glc, 0.06 ± 0.02 mM for UDP-GalNAc and 0.08 ± 0.03 mM for UDP-GlcNA, in reference to ATP (2.8 mM). The combined concentration of all UDP(G) species (average 0.26 ± 0.06 mM) was similar to the pooled concentration of NAD+ and NADH (average 0.27 ± 0.06 mM, with a NAD+ /NADH ratio of 6.7 ± 2.1), but slightly lower than previously found in an older cohort (0.31 mM). The in vivo NMR analysis of UDP-sugar composition is consistent with those from tissue extracts by other modalities in the literature. Given that glycosylation is dependent on the availability of nucleotide sugars, assaying multiple nucleotide sugars may provide valuable insights into potential aberrant glycosylation, which has been implicated in certain diseases such as cancer and Alzheimer's disease.


Asunto(s)
Encéfalo/diagnóstico por imagen , Hexosas/metabolismo , Espectroscopía de Resonancia Magnética , Uridina Difosfato Glucosa/metabolismo , Adenosina Trifosfato/metabolismo , Adulto , Femenino , Humanos , Masculino , NAD/metabolismo , Fósforo , Procesamiento de Señales Asistido por Computador , Uridina Difosfato Glucosa/síntesis química , Uridina Difosfato Glucosa/química , Adulto Joven
2.
Magn Reson Med ; 78(6): 2095-2105, 2017 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-28244131

RESUMEN

PURPOSE: Phosphorus (31 P) metabolites are emerging liver disease biomarkers. Of particular interest are phosphomonoester and phosphodiester (PDE) "peaks" that comprise multiple overlapping resonances in 31 P spectra. This study investigates the effect of improved spectral resolution at 7 Tesla (T) on quantifying hepatic metabolites in cirrhosis. METHODS: Five volunteers were scanned to determine metabolite T1 s. Ten volunteers and 11 patients with liver cirrhosis were scanned at 7T. Liver spectra were acquired in 28 min using a 16-channel 31 P array and 3D chemical shift imaging. Concentrations were calculated using γ-adenosine-triphosphate (γ-ATP) = 2.65 mmol/L wet tissue. RESULTS: T1 means ± standard deviations: phosphatidylcholine 1.05 ± 0.28 s, nicotinamide-adenine-dinucleotide (NAD+ ) 2.0 ± 1.0 s, uridine-diphosphoglucose (UDPG) 3.3 ± 1.4 s. Concentrations in healthy volunteers: α-ATP 2.74 ± 0.11 mmol/L wet tissue, inorganic phosphate 2.23 ± 0.20 mmol/L wet tissue, glycerophosphocholine 2.34 ± 0.46 mmol/L wet tissue, glycerophosphoethanolamine 1.50 ± 0.28 mmol/L wet tissue, phosphocholine 1.06 ± 0.16 mmol/L wet tissue, phosphoethanolamine 0.77 ± 0.14 mmol/L wet tissue, NAD+ 2.37 ± 0.14 mmol/L wet tissue, UDPG 2.00 ± 0.22 mmol/L wet tissue, phosphatidylcholine 1.38 ±â€Š0.31 mmol/L wet tissue. Inorganic phosphate and phosphatidylcholine concentrations were significantly lower in patients; glycerophosphoethanolamine concentrations were significantly higher (P < 0.05). CONCLUSION: We report human in vivo hepatic T1 s for phosphatidylcholine, NAD+ , and UDPG for the first time at 7T. Our protocol allows high signal-to-noise, repeatable measurement of metabolite concentrations in human liver. The splitting of PDE into its constituent peaks at 7T may allow more insight into changes in metabolism. Magn Reson Med 78:2095-2105, 2017. © 2017 The Authors Magnetic Resonance in Medicine published by Wiley Periodicals, Inc. on behalf of International Society for Magnetic Resonance in Medicine. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.


Asunto(s)
Hepatopatías/diagnóstico por imagen , Hígado/diagnóstico por imagen , Espectroscopía de Resonancia Magnética , Fósforo/química , Adulto , Ésteres/química , Femenino , Voluntarios Sanos , Humanos , Cirrosis Hepática/diagnóstico por imagen , Imagen por Resonancia Magnética , Masculino , Fosfatidilcolinas/química , Control de Calidad , Reproducibilidad de los Resultados , Uridina Difosfato Glucosa/química , Adulto Joven
3.
Plant J ; 54(3): 415-27, 2008 May.
Artículo en Inglés | MEDLINE | ID: mdl-18248594

RESUMEN

(+)-Sesaminol 2-O-triglucoside is the most abundant water-soluble furofuran lignan in sesame seeds (Sesamum indicum) and is considered to be a beneficial compound for human health. The biosyntheses and physiological roles of lignan glycosides, however, remain elusive. Here we report the molecular identification and biochemical characterization of two Sesamum uridine diphosphate (UDP) glucose:lignan glucosyltransferases. Sesamum indicum UGT71A9 preferentially glucosylated at the 2-hydroxyl group of (+)-sesaminol, resulting in (+)-sesaminol 2-O-glucoside. Similarly, two UGT71A9 homologs from Sesamum radiatum (UGT71A10) and Sesamum alatum (UGT71A8) also showed (+)-sesaminol glucosylating activity, evidencing the functional conservation of (+)-sesaminol 2-O-glucosyltransferases in the Sesamum genus. In addition, S. indicum UGT94D1 specifically glucosylated at the 6'-hydroxyl group of the sugar moiety of (+)-sesaminol 2-O-glucoside but not at that of flavonoid glucosides. The gene expression patterns of UGT71A9 and UGT94D1 during seed development were correlated with the glucosylating activities toward (+)-sesaminol in planta, suggesting that the two lignan UDP-glycosyltransferases participate in the sequential glucosylation steps in the biosynthesis of (+)-sesaminol 2-O-triglucoside.


Asunto(s)
Dioxoles/metabolismo , Furanos/metabolismo , Glucosiltransferasas/metabolismo , Lignanos/metabolismo , Sesamum/enzimología , Cromatografía Líquida de Alta Presión , Dioxoles/química , Furanos/química , Regulación Enzimológica de la Expresión Génica , Regulación de la Expresión Génica de las Plantas , Glucósidos/química , Glucósidos/metabolismo , Glucosiltransferasas/genética , Lignanos/química , Modelos Biológicos , Estructura Molecular , Filogenia , Extractos Vegetales/química , Extractos Vegetales/metabolismo , Sesamum/genética , Sesamum/metabolismo , Uridina Difosfato Glucosa/química , Uridina Difosfato Glucosa/metabolismo
4.
J Biol Chem ; 282(8): 5389-403, 2007 Feb 23.
Artículo en Inglés | MEDLINE | ID: mdl-17190829

RESUMEN

UDP-L-rhamnose is required for the biosynthesis of cell wall rhamnogalacturonan-I, rhamnogalacturonan-II, and natural compounds in plants. It has been suggested that the RHM2/MUM4 gene is involved in conversion of UDP-D-glucose to UDP-L-rhamnose on the basis of its effect on rhamnogalacturonan-I-directed development in Arabidopsis thaliana. RHM2/MUM4-related genes, RHM1 and RHM3, can be found in the A. thaliana genome. Here we present direct evidence that all three RHM proteins have UDP-D-glucose 4,6-dehydratase, UDP-4-keto-6-deoxy-D-glucose 3,5-epimerase, and UDP-4-keto-L-rhamnose 4-keto-reductase activities in the cytoplasm when expressed in the yeast Saccharomyces cerevisiae. Functional domain analysis revealed that the N-terminal region of RHM2 (RHM2-N; amino acids 1-370) has the first activity and the C-terminal region of RHM2 (RHM2-C; amino acids 371-667) has the two following activities. This suggests that RHM2 converts UDP-d-glucose to UDP-L-rhamnose via an UDP-4-keto-6-deoxy-D-glucose intermediate. Site-directed mutagenesis of RHM2 revealed that mucilage defects in MUM4-1 and MUM4-2 mutant seeds of A. thaliana are caused by abolishment of RHM2 enzymatic activity in the mutant strains and furthermore, that the GXXGXX(G/A) and YXXXK motifs are important for enzymatic activity. Moreover, a kinetic analysis of purified His(6)-tagged RHM2-N protein revealed 5.9-fold higher affinity of RHM2 for UDP-D-glucose than for dTDP-D-glucose, the preferred substrate for dTDP-D-glucose 4,6-dehydratase from bacteria. RHM2-N activity is strongly inhibited by UDP-L-rhamnose, UDP-D-xylose, and UDP but not by other sugar nucleotides, suggesting that RHM2 maintains cytoplasmic levels of UDP-D-glucose and UDP-L-rhamnose via feedback inhibition by UDP-L-rhamnose and UDP-D-xylose.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis/enzimología , Pared Celular/metabolismo , Genoma de Planta/fisiología , Complejos Multienzimáticos/metabolismo , Ramnosa/metabolismo , Uridina Difosfato Glucosa/metabolismo , Secuencias de Aminoácidos/genética , Arabidopsis/química , Proteínas de Arabidopsis/química , Proteínas de Arabidopsis/genética , Complejos Multienzimáticos/química , Complejos Multienzimáticos/genética , Mutagénesis Sitio-Dirigida , Pectinas/biosíntesis , Pectinas/química , Pectinas/genética , Ramnosa/química , Ramnosa/genética , Saccharomyces cerevisiae/genética , Semillas/química , Semillas/enzimología , Semillas/genética , Uridina Difosfato Glucosa/química , Uridina Difosfato Glucosa/genética , Uridina Difosfato Xilosa/química , Uridina Difosfato Xilosa/genética , Uridina Difosfato Xilosa/metabolismo
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