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Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling

TGF-β-related heritable connective tissue disorders are characterized by a similar pattern of cardiovascular defects, including aortic root dilatation, mitral valve prolapse, vascular aneurysms, and vascular dissections and exhibit incomplete penetrance and variable expressivity. Because of the phen...

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Autores principales: Cousin, Margot A., Zimmermann, Michael T., Mathison, Angela J., Blackburn, Patrick R., Boczek, Nicole J., Oliver, Gavin R., Lomberk, Gwen A., Urrutia, Raul A., Deyle, David R., Klee, Eric W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5495030/
https://www.ncbi.nlm.nih.gov/pubmed/28679693
http://dx.doi.org/10.1101/mcs.a001727
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author Cousin, Margot A.
Zimmermann, Michael T.
Mathison, Angela J.
Blackburn, Patrick R.
Boczek, Nicole J.
Oliver, Gavin R.
Lomberk, Gwen A.
Urrutia, Raul A.
Deyle, David R.
Klee, Eric W.
author_facet Cousin, Margot A.
Zimmermann, Michael T.
Mathison, Angela J.
Blackburn, Patrick R.
Boczek, Nicole J.
Oliver, Gavin R.
Lomberk, Gwen A.
Urrutia, Raul A.
Deyle, David R.
Klee, Eric W.
author_sort Cousin, Margot A.
collection PubMed
description TGF-β-related heritable connective tissue disorders are characterized by a similar pattern of cardiovascular defects, including aortic root dilatation, mitral valve prolapse, vascular aneurysms, and vascular dissections and exhibit incomplete penetrance and variable expressivity. Because of the phenotypic overlap of these disorders, panel-based genetic testing is frequently used to confirm the clinical findings. Unfortunately in many cases, variants of uncertain significance (VUSs) obscure the genetic diagnosis until more information becomes available. Here, we describe and characterize the functional impact of a novel VUS in the TGFBR2 kinase domain (c.1255G>T; p.Val419Leu), in a patient with the clinical diagnosis of Marfan syndrome spectrum. We assessed the structural and functional consequence of this VUS using molecular modeling, molecular dynamic simulations, and in vitro cell-based assays. A high-quality homology-based model of TGFBR2 was generated and computational mutagenesis followed by refinement and molecular dynamics simulations were used to assess structural and dynamic changes. Relative to wild type, the V419L induced conformational and dynamic changes that may affect ATP binding, increasing the likelihood of adopting an inactive state, and, we hypothesize, alter canonical signaling. Experimentally, we tested this by measuring the canonical TGF-β signaling pathway activation at two points; V419L significantly delayed SMAD2 phosphorylation by western blot and significantly decreased TGF-β-induced gene transcription by reporter assays consistent with known pathogenic variants in this gene. Thus, our results establish that the V419L variant leads to aberrant TGF-β signaling and confirm the diagnosis of Loeys–Dietz syndrome in this patient.
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spelling pubmed-54950302017-07-18 Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling Cousin, Margot A. Zimmermann, Michael T. Mathison, Angela J. Blackburn, Patrick R. Boczek, Nicole J. Oliver, Gavin R. Lomberk, Gwen A. Urrutia, Raul A. Deyle, David R. Klee, Eric W. Cold Spring Harb Mol Case Stud Research Article TGF-β-related heritable connective tissue disorders are characterized by a similar pattern of cardiovascular defects, including aortic root dilatation, mitral valve prolapse, vascular aneurysms, and vascular dissections and exhibit incomplete penetrance and variable expressivity. Because of the phenotypic overlap of these disorders, panel-based genetic testing is frequently used to confirm the clinical findings. Unfortunately in many cases, variants of uncertain significance (VUSs) obscure the genetic diagnosis until more information becomes available. Here, we describe and characterize the functional impact of a novel VUS in the TGFBR2 kinase domain (c.1255G>T; p.Val419Leu), in a patient with the clinical diagnosis of Marfan syndrome spectrum. We assessed the structural and functional consequence of this VUS using molecular modeling, molecular dynamic simulations, and in vitro cell-based assays. A high-quality homology-based model of TGFBR2 was generated and computational mutagenesis followed by refinement and molecular dynamics simulations were used to assess structural and dynamic changes. Relative to wild type, the V419L induced conformational and dynamic changes that may affect ATP binding, increasing the likelihood of adopting an inactive state, and, we hypothesize, alter canonical signaling. Experimentally, we tested this by measuring the canonical TGF-β signaling pathway activation at two points; V419L significantly delayed SMAD2 phosphorylation by western blot and significantly decreased TGF-β-induced gene transcription by reporter assays consistent with known pathogenic variants in this gene. Thus, our results establish that the V419L variant leads to aberrant TGF-β signaling and confirm the diagnosis of Loeys–Dietz syndrome in this patient. Cold Spring Harbor Laboratory Press 2017-07 /pmc/articles/PMC5495030/ /pubmed/28679693 http://dx.doi.org/10.1101/mcs.a001727 Text en © 2017 Cousin et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution-NonCommercial License (http://creativecommons.org/licenses/by-nc/4.0/) , which permits reuse and redistribution, except for commercial purposes, provided that the original author and source are credited.
spellingShingle Research Article
Cousin, Margot A.
Zimmermann, Michael T.
Mathison, Angela J.
Blackburn, Patrick R.
Boczek, Nicole J.
Oliver, Gavin R.
Lomberk, Gwen A.
Urrutia, Raul A.
Deyle, David R.
Klee, Eric W.
Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling
title Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling
title_full Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling
title_fullStr Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling
title_full_unstemmed Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling
title_short Functional validation reveals the novel missense V419L variant in TGFBR2 associated with Loeys–Dietz syndrome (LDS) impairs canonical TGF-β signaling
title_sort functional validation reveals the novel missense v419l variant in tgfbr2 associated with loeys–dietz syndrome (lds) impairs canonical tgf-β signaling
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5495030/
https://www.ncbi.nlm.nih.gov/pubmed/28679693
http://dx.doi.org/10.1101/mcs.a001727
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