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1.
Int J Mol Sci ; 24(9)2023 May 04.
Article in English | MEDLINE | ID: mdl-37175952

ABSTRACT

Phosphoglucomutase 1 (PGM1) is a key enzyme for the regulation of energy metabolism from glycogen and glycolysis, as it catalyzes the interconversion of glucose 1-phosphate and glucose 6-phosphate. PGM1 deficiency is an autosomal recessive disorder characterized by a highly heterogenous clinical spectrum, including hypoglycemia, cleft palate, liver dysfunction, growth delay, exercise intolerance, and dilated cardiomyopathy. Abnormal protein glycosylation has been observed in this disease. Oral supplementation with D-galactose efficiently restores protein glycosylation by replenishing the lacking pool of UDP-galactose, and rescues some symptoms, such as hypoglycemia, hepatopathy, and growth delay. However, D-galactose effects on skeletal muscle and heart symptoms remain unclear. In this study, we established an in vitro muscle model for PGM1 deficiency to investigate the role of PGM1 and the effect of D-galactose on nucleotide sugars and energy metabolism. Genome-editing of C2C12 myoblasts via CRISPR/Cas9 resulted in Pgm1 (mouse homologue of human PGM1, according to updated nomenclature) knockout clones, which showed impaired maturation to myotubes. No difference was found for steady-state levels of nucleotide sugars, while dynamic flux analysis based on 13C6-galactose suggested a block in the use of galactose for energy production in knockout myoblasts. Subsequent analyses revealed a lower basal respiration and mitochondrial ATP production capacity in the knockout myoblasts and myotubes, which were not restored by D-galactose. In conclusion, an in vitro mouse muscle cell model has been established to study the muscle-specific metabolic mechanisms in PGM1 deficiency, which suggested that galactose was unable to restore the reduced energy production capacity.


Subject(s)
Hypoglycemia , Phosphoglucomutase , Animals , Mice , Galactose/pharmacology , Glucose , Homeostasis , Muscle Fibers, Skeletal/metabolism , Muscle, Skeletal/metabolism , Nucleotides , Phosphates , Phosphoglucomutase/genetics , Phosphoglucomutase/metabolism
2.
Glycobiology ; 32(3): 239-250, 2022 03 30.
Article in English | MEDLINE | ID: mdl-34939087

ABSTRACT

Synthetic sugar analogs are widely applied in metabolic oligosaccharide engineering (MOE) and as novel drugs to interfere with glycoconjugate biosynthesis. However, mechanistic insights on their exact cellular metabolism over time are mostly lacking. We combined ion-pair ultrahigh performance liquid chromatography-triple quadrupole mass spectrometry mass spectrometry using tributyl- and triethylamine buffers for sensitive analysis of sugar metabolites in cells and organisms and identified low abundant nucleotide sugars, such as UDP-arabinose in human cell lines and CMP-sialic acid (CMP-NeuNAc) in Drosophila. Furthermore, MOE revealed that propargyloxycarbonyl (Poc)-labeled ManNPoc was metabolized to both CMP-NeuNPoc and UDP-GlcNPoc. Finally, time-course analysis of the effect of antitumor compound 3Fax-NeuNAc by incubation of B16-F10 melanoma cells with N-acetyl-D-[UL-13C6]glucosamine revealed full depletion of endogenous ManNAc 6-phosphate and CMP-NeuNAc within 24 h. Thus, dynamic tracing of sugar metabolic pathways provides a general approach to reveal time-dependent insights into the metabolism of synthetic sugars, which is important for the rational design of analogs with optimized effects.


Subject(s)
Carbohydrate Metabolism , Cytidine Monophosphate N-Acetylneuraminic Acid , Chromatography, Liquid , Cytidine Monophosphate N-Acetylneuraminic Acid/metabolism , Glucosamine/metabolism , Sugars
3.
J Inherit Metab Dis ; 45(4): 769-781, 2022 07.
Article in English | MEDLINE | ID: mdl-35279850

ABSTRACT

Congenital disorders of glycosylation type 1 (CDG-I) comprise a group of 27 genetic defects with heterogeneous multisystem phenotype, mostly presenting with nonspecific neurological symptoms. The biochemical hallmark of CDG-I is a partial absence of complete N-glycans on transferrin. However, recent findings of a diagnostic N-tetrasaccharide for ALG1-CDG and increased high-mannose N-glycans for a few other CDG suggested the potential of glycan structural analysis for CDG-I gene discovery. We analyzed the relative abundance of total plasma N-glycans by high resolution quadrupole time-of-flight mass spectrometry in a large cohort of 111 CDG-I patients with known (n = 75) or unsolved (n = 36) genetic cause. We designed single-molecule molecular inversion probes (smMIPs) for sequencing of CDG-I candidate genes on the basis of specific N-glycan signatures. Glycomics profiling in patients with known defects revealed novel features such as the N-tetrasaccharide in ALG2-CDG patients and a novel fucosylated N-pentasaccharide as specific glycomarker for ALG1-CDG. Moreover, group-specific high-mannose N-glycan signatures were found in ALG3-, ALG9-, ALG11-, ALG12-, RFT1-, SRD5A3-, DOLK-, DPM1-, DPM3-, MPDU1-, ALG13-CDG, and hereditary fructose intolerance. Further differential analysis revealed high-mannose profiles, characteristic for ALG12- and ALG9-CDG. Prediction of candidate genes by glycomics profiling in 36 patients with thus far unsolved CDG-I and subsequent smMIPs sequencing led to a yield of solved cases of 78% (28/36). Combined plasma glycomics profiling and targeted smMIPs sequencing of candidate genes is a powerful approach to identify causative mutations in CDG-I patient cohorts.


Subject(s)
Congenital Disorders of Glycosylation , Congenital Disorders of Glycosylation/diagnosis , Congenital Disorders of Glycosylation/genetics , Glycomics , Glycosylation , Humans , Mannose , Mannosyltransferases/genetics , N-Acetylglucosaminyltransferases , Oligosaccharides , Polysaccharides/genetics
4.
Bioconjug Chem ; 32(6): 1047-1051, 2021 06 16.
Article in English | MEDLINE | ID: mdl-34043338

ABSTRACT

Bacterial pathogens such as Nontypeable Haemophilus influenzae (NTHi) can evade the immune system by taking up and presenting host-derived sialic acids. Herein, we report a detailed structure-activity relationship of sialic acid-based inhibitors that prevent the transfer of host sialic acids to NTHi. We report the synthesis and biological evaluation of C-5, C-8, and C-9 derivatives of the parent compound 3-fluorosialic acid (SiaNFAc). Small modifications are tolerated at the C-5 and C-9 positions, while the C-8 position does not allow for modification. These structure-activity relationships define the chemical space available to develop selective bacterial sialylation inhibitors.


Subject(s)
Haemophilus influenzae/drug effects , Haemophilus influenzae/metabolism , Halogenation , N-Acetylneuraminic Acid/chemistry , N-Acetylneuraminic Acid/pharmacology , Structure-Activity Relationship
5.
J Biol Chem ; 294(12): 4437-4449, 2019 03 22.
Article in English | MEDLINE | ID: mdl-30670592

ABSTRACT

Neuroblastoma cells highly express the disialoganglioside GD2, a tumor-associated carbohydrate antigen, which is only sparsely expressed on healthy tissue. GD2 is a primary target for the development of immunotherapy for neuroblastoma. Immunotherapy with monoclonal anti-GD2 antibodies has proven safety and efficacy in clinical trials and is included in the standard treatment for children with high-risk neuroblastoma. Strategies to modulate GD2 expression in neuroblastoma could further improve anti-GD2-targeted immunotherapy. Here, we report that the cellular sialylation pathway, as well as epigenetic reprogramming, strongly modulates GD2 expression in human and mouse neuroblastoma cell lines. Recognition of GD2 by the 14G2a antibody is sialic acid-dependent and was blocked with the fluorinated sialic acid mimetic Ac53FaxNeu5Ac. Interestingly, sialic acid supplementation using a cell-permeable sialic acid analogue (Ac5Neu5Ac) boosted GD2 expression without or with minor alterations in overall cell surface sialylation. Furthermore, sialic acid supplementation with Ac5Neu5Ac combined with various histone deacetylase (HDAC) inhibitors, including vorinostat, enhanced GD2 expression in neuroblastoma cells beyond their individual effects. Mechanistic studies revealed that Ac5Neu5Ac supplementation increased intracellular CMP-Neu5Ac concentrations, thereby providing higher substrate levels for sialyltransferases. Furthermore, HDAC inhibitor treatment increased mRNA expression of the sialyltransferases GM3 synthase (ST3GAL5) and GD3 synthase (ST8SIA1), both of which are involved in GD2 biosynthesis. Our findings reveal that sialic acid analogues and HDAC inhibitors enhance GD2 expression and could potentially be employed to boost anti-GD2 targeted immunotherapy in neuroblastoma patients.


Subject(s)
Antigens, Neoplasm/metabolism , Gangliosides/metabolism , Histone Deacetylase Inhibitors/pharmacology , N-Acetylneuraminic Acid/pharmacology , Neuroblastoma/immunology , Up-Regulation/drug effects , Animals , Cell Line, Tumor , Immunotherapy , Mice , Neuroblastoma/enzymology , Neuroblastoma/pathology , Neuroblastoma/therapy , Sialyltransferases/metabolism
6.
Hum Mol Genet ; 27(17): 3029-3045, 2018 09 01.
Article in English | MEDLINE | ID: mdl-29878199

ABSTRACT

Genomics methodologies have significantly improved elucidation of Mendelian disorders. The combination with high-throughput functional-omics technologies potentiates the identification and confirmation of causative genetic variants, especially in singleton families of recessive inheritance. In a cohort of 99 individuals with abnormal Golgi glycosylation, 47 of which being unsolved, glycomics profiling was performed of total plasma glycoproteins. Combination with whole-exome sequencing in 31 cases revealed a known genetic defect in 15 individuals. To identify additional genetic factors, hierarchical clustering of the plasma glycomics data was done, which indicated a subgroup of four patients that shared a unique glycomics signature of hybrid type N-glycans. In two siblings, compound heterozygous mutations were found in SLC10A7, a gene of unknown function in human. These included a missense mutation that disrupted transmembrane domain 4 and a mutation in a splice acceptor site resulting in skipping of exon 9. The two other individuals showed a complete loss of SLC10A7 mRNA. The patients' phenotype consisted of amelogenesis imperfecta, skeletal dysplasia, and decreased bone mineral density compatible with osteoporosis. The patients' phenotype was mirrored in SLC10A7 deficient zebrafish. Furthermore, alizarin red staining of calcium deposits in zebrafish morphants showed a strong reduction in bone mineralization. Cell biology studies in fibroblasts of affected individuals showed intracellular mislocalization of glycoproteins and a defect in post-Golgi transport of glycoproteins to the cell membrane. In contrast to yeast, human SLC10A7 localized to the Golgi. Our combined data indicate an important role for SLC10A7 in bone mineralization and transport of glycoproteins to the extracellular matrix.


Subject(s)
Bone Diseases, Developmental/etiology , Calcification, Physiologic , Congenital Disorders of Glycosylation/complications , Genomics , Glycomics , Mutation , Organic Anion Transporters, Sodium-Dependent/genetics , Peptide-N4-(N-acetyl-beta-glucosaminyl) Asparagine Amidase/deficiency , Symporters/genetics , Adult , Animals , Bone Diseases, Developmental/metabolism , Bone Diseases, Developmental/pathology , Cells, Cultured , Cohort Studies , Exome , Female , Fibroblasts/metabolism , Fibroblasts/pathology , Glycosylation , Golgi Apparatus/metabolism , Golgi Apparatus/pathology , Humans , Infant , Male , Organic Anion Transporters, Sodium-Dependent/metabolism , Pedigree , Phenotype , Protein Transport , Symporters/metabolism , Young Adult , Zebrafish/genetics , Zebrafish/growth & development , Zebrafish/metabolism
7.
Am J Hum Genet ; 100(2): 216-227, 2017 02 02.
Article in English | MEDLINE | ID: mdl-28065471

ABSTRACT

Defects of the V-type proton (H+) ATPase (V-ATPase) impair acidification and intracellular trafficking of membrane-enclosed compartments, including secretory granules, endosomes, and lysosomes. Whole-exome sequencing in five families affected by mild to severe cutis laxa, dysmorphic facial features, and cardiopulmonary involvement identified biallelic missense mutations in ATP6V1E1 and ATP6V1A, which encode the E1 and A subunits, respectively, of the V1 domain of the heteromultimeric V-ATPase complex. Structural modeling indicated that all substitutions affect critical residues and inter- or intrasubunit interactions. Furthermore, complexome profiling, a method combining blue-native gel electrophoresis and liquid chromatography tandem mass spectrometry, showed that they disturb either the assembly or the stability of the V-ATPase complex. Protein glycosylation was variably affected. Abnormal vesicular trafficking was evidenced by delayed retrograde transport after brefeldin A treatment and abnormal swelling and fragmentation of the Golgi apparatus. In addition to showing reduced and fragmented elastic fibers, the histopathological hallmark of cutis laxa, transmission electron microscopy of the dermis also showed pronounced changes in the structure and organization of the collagen fibers. Our findings expand the clinical and molecular spectrum of metabolic cutis laxa syndromes and further link defective extracellular matrix assembly to faulty protein processing and cellular trafficking caused by genetic defects in the V-ATPase complex.


Subject(s)
Cutis Laxa/genetics , Mutation, Missense , Vacuolar Proton-Translocating ATPases/genetics , Adolescent , Alleles , Amino Acid Sequence , Case-Control Studies , Child , Female , Fibroblasts/metabolism , Gene Expression Regulation , Genome-Wide Association Study , Glycosylation , Golgi Apparatus/metabolism , Humans , Infant , Infant, Newborn , Male , Pedigree , Protein Conformation , Protein Transport , Tandem Mass Spectrometry
8.
Mol Genet Metab ; 131(1-2): 135-146, 2020.
Article in English | MEDLINE | ID: mdl-33342467

ABSTRACT

Phosphoglucomutase 1 deficiency is a congenital disorder of glycosylation (CDG) with multiorgan involvement affecting carbohydrate metabolism, N-glycosylation and energy production. The metabolic management consists of dietary D-galactose supplementation that ameliorates hypoglycemia, hepatic dysfunction, endocrine anomalies and growth delay. Previous studies suggest that D-galactose administration in juvenile patients leads to more significant and long-lasting effects, stressing the urge of neonatal diagnosis (0-6 months of age). Here, we detail the early clinical presentation of PGM1-CDG in eleven infantile patients, and applied the modified Beutler test for screening of PGM1-CDG in neonatal dried blood spots (DBSs). All eleven infants presented episodic hypoglycemia and elevated transaminases, along with cleft palate and growth delay (10/11), muscle involvement (8/11), neurologic involvement (5/11), cardiac defects (2/11). Standard dietary measures for suspected lactose intolerance in four patients prior to diagnosis led to worsening of hypoglycemia, hepatic failure and recurrent diarrhea, which resolved upon D-galactose supplementation. To investigate possible differences in early vs. late clinical presentation, we performed the first systematic literature review for PGM1-CDG, which highlighted respiratory and gastrointestinal symptoms as significantly more diagnosed in neonatal age. The modified Butler-test successfully identified PGM1-CDG in DBSs from seven patients, including for the first time Guthrie cards from newborn screening, confirming the possibility of future inclusion of PGM1-CDG in neonatal screening programs. In conclusion, severe infantile morbidity of PGM1-CDG due to delayed diagnosis could be prevented by raising awareness on its early presentation and by inclusion in newborn screening programs, enabling early treatments and galactose-based metabolic management.


Subject(s)
Congenital Disorders of Glycosylation/genetics , Glycogen Storage Disease/blood , Hypoglycemia/genetics , Phosphoglucomutase/blood , Cleft Palate/blood , Cleft Palate/complications , Cleft Palate/genetics , Congenital Disorders of Glycosylation/blood , Congenital Disorders of Glycosylation/complications , Congenital Disorders of Glycosylation/enzymology , Dried Blood Spot Testing , Female , Glycogen Storage Disease/enzymology , Glycogen Storage Disease/genetics , Humans , Hypoglycemia/blood , Hypoglycemia/complications , Infant , Infant, Newborn , Male , Neonatal Screening , Phenotype , Phosphoglucomutase/genetics
9.
J Inherit Metab Dis ; 43(6): 1310-1320, 2020 11.
Article in English | MEDLINE | ID: mdl-32557671

ABSTRACT

Congenital disorders of glycosylation (CDG) are a rapidly expanding group of rare genetic defects in glycosylation. In a novel CDG subgroup of vacuolar-ATPase (V-ATPase) assembly defects, various degrees of hepatic injury have been described, including end-stage liver disease. However, the CDG diagnostic workflow can be complex as liver disease per se may be associated with abnormal glycosylation. Therefore, we collected serum samples of patients with a wide range of liver pathology to study the performance and yield of two CDG screening methods. Our aim was to identify glycosylation patterns that could help to differentiate between primary and secondary glycosylation defects in liver disease. To this end, we analyzed serum samples of 1042 adult liver disease patients. This cohort consisted of 567 liver transplant candidates and 475 chronic liver disease patients. Our workflow consisted of screening for abnormal glycosylation by transferrin isoelectric focusing (tIEF), followed by in-depth analysis of the abnormal samples with quadruple time-of-flight mass spectrometry (QTOF-MS). Screening with tIEF resulted in identification of 247 (26%) abnormal samples. QTOF-MS analysis of 110 of those did not reveal glycosylation abnormalities comparable with those seen in V-ATPase assembly factor defects. However, two patients presented with isolated sialylation deficiency. Fucosylation was significantly increased in liver transplant candidates compared to healthy controls and patients with chronic liver disease. In conclusion, a significant percentage of patients with liver disease presented with abnormal CDG screening results. However, the glycosylation pattern was not indicative for a V-ATPase assembly factor defect. Advanced glycoanalytical techniques assist in the dissection of secondary and primary glycosylation defects.


Subject(s)
Congenital Disorders of Glycosylation/metabolism , End Stage Liver Disease/metabolism , Mass Spectrometry/methods , Transferrin/analysis , Adult , Aged , Case-Control Studies , Cohort Studies , Congenital Disorders of Glycosylation/diagnosis , Female , Glycosylation , Humans , Liver/metabolism , Male , Middle Aged , Transferrin/metabolism
10.
Am J Hum Genet ; 98(2): 322-30, 2016 Feb 04.
Article in English | MEDLINE | ID: mdl-26833330

ABSTRACT

Congenital disorders of glycosylation (CDGs) form a genetically and clinically heterogeneous group of diseases with aberrant protein glycosylation as a hallmark. A subgroup of CDGs can be attributed to disturbed Golgi homeostasis. However, identification of pathogenic variants is seriously complicated by the large number of proteins involved. As part of a strategy to identify human homologs of yeast proteins that are known to be involved in Golgi homeostasis, we identified uncharacterized transmembrane protein 199 (TMEM199, previously called C17orf32) as a human homolog of yeast V-ATPase assembly factor Vph2p (also known as Vma12p). Subsequently, we analyzed raw exome-sequencing data from families affected by genetically unsolved CDGs and identified four individuals with different mutations in TMEM199. The adolescent individuals presented with a mild phenotype of hepatic steatosis, elevated aminotransferases and alkaline phosphatase, and hypercholesterolemia, as well as low serum ceruloplasmin. Affected individuals showed abnormal N- and mucin-type O-glycosylation, and mass spectrometry indicated reduced incorporation of galactose and sialic acid, as seen in other Golgi homeostasis defects. Metabolic labeling of sialic acids in fibroblasts confirmed deficient Golgi glycosylation, which was restored by lentiviral transduction with wild-type TMEM199. V5-tagged TMEM199 localized with ERGIC and COPI markers in HeLa cells, and electron microscopy of a liver biopsy showed dilated organelles suggestive of the endoplasmic reticulum and Golgi apparatus. In conclusion, we have identified TMEM199 as a protein involved in Golgi homeostasis and show that TMEM199 deficiency results in a hepatic phenotype with abnormal glycosylation.


Subject(s)
Alkaline Phosphatase/metabolism , Cholesterol/metabolism , Golgi Apparatus/genetics , Homeostasis , Membrane Proteins/deficiency , Transaminases/metabolism , Adult , Amino Acid Sequence , Ceruloplasmin/metabolism , Endoplasmic Reticulum/metabolism , Exome , Fibroblasts/metabolism , Genotype , Glycosylation , Golgi Apparatus/metabolism , Humans , Male , Membrane Proteins/genetics , Membrane Proteins/metabolism , Molecular Sequence Data , Mutation , Phenotype , Young Adult
11.
Am J Hum Genet ; 98(2): 310-21, 2016 Feb 04.
Article in English | MEDLINE | ID: mdl-26833332

ABSTRACT

Disorders of Golgi homeostasis form an emerging group of genetic defects. The highly heterogeneous clinical spectrum is not explained by our current understanding of the underlying cell-biological processes in the Golgi. Therefore, uncovering genetic defects and annotating gene function are challenging. Exome sequencing in a family with three siblings affected by abnormal Golgi glycosylation revealed a homozygous missense mutation, c.92T>C (p.Leu31Ser), in coiled-coil domain containing 115 (CCDC115), the function of which is unknown. The same mutation was identified in three unrelated families, and in one family it was compound heterozygous in combination with a heterozygous deletion of CCDC115. An additional homozygous missense mutation, c.31G>T (p.Asp11Tyr), was found in a family with two affected siblings. All individuals displayed a storage-disease-like phenotype involving hepatosplenomegaly, which regressed with age, highly elevated bone-derived alkaline phosphatase, elevated aminotransferases, and elevated cholesterol, in combination with abnormal copper metabolism and neurological symptoms. Two individuals died of liver failure, and one individual was successfully treated by liver transplantation. Abnormal N- and mucin type O-glycosylation was found on serum proteins, and reduced metabolic labeling of sialic acids was found in fibroblasts, which was restored after complementation with wild-type CCDC115. PSI-BLAST homology detection revealed reciprocal homology with Vma22p, the yeast V-ATPase assembly factor located in the endoplasmic reticulum (ER). Human CCDC115 mainly localized to the ERGIC and to COPI vesicles, but not to the ER. These data, in combination with the phenotypic spectrum, which is distinct from that associated with defects in V-ATPase core subunits, suggest a more general role for CCDC115 in Golgi trafficking. Our study reveals CCDC115 deficiency as a disorder of Golgi homeostasis that can be readily identified via screening for abnormal glycosylation in plasma.


Subject(s)
Golgi Apparatus/genetics , Homeostasis , Nerve Tissue Proteins/deficiency , Nerve Tissue Proteins/genetics , Amino Acid Sequence , Child , Child, Preschool , Cloning, Molecular , Endoplasmic Reticulum/metabolism , Exome , Female , Fibroblasts/cytology , Glycosylation , Golgi Apparatus/metabolism , HeLa Cells , Heterozygote , Humans , Infant , Male , Molecular Sequence Data , Pedigree , Phenotype , Spectrometry, Mass, Matrix-Assisted Laser Desorption-Ionization
12.
Clin Chem ; 65(10): 1295-1306, 2019 10.
Article in English | MEDLINE | ID: mdl-31375477

ABSTRACT

BACKGROUND: Many muscular dystrophies currently remain untreatable. Recently, dietary ribitol has been suggested as a treatment for cytidine diphosphate (CDP)-l-ribitol pyrophosphorylase A (CRPPA, ISPD), fukutin (FKTN), and fukutin-related protein (FKRP) myopathy, by raising CDP-ribitol concentrations. Thus, to facilitate fast diagnosis, treatment development, and treatment monitoring, sensitive detection of CDP-ribitol is required. METHODS: An LC-MS method was optimized for CDP-ribitol in human and mice cells and tissues. RESULTS: CDP-ribitol, the product of CRPPA, was detected in all major human and mouse tissues. Moreover, CDP-ribitol concentrations were reduced in fibroblasts and skeletal muscle biopsies from patients with CRPPA myopathy, showing that CDP-ribitol could serve as a diagnostic marker to identify patients with CRPPA with severe Walker-Warburg syndrome and mild limb-girdle muscular dystrophy (LGMD) phenotypes. A screen for potentially therapeutic monosaccharides revealed that ribose, in addition to ribitol, restored CDP-ribitol concentrations and the associated O-glycosylation defect of α-dystroglycan. As the effect occurred in a mutation-dependent manner, we established a CDP-ribitol blood test to facilitate diagnosis and predict individualized treatment response. Ex vivo incubation of blood cells with ribose or ribitol restored CDP-ribitol concentrations in a patient with CRPPA LGMD. CONCLUSIONS: Sensitive detection of CDP-ribitol with LC-MS allows fast diagnosis of patients with severe and mild CRPPA myopathy. Ribose offers a readily testable dietary therapy for CRPPA myopathy, with possible applicability for patients with FKRP and FKTN myopathy. Evaluation of CDP-ribitol in blood is a promising tool for the evaluation and monitoring of dietary therapies for CRPPA myopathy in a patient-specific manner.


Subject(s)
Drug Monitoring/methods , Muscular Dystrophies/blood , Muscular Dystrophies/drug therapy , Nucleoside Diphosphate Sugars/blood , Animals , Chromatography, Liquid , Dietary Supplements , Dystroglycans , Female , Glycosylation , HEK293 Cells , Humans , Male , Mass Spectrometry , Mice , Mice, Transgenic , Middle Aged , Muscle, Skeletal/pathology , Muscular Dystrophies/pathology , Mutation , Nucleoside Diphosphate Sugars/analysis , Nucleotidyltransferases/genetics , Ribitol/pharmacology , Ribose/pharmacology
14.
J Inherit Metab Dis ; 41(3): 499-513, 2018 05.
Article in English | MEDLINE | ID: mdl-29497882

ABSTRACT

Clinical glycomics comprises a spectrum of different analytical methodologies to analyze glycan structures, which provides insights into the mechanisms of glycosylation. Within clinical diagnostics, glycomics serves as a functional readout of genetic variants, and can form a basis for therapy development, as was described for PGM1-CDG. Integration of glycomics with genomics has resulted in the elucidation of previously unknown disorders of glycosylation, namely CCDC115-CDG, TMEM199-CDG, ATP6AP1-CDG, MAN1B1-CDG, and PGM1-CDG. This review provides an introduction into protein glycosylation and presents the different glycomics methodologies ranging from gel electrophoresis to mass spectrometry (MS) and from free glycans to intact glycoproteins. The role of glycomics in the diagnosis of congenital disorders of glycosylation (CDG) is presented, including a diagnostic flow chart and an overview of glycomics data of known CDG subtypes. The review ends with some future perspectives, showing upcoming technologies as system wide mapping of the N- and O-glycoproteome, intact glycoprotein profiling and analysis of sugar metabolism. These new advances will provide additional insights and opportunities to develop personalized therapy. This is especially true for inborn errors of metabolism, which are amenable to causal therapy, because interventions through supplementation therapy can directly target the pathogenesis at the molecular level.


Subject(s)
Congenital Disorders of Glycosylation/diagnosis , Glycomics/methods , Algorithms , Congenital Disorders of Glycosylation/metabolism , Glycoproteins/analysis , Humans , Mass Spectrometry/methods , Polysaccharides/analysis
15.
J Inherit Metab Dis ; 41(3): 367-377, 2018 05.
Article in English | MEDLINE | ID: mdl-29556837

ABSTRACT

The identification of molecular biomarkers is critical for diagnosing and treating patients and for establishing a fundamental understanding of the pathophysiology and underlying biochemistry of inborn errors of metabolism. Currently, liquid chromatography/high-resolution mass spectrometry and nuclear magnetic resonance spectroscopy are the principle methods used for biomarker research and for structural elucidation of small molecules in patient body fluids. While both are powerful techniques, several limitations exist that often make the identification of unknown compounds challenging. Here, we describe how infrared ion spectroscopy has the potential to be a valuable orthogonal technique that provides highly-specific molecular structure information while maintaining ultra-high sensitivity. Here, we characterize and distinguish two well-known biomarkers of inborn errors of metabolism, glutaric acid for glutaric aciduria and ethylmalonic acid for short-chain acyl-CoA dehydrogenase deficiency, using infrared ion spectroscopy. In contrast to tandem mass spectra, in which ion fragments can hardly be predicted, we show that the prediction of an IR spectrum allows reference-free identification in the case that standard compounds are either commercially or synthetically unavailable. Finally, we illustrate how functional group information can be obtained from an IR spectrum for an unknown and how this is valuable information to, for example, narrow down a list of candidate structures resulting from a database query. Early diagnosis in inborn errors of metabolism is crucial for enabling treatment and depends on the identification of biomarkers specific for the disorder. Infrared ion spectroscopy has the potential to play a pivotal role in the identification of challenging biomarkers.


Subject(s)
Biomarkers/analysis , Metabolism, Inborn Errors/diagnosis , Metabolome/physiology , Biomarkers/metabolism , Humans , Metabolism, Inborn Errors/metabolism , Spectrophotometry, Infrared
16.
N Engl J Med ; 370(6): 533-42, 2014 Feb 06.
Article in English | MEDLINE | ID: mdl-24499211

ABSTRACT

BACKGROUND: Congenital disorders of glycosylation are genetic syndromes that result in impaired glycoprotein production. We evaluated patients who had a novel recessive disorder of glycosylation, with a range of clinical manifestations that included hepatopathy, bifid uvula, malignant hyperthermia, hypogonadotropic hypogonadism, growth retardation, hypoglycemia, myopathy, dilated cardiomyopathy, and cardiac arrest. METHODS: Homozygosity mapping followed by whole-exome sequencing was used to identify a mutation in the gene for phosphoglucomutase 1 (PGM1) in two siblings. Sequencing identified additional mutations in 15 other families. Phosphoglucomutase 1 enzyme activity was assayed on cell extracts. Analyses of glycosylation efficiency and quantitative studies of sugar metabolites were performed. Galactose supplementation in fibroblast cultures and dietary supplementation in the patients were studied to determine the effect on glycosylation. RESULTS: Phosphoglucomutase 1 enzyme activity was markedly diminished in all patients. Mass spectrometry of transferrin showed a loss of complete N-glycans and the presence of truncated glycans lacking galactose. Fibroblasts supplemented with galactose showed restoration of protein glycosylation and no evidence of glycogen accumulation. Dietary supplementation with galactose in six patients resulted in changes suggestive of clinical improvement. A new screening test showed good discrimination between patients and controls. CONCLUSIONS: Phosphoglucomutase 1 deficiency, previously identified as a glycogenosis, is also a congenital disorder of glycosylation. Supplementation with galactose leads to biochemical improvement in indexes of glycosylation in cells and patients, and supplementation with complex carbohydrates stabilizes blood glucose. A new screening test has been developed but has not yet been validated. (Funded by the Netherlands Organization for Scientific Research and others.).


Subject(s)
Glucosephosphates/genetics , Glycogen Storage Disease/genetics , Phenotype , Phosphoglucomutase/genetics , Galactose/therapeutic use , Genes, Recessive , Glucose/metabolism , Glucosephosphates/metabolism , Glycogen Storage Disease/diet therapy , Glycogen Storage Disease/metabolism , Glycoproteins/biosynthesis , Glycosylation , Humans , Male , Mutation , Phosphoglucomutase/metabolism , RNA, Messenger/analysis
17.
Genet Med ; 19(11): 1226-1235, 2017 11.
Article in English | MEDLINE | ID: mdl-28617415

ABSTRACT

PurposePhosphoglucomutase-1 deficiency is a subtype of congenital disorders of glycosylation (PGM1-CDG). Previous casereports in PGM1-CDG patients receiving oral D-galactose (D-gal) showed clinical improvement. So far no systematic in vitro and clinical studies have assessed safety and benefits of D-gal supplementation. In a prospective pilot study, we evaluated the effects of oral D-gal in nine patients.MethodsD-gal supplementation was increased to 1.5 g/kg/day (maximum 50 g/day) in three increments over 18 weeks. Laboratory studies were performed before and during treatment to monitor safety and effect on serum transferrin-glycosylation, coagulation, and liver and endocrine function. Additionally, the effect of D-gal on cellular glycosylation was characterized in vitro.ResultsEight patients were compliant with D-gal supplementation. No adverse effects were reported. Abnormal baseline results (alanine transaminase, aspartate transaminase, activated partial thromboplastin time) improved or normalized already using 1 g/kg/day D-gal. Antithrombin-III levels and transferrin-glycosylation showed significant improvement, and increase in galactosylation and whole glycan content. In vitro studies before treatment showed N-glycan hyposialylation, altered O-linked glycans, abnormal lipid-linked oligosaccharide profile, and abnormal nucleotide sugars in patient fibroblasts. Most cellular abnormalities improved or normalized following D-gal treatment. D-gal increased both UDP-Glc and UDP-Gal levels and improved lipid-linked oligosaccharide fractions in concert with improved glycosylation in PGM1-CDG.ConclusionOral D-gal supplementation is a safe and effective treatment for PGM1-CDG in this pilot study. Transferrin glycosylation and ATIII levels were useful trial end points. Larger, longer-duration trials are ongoing.


Subject(s)
Galactose/therapeutic use , Glycogen Storage Disease/drug therapy , Administration, Oral , Adolescent , Blood Coagulation , Blood Glucose/metabolism , Child , Child, Preschool , Creatine Kinase/blood , Dose-Response Relationship, Drug , Female , Galactose/administration & dosage , Galactose/adverse effects , Glycoproteins/metabolism , Humans , Infant , Male , Phosphoglucomutase/metabolism , Pilot Projects , Prospective Studies , Skin/cytology , Skin/metabolism , Transferrin/metabolism , Young Adult
18.
Am J Hum Genet ; 93(1): 29-41, 2013 Jul 11.
Article in English | MEDLINE | ID: mdl-23768512

ABSTRACT

Congenital muscular dystrophies with hypoglycosylation of α-dystroglycan (α-DG) are a heterogeneous group of disorders often associated with brain and eye defects in addition to muscular dystrophy. Causative variants in 14 genes thought to be involved in the glycosylation of α-DG have been identified thus far. Allelic mutations in these genes might also cause milder limb-girdle muscular dystrophy phenotypes. Using a combination of exome and Sanger sequencing in eight unrelated individuals, we present evidence that mutations in guanosine diphosphate mannose (GDP-mannose) pyrophosphorylase B (GMPPB) can result in muscular dystrophy variants with hypoglycosylated α-DG. GMPPB catalyzes the formation of GDP-mannose from GTP and mannose-1-phosphate. GDP-mannose is required for O-mannosylation of proteins, including α-DG, and it is the substrate of cytosolic mannosyltransferases. We found reduced α-DG glycosylation in the muscle biopsies of affected individuals and in available fibroblasts. Overexpression of wild-type GMPPB in fibroblasts from an affected individual partially restored glycosylation of α-DG. Whereas wild-type GMPPB localized to the cytoplasm, five of the identified missense mutations caused formation of aggregates in the cytoplasm or near membrane protrusions. Additionally, knockdown of the GMPPB ortholog in zebrafish caused structural muscle defects with decreased motility, eye abnormalities, and reduced glycosylation of α-DG. Together, these data indicate that GMPPB mutations are responsible for congenital and limb-girdle muscular dystrophies with hypoglycosylation of α-DG.


Subject(s)
Dystroglycans/metabolism , Muscular Dystrophies, Limb-Girdle/genetics , Mutation, Missense , Nucleotidyltransferases/metabolism , Animals , Child, Preschool , DNA Mutational Analysis/methods , Dystroglycans/genetics , Eye Abnormalities/pathology , Female , Fibroblasts/enzymology , Fibroblasts/pathology , Genetic Association Studies/methods , Glycosylation , Guanosine Diphosphate Mannose/metabolism , Heterozygote , Humans , Infant , Infant, Newborn , Male , Muscle, Skeletal/enzymology , Muscle, Skeletal/pathology , Muscular Dystrophies, Limb-Girdle/enzymology , Nucleotidyltransferases/genetics , Zebrafish/genetics , Zebrafish/metabolism
19.
Chembiochem ; 17(18): 1759-70, 2016 09 15.
Article in English | MEDLINE | ID: mdl-27356186

ABSTRACT

Discovery of glycan-competitive galectin-3-binding compounds that attenuate lung fibrosis in a murine model and that block intracellular galectin-3 accumulation at damaged vesicles, hence revealing galectin-3-glycan interactions involved in fibrosis progression and in intracellular galectin-3 activities, is reported. 3,3'-Bis-(4-aryltriazol-1-yl)thiodigalactosides were synthesized and evaluated as antagonists of galectin-1, -2, -3, and -4 N-terminal, -4 C-terminal, -7 and -8 N-terminal, -9 N-terminal, and -9 C-terminal domains. Compounds displaying low-nanomolar affinities for galectins-1 and -3 were identified in a competitive fluorescence anisotropy assay. X-ray structural analysis of selected compounds in complex with galectin-3, together with galectin-3 mutant binding experiments, revealed that both the aryltriazolyl moieties and fluoro substituents on the compounds are involved in key interactions responsible for exceptional affinities towards galectin-3. The most potent galectin-3 antagonist was demonstrated to act in an assay monitoring galectin-3 accumulation upon amitriptyline-induced vesicle damage, visualizing a biochemically/medically relevant intracellular lectin-carbohydrate binding event and that it can be blocked by a small molecule. The same antagonist administered intratracheally attenuated bleomycin-induced pulmonary fibrosis in a mouse model with a dose/response profile comparing favorably with that of oral administration of the marketed antifibrotic compound pirfenidone.


Subject(s)
Bleomycin , Galectin 3/metabolism , Polysaccharides/metabolism , Pulmonary Fibrosis/chemically induced , Pulmonary Fibrosis/prevention & control , Thioglycosides/pharmacology , Administration, Oral , Animals , Binding Sites , Disease Models, Animal , Dose-Response Relationship, Drug , Galectin 3/administration & dosage , Galectin 3/chemistry , Mice , Molecular Conformation , Polysaccharides/analysis , Pulmonary Fibrosis/drug therapy , Pulmonary Fibrosis/metabolism , Structure-Activity Relationship , Thioglycosides/administration & dosage , Thioglycosides/chemistry , Thioglycosides/therapeutic use
20.
FASEB J ; 29(7): 2993-3002, 2015 Jul.
Article in English | MEDLINE | ID: mdl-25868729

ABSTRACT

Glycosaminoglycan (GAG) polysaccharides have been implicated in a variety of cellular processes, and alterations in their amount and structure have been associated with diseases such as cancer. In this study, we probed 11 sugar analogs for their capacity to interfere with GAG biosynthesis. One analog, with a modification not directly involved in the glycosidic bond formation, 6F-N-acetyl-d-galactosamine (GalNAc) (Ac3), was selected for further study on its metabolic and biologic effect. Treatment of human ovarian carcinoma cells with 50 µM 6F-GalNAc (Ac3) inhibited biosynthesis of GAGs (chondroitin/dermatan sulfate by ∼50-60%, heparan sulfate by ∼35%), N-acetyl-d-glucosamine (GlcNAc)/GalNAc containing glycans recognized by the lectins Datura stramonium and peanut agglutinin (by ∼74 and ∼43%, respectively), and O-GlcNAc protein modification. With respect to function, 6F-GalNAc (Ac3) treatment inhibited growth factor signaling and reduced in vivo angiogenesis by ∼33%. Although the analog was readily transformed in cells into the uridine 5'-diphosphate (UDP)-activated form, it was not incorporated into GAGs. Rather, it strongly reduced cellular UDP-GalNAc and UDP-GlcNAc pools. Together with data from the literature, these findings indicate that nucleotide sugar depletion without incorporation is a common mechanism of sugar analogs for inhibiting GAG/glycan biosynthesis.


Subject(s)
Acetylgalactosamine/analogs & derivatives , Glycosaminoglycans/biosynthesis , Acetylgalactosamine/chemistry , Acetylgalactosamine/pharmacology , Animals , Cell Line , Chick Embryo , Fibroblast Growth Factor 2/metabolism , Glycosaminoglycans/antagonists & inhibitors , HeLa Cells , Human Umbilical Vein Endothelial Cells , Humans , Neovascularization, Physiologic/drug effects , Polysaccharides/antagonists & inhibitors , Polysaccharides/biosynthesis , Signal Transduction/drug effects , Structure-Activity Relationship , Uridine Diphosphate N-Acetylgalactosamine/metabolism , Uridine Diphosphate N-Acetylglucosamine/metabolism , Vascular Endothelial Growth Factor A/metabolism
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