Literature DB >> 21411740

The ΔF508 mutation causes CFTR misprocessing and cystic fibrosis-like disease in pigs.

Lynda S Ostedgaard1, David K Meyerholz, Jeng-Haur Chen, Alejandro A Pezzulo, Philip H Karp, Tatiana Rokhlina, Sarah E Ernst, Robert A Hanfland, Leah R Reznikov, Paula S Ludwig, Mark P Rogan, Greg J Davis, Cassie L Dohrn, Christine Wohlford-Lenane, Peter J Taft, Michael V Rector, Emma Hornick, Boulos S Nassar, Melissa Samuel, Yuping Zhang, Sandra S Richter, Aliye Uc, Joel Shilyansky, Randall S Prather, Paul B McCray, Joseph Zabner, Michael J Welsh, David A Stoltz.   

Abstract

Cystic fibrosis (CF) is an autosomal recessive disease caused by mutations in the gene encoding the cystic fibrosis transmembrane conductance regulator (CFTR) anion channel. The most common CF-associated mutation is ΔF508, which deletes a phenylalanine in position 508. In vitro studies indicate that the resultant protein, CFTR-ΔF508, is misprocessed, although the in vivo consequences of this mutation remain uncertain. To better understand the effects of the ΔF508 mutation in vivo, we produced CFTR(ΔF508/ΔF508) pigs. Our biochemical, immunocytochemical, and electrophysiological data on CFTR-ΔF508 in newborn pigs paralleled in vitro predictions. They also indicated that CFTR(ΔF508/ΔF508) airway epithelia retain a small residual CFTR conductance, with maximal stimulation producing ~6% of wild-type function. Cyclic adenosine 3',5'-monophosphate (cAMP) agonists were less potent at stimulating current in CFTR(Δ)(F508/)(Δ)(F508) epithelia, suggesting that quantitative tests of maximal anion current may overestimate transport under physiological conditions. Despite residual CFTR function, four older CFTR(ΔF508/ΔF508) pigs developed lung disease similar to human CF. These results suggest that this limited CFTR activity is insufficient to prevent lung or gastrointestinal disease in CF pigs. These data also suggest that studies of recombinant CFTR-ΔF508 misprocessing predict in vivo behavior, which validates its use in biochemical and drug discovery experiments. These findings help elucidate the molecular pathogenesis of the common CF mutation and will guide strategies for developing new therapeutics.

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Year:  2011        PMID: 21411740      PMCID: PMC3119077          DOI: 10.1126/scitranslmed.3001868

Source DB:  PubMed          Journal:  Sci Transl Med        ISSN: 1946-6234            Impact factor:   17.956


  48 in total

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3.  Rescue of DeltaF508-CFTR trafficking and gating in human cystic fibrosis airway primary cultures by small molecules.

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Journal:  Nat Genet       Date:  1992-11       Impact factor: 38.330

7.  Efficient intracellular processing of the endogenous cystic fibrosis transmembrane conductance regulator in epithelial cell lines.

Authors:  Károly Varga; Asta Jurkuvenaite; John Wakefield; Jeong S Hong; Jennifer S Guimbellot; Charles J Venglarik; Ashutosh Niraj; Marina Mazur; Eric J Sorscher; James F Collawn; Zsuzsa Bebök
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10.  Cystic fibrosis pigs develop lung disease and exhibit defective bacterial eradication at birth.

Authors:  David A Stoltz; David K Meyerholz; Alejandro A Pezzulo; Shyam Ramachandran; Mark P Rogan; Greg J Davis; Robert A Hanfland; Chris Wohlford-Lenane; Cassie L Dohrn; Jennifer A Bartlett; George A Nelson; Eugene H Chang; Peter J Taft; Paula S Ludwig; Mira Estin; Emma E Hornick; Janice L Launspach; Melissa Samuel; Tatiana Rokhlina; Philip H Karp; Lynda S Ostedgaard; Aliye Uc; Timothy D Starner; Alexander R Horswill; Kim A Brogden; Randall S Prather; Sandra S Richter; Joel Shilyansky; Paul B McCray; Joseph Zabner; Michael J Welsh
Journal:  Sci Transl Med       Date:  2010-04-28       Impact factor: 17.956

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  117 in total

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6.  AJRCCM: 100-Year Anniversary. Progress along the Pathway of Discovery Leading to Treatment and Cure of Cystic Fibrosis.

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Authors:  Lynda S Ostedgaard; Thomas O Moninger; James D McMenimen; Nicholas M Sawin; Connor P Parker; Ian M Thornell; Linda S Powers; Nicholas D Gansemer; Drake C Bouzek; Daniel P Cook; David K Meyerholz; Mahmoud H Abou Alaiwa; David A Stoltz; Michael J Welsh
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8.  Acidic Submucosal Gland pH and Elevated Protein Concentration Produce Abnormal Cystic Fibrosis Mucus.

Authors:  Yuliang Xie; Lin Lu; Xiao Xiao Tang; Thomas O Moninger; Tony Jun Huang; David A Stoltz; Michael J Welsh
Journal:  Dev Cell       Date:  2020-07-29       Impact factor: 12.270

Review 9.  Animal models for cystic fibrosis liver disease (CFLD).

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10.  Genetically modified species in research: Opportunities and challenges for the histology core laboratory.

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