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PMID: 35279850 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Synergistic use of glycomics and single-molecule molecular inversion probes for identification of congenital disorders of glycosylation type-1.

Journal of inherited metabolic disease ·Vol. 45 ·No. 4 ·2022-00-00 ·Pages 769-781

Abu Bakar N, Ashikov A, Brum JM, Smeets R, Kersten M, Huijben K, Keng WT, Speck-Martins CE, de Carvalho DR, de Rizzo IMPO, de Mello WD, Heiner-Fokkema R, Gorman K, Grunewald S, Michelakakis H, Moraitou M, Martinelli D, van Scherpenzeel M, Janssen M, de Boer L, van den Heuvel LP, Thiel C, Lefeber DJ

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.

Keywords
CDG type 1 (CDG-I) congenital disorders of glycosylation (CDG) diagnostics by mass spectrometry glycomics multi-omics smMIPs
MeSH Terms
Congenital Disorders of Glycosylation/diagnosis,genetics Glycomics Glycosylation Humans Mannose Mannosyltransferases/genetics N-Acetylglucosaminyltransferases Oligosaccharides Polysaccharides/genetics
Chemicals
Oligosaccharides Polysaccharides ALG11 protein, human ALG13 protein, human ALG3 protein, human Mannosyltransferases N-Acetylglucosaminyltransferases Mannose
Authors & Affiliations
23 authors, click to expand affiliations / ORCID
Abu Bakar Nurulamin ORCID
Department of Neurology, Translational Metabolic Laboratory, Donders Institute for Brain, Cognition, and Behavior, Radboud University Medical Center, Nijmegen, The Netherlands. | Department of Pathology, Selayang Hospital, Selangor, Ministry of Health Malaysia, Putrajaya, Malaysia.
Ashikov Angel ORCID
Department of Neurology, Translational Metabolic Laboratory, Donders Institute for Brain, Cognition, and Behavior, Radboud University Medical Center, Nijmegen, The Netherlands.
Brum Jaime Moritz
Department of Clinical Pathology, The Sarah Network of Rehabilitation Hospitals, Brasilia, Brazil.
Smeets Roel
Translational Metabolic Laboratory, Department Laboratory Medicine, Radboud University Medical Center, Nijmegen, The Netherlands.
Kersten Marjan
Translational Metabolic Laboratory, Department Laboratory Medicine, Radboud University Medical Center, Nijmegen, The Netherlands.
Huijben Karin
Translational Metabolic Laboratory, Department Laboratory Medicine, Radboud University Medical Center, Nijmegen, The Netherlands.
Keng Wee Teik
Genetics Department, Kuala Lumpur Hospital, Kuala Lumpur, Ministry of Health Malaysia, Putrajaya, Malaysia.
Speck-Martins Carlos Eduardo
Genetic Unit, Sarah Network of Hospitals, Brasilia, Brazil.
de Carvalho Daniel Rocha
Genetic Unit, Sarah Network of Hospitals, Brasilia, Brazil.
de Rizzo Isabela Maria Pinto Oliveira
Genetic Unit, Sarah Network of Hospitals, Brasilia, Brazil.
de Mello Walquiria Domingues
Genetic Unit, Sarah Network of Hospitals, Brasilia, Brazil.
Heiner-Fokkema Rebecca
Department of Laboratory Medicine, UMC Groningen, Groningen, The Netherlands.
Gorman Kathleen
Pediatric Neurology, Children's Health Ireland (CHI), Dublin, Ireland.
Grunewald Stephanie
Metabolic Department, Great Ormond Street Hospital NHS Foundation Trust Institute of Child Health, University College London, London, UK.
Michelakakis Helen
Department of Enzymology and Cellular Function, Institute of Child Health, Athens, Greece.
Moraitou Marina
Department of Enzymology and Cellular Function, Institute of Child Health, Athens, Greece.
Martinelli Diego
Genetics and Rare Diseases Research Division, Bambino Gesù Children's Research Hospital, Rome, Italy.
van Scherpenzeel Monique
Department of Neurology, Translational Metabolic Laboratory, Donders Institute for Brain, Cognition, and Behavior, Radboud University Medical Center, Nijmegen, The Netherlands.
Janssen Mirian
Department of Internal Medicine, Radboud University Medical Center, Nijmegen, The Netherlands.
de Boer Lonneke
Department of Pediatrics, Radboud University Medical Center, Nijmegen, The Netherlands.
van den Heuvel Lambertus P
Department of Pediatrics, Translational Metabolic Laboratory, Radboud University Medical Center, Nijmegen, The Netherlands.
Thiel Christian
Center for Child and Adolescent Medicine, Kinderheilkunde I, University of Heidelberg, Heidelberg, Germany.
Lefeber Dirk J ORCID
Department of Neurology, Translational Metabolic Laboratory, Donders Institute for Brain, Cognition, and Behavior, Radboud University Medical Center, Nijmegen, The Netherlands.
References (22)
22 references, click to expand
  1. How to find and diagnose a CDG due to defective N-glycosylation.
    J Inherit Metab Dis. 2011 Aug;34(4):849-52 PMID: 21739167
  2. Gene identification in the congenital disorders of glycosylation type I by whole-exome sequencing.
    Hum Mol Genet. 2012 Oct 1;21(19):4151-61 PMID: 22492991
  3. Rapid determination of transferrin isoforms by immunoaffinity liquid chromatography and electrospray mass spectrometry.
    Clin Chem. 2001 Mar;47(3):513-8 PMID: 11238305
  4. CCDC115 Deficiency Causes a Disorder of Golgi Homeostasis with Abnormal Protein Glycosylation.
    Am J Hum Genet. 2016 Feb 4;98(2):310-21 PMID: 26833332
  5. Expanding the phenotype, genotype and biochemical knowledge of ALG3-CDG.
    J Inherit Metab Dis. 2021 Jul;44(4):987-1000 PMID: 33583022
  6. Serum transferrin carrying the xeno-tetrasaccharide NeuAc-Gal-GlcNAc2 is a biomarker of ALG1-CDG.
    J Inherit Metab Dis. 2016 Jan;39(1):107-14 PMID: 26335155
  7. Human plasma protein N-glycosylation.
    Glycoconj J. 2016 Jun;33(3):309-43 PMID: 26555091
  8. A novel homozygous mutation in the human ALG12 gene results in an aberrant profile of oligomannose N-glycans in patient's serum.
    Am J Med Genet A. 2021 Nov;185(11):3494-3501 PMID: 34467644
  9. High-resolution mass spectrometry glycoprofiling of intact transferrin for diagnosis and subtype identification in the congenital disorders of glycosylation.
    Transl Res. 2015 Dec;166(6):639-649.e1 PMID: 26307094
  10. BRCA Testing by Single-Molecule Molecular Inversion Probes.
    Clin Chem. 2017 Feb;63(2):503-512 PMID: 27974384
  11. Synergistic use of glycomics and single-molecule molecular inversion probes for identification of congenital disorders of glycosylation type-1.
    J Inherit Metab Dis. 2022 Jul;45(4):769-781 PMID: 35279850
  12. Isomer-specific chromatographic profiling yields highly sensitive and specific potential N-glycan biomarkers for epithelial ovarian cancer.
    J Chromatogr A. 2013 Mar 1;1279:58-67 PMID: 23380366
  13. Multiplex targeted sequencing identifies recurrently mutated genes in autism spectrum disorders.
    Science. 2012 Dec 21;338(6114):1619-22 PMID: 23160955
  14. Intact transferrin and total plasma glycoprofiling for diagnosis and therapy monitoring in phosphoglucomutase-I deficiency.
    Transl Res. 2018 Sep;199:62-76 PMID: 30048639
  15. Increased Clinical Sensitivity and Specificity of Plasma Protein N-Glycan Profiling for Diagnosing Congenital Disorders of Glycosylation by Use of Flow Injection-Electrospray Ionization-Quadrupole Time-of-Flight Mass Spectrometry.
    Clin Chem. 2019 May;65(5):653-663 PMID: 30770376
  16. ALG1-CDG: Clinical and Molecular Characterization of 39 Unreported Patients.
    Hum Mutat. 2016 Jul;37(7):653-60 PMID: 26931382
  17. Congenital disorders of glycosylation (CDG): Quo vadis?
    Eur J Med Genet. 2018 Nov;61(11):643-663 PMID: 29079546
  18. Perspectives on Glycosylation and Its Congenital Disorders.
    Trends Genet. 2018 Jun;34(6):466-476 PMID: 29606283
  19. A Novel N-Tetrasaccharide in Patients with Congenital Disorders of Glycosylation, Including Asparagine-Linked Glycosylation Protein 1, Phosphomannomutase 2, and Mannose Phosphate Isomerase Deficiencies.
    Clin Chem. 2016 Jan;62(1):208-17 PMID: 26430078
  20. Clinical glycomics for the diagnosis of congenital disorders of glycosylation.
    J Inherit Metab Dis. 2018 May;41(3):499-513 PMID: 29497882
  21. Integrating glycomics and genomics uncovers SLC10A7 as essential factor for bone mineralization by regulating post-Golgi protein transport and glycosylation.
    Hum Mol Genet. 2018 Sep 1;27(17):3029-3045 PMID: 29878199
  22. Single molecule molecular inversion probes for targeted, high-accuracy detection of low-frequency variation.
    Genome Res. 2013 May;23(5):843-54 PMID: 23382536
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Article Info
Journal
Journal of inherited metabolic disease
Abbr.
J Inherit Metab Dis
ISSN
1573-2665
Published
2022-00-00
Epub
2022-00-28
Pages
769-781
Language
English
Region
United States
NLM ID
7910918
PMCID
PMC9545396
Subset
IM
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