Cargando…

Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain

We present a generic, multidisciplinary approach for improving our understanding of novel missense variants in recently discovered disease genes exhibiting genetic heterogeneity, by combining clinical and population genetics with protein structural analysis. Using six new de novo missense diagnoses...

Descripción completa

Detalles Bibliográficos
Autores principales: Laskowski, Roman A., Tyagi, Nidhi, Johnson, Diana, Joss, Shelagh, Kinning, Esther, McWilliam, Catherine, Splitt, Miranda, Thornton, Janet M., Firth, Helen V., Wright, Caroline F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4754046/
https://www.ncbi.nlm.nih.gov/pubmed/26740553
http://dx.doi.org/10.1093/hmg/ddv625
_version_ 1782415966997577728
author Laskowski, Roman A.
Tyagi, Nidhi
Johnson, Diana
Joss, Shelagh
Kinning, Esther
McWilliam, Catherine
Splitt, Miranda
Thornton, Janet M.
Firth, Helen V.
Wright, Caroline F.
author_facet Laskowski, Roman A.
Tyagi, Nidhi
Johnson, Diana
Joss, Shelagh
Kinning, Esther
McWilliam, Catherine
Splitt, Miranda
Thornton, Janet M.
Firth, Helen V.
Wright, Caroline F.
author_sort Laskowski, Roman A.
collection PubMed
description We present a generic, multidisciplinary approach for improving our understanding of novel missense variants in recently discovered disease genes exhibiting genetic heterogeneity, by combining clinical and population genetics with protein structural analysis. Using six new de novo missense diagnoses in TBL1XR1 from the Deciphering Developmental Disorders study, together with population variation data, we show that the β-propeller structure of the ubiquitous WD40 domain provides a convincing way to discriminate between pathogenic and benign variation. Children with likely pathogenic mutations in this gene have severely delayed language development, often accompanied by intellectual disability, autism, dysmorphology and gastrointestinal problems. Amino acids affected by likely pathogenic missense mutations are either crucial for the stability of the fold, forming part of a highly conserved symmetrically repeating hydrogen-bonded tetrad, or located at the top face of the β-propeller, where ‘hotspot’ residues affect the binding of β-catenin to the TBLR1 protein. In contrast, those altered by population variation are significantly less likely to be spatially clustered towards the top face or to be at buried or highly conserved residues. This result is useful not only for interpreting benign and pathogenic missense variants in this gene, but also in other WD40 domains, many of which are associated with disease.
format Online
Article
Text
id pubmed-4754046
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-47540462016-02-16 Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain Laskowski, Roman A. Tyagi, Nidhi Johnson, Diana Joss, Shelagh Kinning, Esther McWilliam, Catherine Splitt, Miranda Thornton, Janet M. Firth, Helen V. Wright, Caroline F. Hum Mol Genet Articles We present a generic, multidisciplinary approach for improving our understanding of novel missense variants in recently discovered disease genes exhibiting genetic heterogeneity, by combining clinical and population genetics with protein structural analysis. Using six new de novo missense diagnoses in TBL1XR1 from the Deciphering Developmental Disorders study, together with population variation data, we show that the β-propeller structure of the ubiquitous WD40 domain provides a convincing way to discriminate between pathogenic and benign variation. Children with likely pathogenic mutations in this gene have severely delayed language development, often accompanied by intellectual disability, autism, dysmorphology and gastrointestinal problems. Amino acids affected by likely pathogenic missense mutations are either crucial for the stability of the fold, forming part of a highly conserved symmetrically repeating hydrogen-bonded tetrad, or located at the top face of the β-propeller, where ‘hotspot’ residues affect the binding of β-catenin to the TBLR1 protein. In contrast, those altered by population variation are significantly less likely to be spatially clustered towards the top face or to be at buried or highly conserved residues. This result is useful not only for interpreting benign and pathogenic missense variants in this gene, but also in other WD40 domains, many of which are associated with disease. Oxford University Press 2016-03-01 2016-01-05 /pmc/articles/PMC4754046/ /pubmed/26740553 http://dx.doi.org/10.1093/hmg/ddv625 Text en © The Author 2016. Published by Oxford University Press. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Laskowski, Roman A.
Tyagi, Nidhi
Johnson, Diana
Joss, Shelagh
Kinning, Esther
McWilliam, Catherine
Splitt, Miranda
Thornton, Janet M.
Firth, Helen V.
Wright, Caroline F.
Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain
title Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain
title_full Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain
title_fullStr Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain
title_full_unstemmed Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain
title_short Integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the WD40 domain
title_sort integrating population variation and protein structural analysis to improve clinical interpretation of missense variation: application to the wd40 domain
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4754046/
https://www.ncbi.nlm.nih.gov/pubmed/26740553
http://dx.doi.org/10.1093/hmg/ddv625
work_keys_str_mv AT laskowskiromana integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT tyaginidhi integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT johnsondiana integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT jossshelagh integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT kinningesther integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT mcwilliamcatherine integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT splittmiranda integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT thorntonjanetm integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT firthhelenv integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain
AT wrightcarolinef integratingpopulationvariationandproteinstructuralanalysistoimproveclinicalinterpretationofmissensevariationapplicationtothewd40domain