Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.

Animal models for cystic fibrosis (CF) have contributed significantly to our understanding of disease pathogenesis. Here we describe development and characterization of the first cystic fibrosis rat, in which the cystic fibrosis transmembrane conductance regulator gene (CFTR) was knocked out using a...

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發表在:PLoS ONE
Main Authors: Katherine L Tuggle, Susan E Birket, Xiaoxia Cui, Jeong Hong, Joe Warren, Lara Reid, Andre Chambers, Diana Ji, Kevin Gamber, Kengyeh K Chu, Guillermo Tearney, Li Ping Tang, James A Fortenberry, Ming Du, Joan M Cadillac, David M Bedwell, Steven M Rowe, Eric J Sorscher, Michelle V Fanucchi
格式: Article
語言:英语
出版: Public Library of Science (PLoS) 2014-01-01
在線閱讀:http://europepmc.org/articles/PMC3946746?pdf=render
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author Katherine L Tuggle
Susan E Birket
Xiaoxia Cui
Jeong Hong
Joe Warren
Lara Reid
Andre Chambers
Diana Ji
Kevin Gamber
Kengyeh K Chu
Guillermo Tearney
Li Ping Tang
James A Fortenberry
Ming Du
Joan M Cadillac
David M Bedwell
Steven M Rowe
Eric J Sorscher
Michelle V Fanucchi
author_facet Katherine L Tuggle
Susan E Birket
Xiaoxia Cui
Jeong Hong
Joe Warren
Lara Reid
Andre Chambers
Diana Ji
Kevin Gamber
Kengyeh K Chu
Guillermo Tearney
Li Ping Tang
James A Fortenberry
Ming Du
Joan M Cadillac
David M Bedwell
Steven M Rowe
Eric J Sorscher
Michelle V Fanucchi
author_sort Katherine L Tuggle
collection DOAJ
container_title PLoS ONE
description Animal models for cystic fibrosis (CF) have contributed significantly to our understanding of disease pathogenesis. Here we describe development and characterization of the first cystic fibrosis rat, in which the cystic fibrosis transmembrane conductance regulator gene (CFTR) was knocked out using a pair of zinc finger endonucleases (ZFN). The disrupted Cftr gene carries a 16 base pair deletion in exon 3, resulting in loss of CFTR protein expression. Breeding of heterozygous (CFTR+/-) rats resulted in Mendelian distribution of wild-type, heterozygous, and homozygous (CFTR-/-) pups. Nasal potential difference and transepithelial short circuit current measurements established a robust CF bioelectric phenotype, similar in many respects to that seen in CF patients. Young CFTR-/- rats exhibited histological abnormalities in the ileum and increased intracellular mucus in the proximal nasal septa. By six weeks of age, CFTR-/- males lacked the vas deferens bilaterally. Airway surface liquid and periciliary liquid depth were reduced, and submucosal gland size was abnormal in CFTR-/- animals. Use of ZFN based gene disruption successfully generated a CF animal model that recapitulates many aspects of human disease, and may be useful for modeling other CF genotypes, including CFTR processing defects, premature truncation alleles, and channel gating abnormalities.
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spelling doaj-art-cda01f9339b140bb92a4e09c988812c82025-08-19T20:46:52ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0193e9125310.1371/journal.pone.0091253Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.Katherine L TuggleSusan E BirketXiaoxia CuiJeong HongJoe WarrenLara ReidAndre ChambersDiana JiKevin GamberKengyeh K ChuGuillermo TearneyLi Ping TangJames A FortenberryMing DuJoan M CadillacDavid M BedwellSteven M RoweEric J SorscherMichelle V FanucchiAnimal models for cystic fibrosis (CF) have contributed significantly to our understanding of disease pathogenesis. Here we describe development and characterization of the first cystic fibrosis rat, in which the cystic fibrosis transmembrane conductance regulator gene (CFTR) was knocked out using a pair of zinc finger endonucleases (ZFN). The disrupted Cftr gene carries a 16 base pair deletion in exon 3, resulting in loss of CFTR protein expression. Breeding of heterozygous (CFTR+/-) rats resulted in Mendelian distribution of wild-type, heterozygous, and homozygous (CFTR-/-) pups. Nasal potential difference and transepithelial short circuit current measurements established a robust CF bioelectric phenotype, similar in many respects to that seen in CF patients. Young CFTR-/- rats exhibited histological abnormalities in the ileum and increased intracellular mucus in the proximal nasal septa. By six weeks of age, CFTR-/- males lacked the vas deferens bilaterally. Airway surface liquid and periciliary liquid depth were reduced, and submucosal gland size was abnormal in CFTR-/- animals. Use of ZFN based gene disruption successfully generated a CF animal model that recapitulates many aspects of human disease, and may be useful for modeling other CF genotypes, including CFTR processing defects, premature truncation alleles, and channel gating abnormalities.http://europepmc.org/articles/PMC3946746?pdf=render
spellingShingle Katherine L Tuggle
Susan E Birket
Xiaoxia Cui
Jeong Hong
Joe Warren
Lara Reid
Andre Chambers
Diana Ji
Kevin Gamber
Kengyeh K Chu
Guillermo Tearney
Li Ping Tang
James A Fortenberry
Ming Du
Joan M Cadillac
David M Bedwell
Steven M Rowe
Eric J Sorscher
Michelle V Fanucchi
Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.
title Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.
title_full Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.
title_fullStr Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.
title_full_unstemmed Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.
title_short Characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator (CFTR)-knockout rats.
title_sort characterization of defects in ion transport and tissue development in cystic fibrosis transmembrane conductance regulator cftr knockout rats
url http://europepmc.org/articles/PMC3946746?pdf=render
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