Literature DB >> 26307094

High-resolution mass spectrometry glycoprofiling of intact transferrin for diagnosis and subtype identification in the congenital disorders of glycosylation.

Monique van Scherpenzeel1, Gerry Steenbergen2, Eva Morava3, Ron A Wevers2, Dirk J Lefeber4.   

Abstract

Diagnostic screening of the congenital disorders of glycosylation (CDG) generally involves isoelectric focusing of plasma transferrin, a robust method easily integrated in medical laboratories. Structural information is needed as the next step, as required for the challenging classification of Golgi glycosylation defects (CDG-II). Here, we present the use of high-resolution nano liquid chromatography-chip (C8)-quadrupole time of flight mass spectrometry (nanoLC-chip [C8]-QTOF MS) for protein-specific glycoprofiling of intact transferrin, which allows screening and direct diagnosis of a number of CDG-II defects. Transferrin was immunopurified from 10 μL of plasma and analyzed by nanoLC-chip-QTOF MS. Charge distribution raw data were deconvoluted by Mass Hunter software to reconstructed mass spectra. Plasma samples were processed from controls (n = 56), patients with known defects (n = 30), and patients with secondary (n = 6) or unsolved (n = 3) cause of abnormal glycosylation. This fast and robust method, established for CDG diagnostics, requires only 2 hours analysis time, including sample preparation and analysis. For CDG-I patients, the characteristic loss of complete N-glycans could be detected with high sensitivity. Known CDG-II defects (phosphoglucomutase 1 [PGM1-CDG], mannosyl (α-1,6-)-glycoprotein β-1,2-N-acetylglucosaminyltransferase [MGAT2-CDG], β-1,4-galactosyltransferase 1 [B4GALT1-CDG], CMP-sialic acid transporter [SLC35A1-CDG], UDP-galactose transporter [SLC35A2-CDG] and mannosyl-oligosaccharide 1,2-alpha-mannosidase [MAN1B1-CDG]) resulted in characteristic diagnostic profiles. Moreover, in the group of Golgi trafficking defects and unsolved CDG-II patients, distinct profiles were observed, which facilitate identification of the specific CDG subtype. The established QTOF method affords high sensitivity and resolution for the detection of complete glycan loss and structural assignment of truncated glycans in a single assay. The speed and robustness allow its clinical diagnostic application as a first step in the diagnostic procedure for CDG defects.
Copyright © 2015 Elsevier Inc. All rights reserved.

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Year:  2015        PMID: 26307094     DOI: 10.1016/j.trsl.2015.07.005

Source DB:  PubMed          Journal:  Transl Res        ISSN: 1878-1810            Impact factor:   7.012


  29 in total

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Authors:  David C Schorling; Simone Rost; Dirk J Lefeber; Lauren Brady; Clemens R Müller; Rudolf Korinthenberg; Mark Tarnopolsky; Carsten G Bönnemann; Richard J Rodenburg; Marianna Bugiani; Maria Beytia; Marcus Krüger; Marjo van der Knaap; Jan Kirschner
Journal:  Neurology       Date:  2017-07-21       Impact factor: 9.910

2.  Mutations in ATP6V1E1 or ATP6V1A Cause Autosomal-Recessive Cutis Laxa.

Authors:  Tim Van Damme; Thatjana Gardeitchik; Miski Mohamed; Sergio Guerrero-Castillo; Peter Freisinger; Brecht Guillemyn; Ariana Kariminejad; Daisy Dalloyaux; Sanne van Kraaij; Dirk J Lefeber; Delfien Syx; Wouter Steyaert; Riet De Rycke; Alexander Hoischen; Erik-Jan Kamsteeg; Sunnie Y Wong; Monique van Scherpenzeel; Payman Jamali; Ulrich Brandt; Leo Nijtmans; G Christoph Korenke; Brian H Y Chung; Christopher C Y Mak; Ingrid Hausser; Uwe Kornak; Björn Fischer-Zirnsak; Tim M Strom; Thomas Meitinger; Yasemin Alanay; Gulen E Utine; Peter K C Leung; Siavash Ghaderi-Sohi; Paul Coucke; Sofie Symoens; Anne De Paepe; Christian Thiel; Tobias B Haack; Fransiska Malfait; Eva Morava; Bert Callewaert; Ron A Wevers
Journal:  Am J Hum Genet       Date:  2017-01-05       Impact factor: 11.025

3.  Clinical glycomics in the diagnostic laboratory.

Authors:  Merel A Post; Dirk J Lefeber
Journal:  Ann Transl Med       Date:  2019-09

Review 4.  Recent Advances in the Mass Spectrometry Methods for Glycomics and Cancer.

Authors:  Muchena J Kailemia; Gege Xu; Maurice Wong; Qiongyu Li; Elisha Goonatilleke; Frank Leon; Carlito B Lebrilla
Journal:  Anal Chem       Date:  2017-10-31       Impact factor: 6.986

5.  Comparison of transferrin isoform analysis by capillary electrophoresis and HPLC for screening congenital disorders of glycosylation.

Authors:  Mihika B Dave; Alpa J Dherai; Vrajesh P Udani; Anaita U Hegde; Neelu A Desai; Tester F Ashavaid
Journal:  J Clin Lab Anal       Date:  2017-02-25       Impact factor: 2.352

Review 6.  Mass Spectrometry Approaches to Glycomic and Glycoproteomic Analyses.

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Journal:  Chem Rev       Date:  2018-03-19       Impact factor: 60.622

Review 7.  Consensus guideline for the diagnosis and management of mannose phosphate isomerase-congenital disorder of glycosylation.

Authors:  Anna Čechová; Ruqaiah Altassan; Delphine Borgel; Arnaud Bruneel; Joana Correia; Muriel Girard; Annie Harroche; Beata Kiec-Wilk; Klaus Mohnike; Tiffany Pascreau; Łukasz Pawliński; Silvia Radenkovic; Sandrine Vuillaumier-Barrot; Luis Aldamiz-Echevarria; Maria Luz Couce; Esmeralda G Martins; Dulce Quelhas; Eva Morava; Pascale de Lonlay; Peter Witters; Tomáš Honzík
Journal:  J Inherit Metab Dis       Date:  2020-04-21       Impact factor: 4.982

8.  Intact transferrin and total plasma glycoprofiling for diagnosis and therapy monitoring in phosphoglucomutase-I deficiency.

Authors:  Nurulamin Abu Bakar; Nicol C Voermans; Thorsten Marquardt; Christian Thiel; Mirian C H Janssen; Hana Hansikova; Ellen Crushell; Jolanta Sykut-Cegielska; Francis Bowling; Lars MØrkrid; John Vissing; Eva Morava; Monique van Scherpenzeel; Dirk J Lefeber
Journal:  Transl Res       Date:  2018-05-10       Impact factor: 7.012

9.  CCDC115 Deficiency Causes a Disorder of Golgi Homeostasis with Abnormal Protein Glycosylation.

Authors:  Jos C Jansen; Sebahattin Cirak; Monique van Scherpenzeel; Sharita Timal; Janine Reunert; Stephan Rust; Belén Pérez; Dorothée Vicogne; Peter Krawitz; Yoshinao Wada; Angel Ashikov; Celia Pérez-Cerdá; Celia Medrano; Andrea Arnoldy; Alexander Hoischen; Karin Huijben; Gerry Steenbergen; Dulce Quelhas; Luisa Diogo; Daisy Rymen; Jaak Jaeken; Nathalie Guffon; David Cheillan; Lambertus P van den Heuvel; Yusuke Maeda; Olaf Kaiser; Ulrike Schara; Patrick Gerner; Marjolein A W van den Boogert; Adriaan G Holleboom; Marie-Cécile Nassogne; Etienne Sokal; Jody Salomon; Geert van den Bogaart; Joost P H Drenth; Martijn A Huynen; Joris A Veltman; Ron A Wevers; Eva Morava; Gert Matthijs; François Foulquier; Thorsten Marquardt; Dirk J Lefeber
Journal:  Am J Hum Genet       Date:  2016-01-28       Impact factor: 11.025

10.  NANS-mediated synthesis of sialic acid is required for brain and skeletal development.

Authors:  Clara D M van Karnebeek; Luisa Bonafé; Xiao-Yan Wen; Maja Tarailo-Graovac; Sara Balzano; Beryl Royer-Bertrand; Angel Ashikov; Livia Garavelli; Isabella Mammi; Licia Turolla; Catherine Breen; Dian Donnai; Valérie Cormier-Daire; Delphine Heron; Gen Nishimura; Shinichi Uchikawa; Belinda Campos-Xavier; Antonio Rossi; Thierry Hennet; Koroboshka Brand-Arzamendi; Jacob Rozmus; Keith Harshman; Brian J Stevenson; Enrico Girardi; Giulio Superti-Furga; Tammie Dewan; Alissa Collingridge; Jessie Halparin; Colin J Ross; Margot I Van Allen; Andrea Rossi; Udo F Engelke; Leo A J Kluijtmans; Ed van der Heeft; Herma Renkema; Arjan de Brouwer; Karin Huijben; Fokje Zijlstra; Torben Heise; Thomas Boltje; Wyeth W Wasserman; Carlo Rivolta; Sheila Unger; Dirk J Lefeber; Ron A Wevers; Andrea Superti-Furga
Journal:  Nat Genet       Date:  2016-05-23       Impact factor: 38.330

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