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Recapitulating and Correcting Marfan Syndrome in a Cellular Model

Marfan syndrome (MFS) is a connective tissue disorder caused by mutations in FBN1 gene, which encodes a key extracellular matrix protein FIBRILLIN-1. The haplosufficiency of FBN1 has been implicated in pathogenesis of MFS with manifestations primarily in cardiovascular, muscular, and ocular tissues....

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Autores principales: Park, Jung Woo, Yan, Li, Stoddard, Chris, Wang, Xiaofang, Yue, Zhichao, Crandall, Leann, Robinson, Tiwanna, Chang, Yuxiao, Denton, Kyle, Li, Enqin, Jiang, Bin, Zhang, Zhenwu, Martins-Taylor, Kristen, Yee, Siu-Pok, Nie, Hong, Gu, Feng, Si, Wei, Xie, Ting, Yue, Lixia, Xu, Ren-He
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5441176/
https://www.ncbi.nlm.nih.gov/pubmed/28539832
http://dx.doi.org/10.7150/ijbs.19517
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author Park, Jung Woo
Yan, Li
Stoddard, Chris
Wang, Xiaofang
Yue, Zhichao
Crandall, Leann
Robinson, Tiwanna
Chang, Yuxiao
Denton, Kyle
Li, Enqin
Jiang, Bin
Zhang, Zhenwu
Martins-Taylor, Kristen
Yee, Siu-Pok
Nie, Hong
Gu, Feng
Si, Wei
Xie, Ting
Yue, Lixia
Xu, Ren-He
author_facet Park, Jung Woo
Yan, Li
Stoddard, Chris
Wang, Xiaofang
Yue, Zhichao
Crandall, Leann
Robinson, Tiwanna
Chang, Yuxiao
Denton, Kyle
Li, Enqin
Jiang, Bin
Zhang, Zhenwu
Martins-Taylor, Kristen
Yee, Siu-Pok
Nie, Hong
Gu, Feng
Si, Wei
Xie, Ting
Yue, Lixia
Xu, Ren-He
author_sort Park, Jung Woo
collection PubMed
description Marfan syndrome (MFS) is a connective tissue disorder caused by mutations in FBN1 gene, which encodes a key extracellular matrix protein FIBRILLIN-1. The haplosufficiency of FBN1 has been implicated in pathogenesis of MFS with manifestations primarily in cardiovascular, muscular, and ocular tissues. Due to limitations in animal models to study the late-onset diseases, human pluripotent stem cells (PSCs) offer a homogeneic tool for dissection of cellular and molecular pathogenic mechanism for MFS in vitro. Here, we first derived induced PSCs (iPSCs) from a MFS patient with a FBN1 mutation and corrected the mutation, thereby generating an isogenic “gain-of-function” control cells for the parental MFS iPSCs. Reversely, we knocked out FBN1 in both alleles in a wild-type (WT) human embryonic stem cell (ESC) line, which served as a loss-of-function model for MFS with the WT cells as an isogenic control. Mesenchymal stem cells derived from both FBN1-mutant iPSCs and -ESCs demonstrated reduced osteogenic differentiation and microfibril formation. We further demonstrated that vascular smooth muscle cells derived from FBN1-mutant iPSCs showed less sensitivity to carbachol as demonstrated by contractility and Ca(2+) influx assay, compared to the isogenic controls cells. These findings were further supported by transcriptomic anaylsis of the cells. Therefore, this study based on both gain- and loss-of-function approaches confirmed the pathogenetic role of FBN1 mutations in these MFS-related phenotypic changes.
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spelling pubmed-54411762017-05-24 Recapitulating and Correcting Marfan Syndrome in a Cellular Model Park, Jung Woo Yan, Li Stoddard, Chris Wang, Xiaofang Yue, Zhichao Crandall, Leann Robinson, Tiwanna Chang, Yuxiao Denton, Kyle Li, Enqin Jiang, Bin Zhang, Zhenwu Martins-Taylor, Kristen Yee, Siu-Pok Nie, Hong Gu, Feng Si, Wei Xie, Ting Yue, Lixia Xu, Ren-He Int J Biol Sci Research Paper Marfan syndrome (MFS) is a connective tissue disorder caused by mutations in FBN1 gene, which encodes a key extracellular matrix protein FIBRILLIN-1. The haplosufficiency of FBN1 has been implicated in pathogenesis of MFS with manifestations primarily in cardiovascular, muscular, and ocular tissues. Due to limitations in animal models to study the late-onset diseases, human pluripotent stem cells (PSCs) offer a homogeneic tool for dissection of cellular and molecular pathogenic mechanism for MFS in vitro. Here, we first derived induced PSCs (iPSCs) from a MFS patient with a FBN1 mutation and corrected the mutation, thereby generating an isogenic “gain-of-function” control cells for the parental MFS iPSCs. Reversely, we knocked out FBN1 in both alleles in a wild-type (WT) human embryonic stem cell (ESC) line, which served as a loss-of-function model for MFS with the WT cells as an isogenic control. Mesenchymal stem cells derived from both FBN1-mutant iPSCs and -ESCs demonstrated reduced osteogenic differentiation and microfibril formation. We further demonstrated that vascular smooth muscle cells derived from FBN1-mutant iPSCs showed less sensitivity to carbachol as demonstrated by contractility and Ca(2+) influx assay, compared to the isogenic controls cells. These findings were further supported by transcriptomic anaylsis of the cells. Therefore, this study based on both gain- and loss-of-function approaches confirmed the pathogenetic role of FBN1 mutations in these MFS-related phenotypic changes. Ivyspring International Publisher 2017-04-10 /pmc/articles/PMC5441176/ /pubmed/28539832 http://dx.doi.org/10.7150/ijbs.19517 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Park, Jung Woo
Yan, Li
Stoddard, Chris
Wang, Xiaofang
Yue, Zhichao
Crandall, Leann
Robinson, Tiwanna
Chang, Yuxiao
Denton, Kyle
Li, Enqin
Jiang, Bin
Zhang, Zhenwu
Martins-Taylor, Kristen
Yee, Siu-Pok
Nie, Hong
Gu, Feng
Si, Wei
Xie, Ting
Yue, Lixia
Xu, Ren-He
Recapitulating and Correcting Marfan Syndrome in a Cellular Model
title Recapitulating and Correcting Marfan Syndrome in a Cellular Model
title_full Recapitulating and Correcting Marfan Syndrome in a Cellular Model
title_fullStr Recapitulating and Correcting Marfan Syndrome in a Cellular Model
title_full_unstemmed Recapitulating and Correcting Marfan Syndrome in a Cellular Model
title_short Recapitulating and Correcting Marfan Syndrome in a Cellular Model
title_sort recapitulating and correcting marfan syndrome in a cellular model
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5441176/
https://www.ncbi.nlm.nih.gov/pubmed/28539832
http://dx.doi.org/10.7150/ijbs.19517
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