Cargando…

Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype

BACKGROUND: A new disease class of syndromes, described as linkeropathies, which are derived from defects in the glycosaminoglycan-linker region as well as glycosaminoglycan-side chains of proteoglycans is increasingly being recognized as a cause of human disease. Proteoglycans are an essential comp...

Descripción completa

Detalles Bibliográficos
Autores principales: Job, Florian, Mizumoto, Shuji, Smith, Laurie, Couser, Natario, Brazil, Ashley, Saal, Howard, Patterson, Melanie, Gibson, Margaret I., Soden, Sarah, Miller, Neil, Thiffault, Isabelle, Saunders, Carol, Yamada, Shuhei, Hoffmann, Katrin, Sugahara, Kazuyuki, Farrow, Emily
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5117547/
https://www.ncbi.nlm.nih.gov/pubmed/27871226
http://dx.doi.org/10.1186/s12881-016-0344-9
_version_ 1782468824945131520
author Job, Florian
Mizumoto, Shuji
Smith, Laurie
Couser, Natario
Brazil, Ashley
Saal, Howard
Patterson, Melanie
Gibson, Margaret I.
Soden, Sarah
Miller, Neil
Thiffault, Isabelle
Saunders, Carol
Yamada, Shuhei
Hoffmann, Katrin
Sugahara, Kazuyuki
Farrow, Emily
author_facet Job, Florian
Mizumoto, Shuji
Smith, Laurie
Couser, Natario
Brazil, Ashley
Saal, Howard
Patterson, Melanie
Gibson, Margaret I.
Soden, Sarah
Miller, Neil
Thiffault, Isabelle
Saunders, Carol
Yamada, Shuhei
Hoffmann, Katrin
Sugahara, Kazuyuki
Farrow, Emily
author_sort Job, Florian
collection PubMed
description BACKGROUND: A new disease class of syndromes, described as linkeropathies, which are derived from defects in the glycosaminoglycan-linker region as well as glycosaminoglycan-side chains of proteoglycans is increasingly being recognized as a cause of human disease. Proteoglycans are an essential component of the extracellular matrix. Defects in the enzymatic process of proteoglycan synthesis broadly occur due to the incorrect addition of side chains. Previously, homozygous missense variants within the B3GAT3 gene encoding beta 1,3 glucuronyltransferase 3(GlcAT-I) responsible for the biosynthesis of glycosaminoglycans have been described in 7 individuals. CASE PRESENTATION: In this study, a 4-year-old patient with a severe phenotype of osteoporosis, hypotonia, joint laxity, fractures, scoliosis, biscuspid aortic valve and myopia was referred for next generation sequencing after extensive negative clinical testing. Whole exome sequencing was performed on the proband and his unaffected parents to identify the molecular basis of his disease. Sequencing revealed compound heterozygous variants in B3GAT3: c.1A > G (p.Met1?) and c.671 T > A (p.L224Q). Clinical and in vitro functional studies were then completed to verify the pathogenicity of the genotype and further characterize the functional basis of the patient’s disease demonstrating the patient had a decrease both in the protein level of B3GAT3 and in the glucuronyltransferase activity when compared to control samples. Independent in vitro assessment of each variant confirmed the B3GAT3: c.1A > G (p.Met1?) variant is functionally null and the c.671 T > A (p.L224Q) missense variant has significantly reduced glucuronyltransferase activity (~3% of control). CONCLUSIONS: This is the first report of a patient with compound heterozygosity for a null variant in trans with a missense in B3GAT3 resulting in a severe phenotype, expanding both the genotypic and phenotypic spectrum of B3GAT3-related disease. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12881-016-0344-9) contains supplementary material, which is available to authorized users.
format Online
Article
Text
id pubmed-5117547
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-51175472016-11-28 Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype Job, Florian Mizumoto, Shuji Smith, Laurie Couser, Natario Brazil, Ashley Saal, Howard Patterson, Melanie Gibson, Margaret I. Soden, Sarah Miller, Neil Thiffault, Isabelle Saunders, Carol Yamada, Shuhei Hoffmann, Katrin Sugahara, Kazuyuki Farrow, Emily BMC Med Genet Case Report BACKGROUND: A new disease class of syndromes, described as linkeropathies, which are derived from defects in the glycosaminoglycan-linker region as well as glycosaminoglycan-side chains of proteoglycans is increasingly being recognized as a cause of human disease. Proteoglycans are an essential component of the extracellular matrix. Defects in the enzymatic process of proteoglycan synthesis broadly occur due to the incorrect addition of side chains. Previously, homozygous missense variants within the B3GAT3 gene encoding beta 1,3 glucuronyltransferase 3(GlcAT-I) responsible for the biosynthesis of glycosaminoglycans have been described in 7 individuals. CASE PRESENTATION: In this study, a 4-year-old patient with a severe phenotype of osteoporosis, hypotonia, joint laxity, fractures, scoliosis, biscuspid aortic valve and myopia was referred for next generation sequencing after extensive negative clinical testing. Whole exome sequencing was performed on the proband and his unaffected parents to identify the molecular basis of his disease. Sequencing revealed compound heterozygous variants in B3GAT3: c.1A > G (p.Met1?) and c.671 T > A (p.L224Q). Clinical and in vitro functional studies were then completed to verify the pathogenicity of the genotype and further characterize the functional basis of the patient’s disease demonstrating the patient had a decrease both in the protein level of B3GAT3 and in the glucuronyltransferase activity when compared to control samples. Independent in vitro assessment of each variant confirmed the B3GAT3: c.1A > G (p.Met1?) variant is functionally null and the c.671 T > A (p.L224Q) missense variant has significantly reduced glucuronyltransferase activity (~3% of control). CONCLUSIONS: This is the first report of a patient with compound heterozygosity for a null variant in trans with a missense in B3GAT3 resulting in a severe phenotype, expanding both the genotypic and phenotypic spectrum of B3GAT3-related disease. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12881-016-0344-9) contains supplementary material, which is available to authorized users. BioMed Central 2016-11-21 /pmc/articles/PMC5117547/ /pubmed/27871226 http://dx.doi.org/10.1186/s12881-016-0344-9 Text en © The Author(s). 2016 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Case Report
Job, Florian
Mizumoto, Shuji
Smith, Laurie
Couser, Natario
Brazil, Ashley
Saal, Howard
Patterson, Melanie
Gibson, Margaret I.
Soden, Sarah
Miller, Neil
Thiffault, Isabelle
Saunders, Carol
Yamada, Shuhei
Hoffmann, Katrin
Sugahara, Kazuyuki
Farrow, Emily
Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype
title Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype
title_full Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype
title_fullStr Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype
title_full_unstemmed Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype
title_short Functional validation of novel compound heterozygous variants in B3GAT3 resulting in severe osteopenia and fractures: expanding the disease phenotype
title_sort functional validation of novel compound heterozygous variants in b3gat3 resulting in severe osteopenia and fractures: expanding the disease phenotype
topic Case Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5117547/
https://www.ncbi.nlm.nih.gov/pubmed/27871226
http://dx.doi.org/10.1186/s12881-016-0344-9
work_keys_str_mv AT jobflorian functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT mizumotoshuji functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT smithlaurie functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT cousernatario functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT brazilashley functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT saalhoward functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT pattersonmelanie functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT gibsonmargareti functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT sodensarah functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT millerneil functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT thiffaultisabelle functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT saunderscarol functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT yamadashuhei functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT hoffmannkatrin functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT sugaharakazuyuki functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype
AT farrowemily functionalvalidationofnovelcompoundheterozygousvariantsinb3gat3resultinginsevereosteopeniaandfracturesexpandingthediseasephenotype