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Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis
CFTR is a dynamically regulated anion channel. Intracellular WNK1-SPAK activation causes CFTR to change permeability and conductance characteristics from a chloride-preferring to bicarbonate-preferring channel through unknown mechanisms. Two severe CFTR mutations (CFTR(sev)) cause complete loss of C...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2014
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4102440/ https://www.ncbi.nlm.nih.gov/pubmed/25033378 http://dx.doi.org/10.1371/journal.pgen.1004376 |
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author | LaRusch, Jessica Jung, Jinsei General, Ignacio J. Lewis, Michele D. Park, Hyun Woo Brand, Randall E. Gelrud, Andres Anderson, Michelle A. Banks, Peter A. Conwell, Darwin Lawrence, Christopher Romagnuolo, Joseph Baillie, John Alkaade, Samer Cote, Gregory Gardner, Timothy B. Amann, Stephen T. Slivka, Adam Sandhu, Bimaljit Aloe, Amy Kienholz, Michelle L. Yadav, Dhiraj Barmada, M. Michael Bahar, Ivet Lee, Min Goo Whitcomb, David C. |
author_facet | LaRusch, Jessica Jung, Jinsei General, Ignacio J. Lewis, Michele D. Park, Hyun Woo Brand, Randall E. Gelrud, Andres Anderson, Michelle A. Banks, Peter A. Conwell, Darwin Lawrence, Christopher Romagnuolo, Joseph Baillie, John Alkaade, Samer Cote, Gregory Gardner, Timothy B. Amann, Stephen T. Slivka, Adam Sandhu, Bimaljit Aloe, Amy Kienholz, Michelle L. Yadav, Dhiraj Barmada, M. Michael Bahar, Ivet Lee, Min Goo Whitcomb, David C. |
author_sort | LaRusch, Jessica |
collection | PubMed |
description | CFTR is a dynamically regulated anion channel. Intracellular WNK1-SPAK activation causes CFTR to change permeability and conductance characteristics from a chloride-preferring to bicarbonate-preferring channel through unknown mechanisms. Two severe CFTR mutations (CFTR(sev)) cause complete loss of CFTR function and result in cystic fibrosis (CF), a severe genetic disorder affecting sweat glands, nasal sinuses, lungs, pancreas, liver, intestines, and male reproductive system. We hypothesize that those CFTR mutations that disrupt the WNK1-SPAK activation mechanisms cause a selective, bicarbonate defect in channel function (CFTR(BD)) affecting organs that utilize CFTR for bicarbonate secretion (e.g. the pancreas, nasal sinus, vas deferens) but do not cause typical CF. To understand the structural and functional requirements of the CFTR bicarbonate-preferring channel, we (a) screened 984 well-phenotyped pancreatitis cases for candidate CFTR(BD) mutations from among 81 previously described CFTR variants; (b) conducted electrophysiology studies on clones of variants found in pancreatitis but not CF; (c) computationally constructed a new, complete structural model of CFTR for molecular dynamics simulation of wild-type and mutant variants; and (d) tested the newly defined CFTR(BD) variants for disease in non-pancreas organs utilizing CFTR for bicarbonate secretion. Nine variants (CFTR R74Q, R75Q, R117H, R170H, L967S, L997F, D1152H, S1235R, and D1270N) not associated with typical CF were associated with pancreatitis (OR 1.5, p = 0.002). Clones expressed in HEK 293T cells had normal chloride but not bicarbonate permeability and conductance with WNK1-SPAK activation. Molecular dynamics simulations suggest physical restriction of the CFTR channel and altered dynamic channel regulation. Comparing pancreatitis patients and controls, CFTR(BD) increased risk for rhinosinusitis (OR 2.3, p<0.005) and male infertility (OR 395, p<<0.0001). WNK1-SPAK pathway-activated increases in CFTR bicarbonate permeability are altered by CFTR(BD) variants through multiple mechanisms. CFTR(BD) variants are associated with clinically significant disorders of the pancreas, sinuses, and male reproductive system. |
format | Online Article Text |
id | pubmed-4102440 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-41024402014-07-21 Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis LaRusch, Jessica Jung, Jinsei General, Ignacio J. Lewis, Michele D. Park, Hyun Woo Brand, Randall E. Gelrud, Andres Anderson, Michelle A. Banks, Peter A. Conwell, Darwin Lawrence, Christopher Romagnuolo, Joseph Baillie, John Alkaade, Samer Cote, Gregory Gardner, Timothy B. Amann, Stephen T. Slivka, Adam Sandhu, Bimaljit Aloe, Amy Kienholz, Michelle L. Yadav, Dhiraj Barmada, M. Michael Bahar, Ivet Lee, Min Goo Whitcomb, David C. PLoS Genet Research Article CFTR is a dynamically regulated anion channel. Intracellular WNK1-SPAK activation causes CFTR to change permeability and conductance characteristics from a chloride-preferring to bicarbonate-preferring channel through unknown mechanisms. Two severe CFTR mutations (CFTR(sev)) cause complete loss of CFTR function and result in cystic fibrosis (CF), a severe genetic disorder affecting sweat glands, nasal sinuses, lungs, pancreas, liver, intestines, and male reproductive system. We hypothesize that those CFTR mutations that disrupt the WNK1-SPAK activation mechanisms cause a selective, bicarbonate defect in channel function (CFTR(BD)) affecting organs that utilize CFTR for bicarbonate secretion (e.g. the pancreas, nasal sinus, vas deferens) but do not cause typical CF. To understand the structural and functional requirements of the CFTR bicarbonate-preferring channel, we (a) screened 984 well-phenotyped pancreatitis cases for candidate CFTR(BD) mutations from among 81 previously described CFTR variants; (b) conducted electrophysiology studies on clones of variants found in pancreatitis but not CF; (c) computationally constructed a new, complete structural model of CFTR for molecular dynamics simulation of wild-type and mutant variants; and (d) tested the newly defined CFTR(BD) variants for disease in non-pancreas organs utilizing CFTR for bicarbonate secretion. Nine variants (CFTR R74Q, R75Q, R117H, R170H, L967S, L997F, D1152H, S1235R, and D1270N) not associated with typical CF were associated with pancreatitis (OR 1.5, p = 0.002). Clones expressed in HEK 293T cells had normal chloride but not bicarbonate permeability and conductance with WNK1-SPAK activation. Molecular dynamics simulations suggest physical restriction of the CFTR channel and altered dynamic channel regulation. Comparing pancreatitis patients and controls, CFTR(BD) increased risk for rhinosinusitis (OR 2.3, p<0.005) and male infertility (OR 395, p<<0.0001). WNK1-SPAK pathway-activated increases in CFTR bicarbonate permeability are altered by CFTR(BD) variants through multiple mechanisms. CFTR(BD) variants are associated with clinically significant disorders of the pancreas, sinuses, and male reproductive system. Public Library of Science 2014-07-17 /pmc/articles/PMC4102440/ /pubmed/25033378 http://dx.doi.org/10.1371/journal.pgen.1004376 Text en © 2014 Whitcomb et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article LaRusch, Jessica Jung, Jinsei General, Ignacio J. Lewis, Michele D. Park, Hyun Woo Brand, Randall E. Gelrud, Andres Anderson, Michelle A. Banks, Peter A. Conwell, Darwin Lawrence, Christopher Romagnuolo, Joseph Baillie, John Alkaade, Samer Cote, Gregory Gardner, Timothy B. Amann, Stephen T. Slivka, Adam Sandhu, Bimaljit Aloe, Amy Kienholz, Michelle L. Yadav, Dhiraj Barmada, M. Michael Bahar, Ivet Lee, Min Goo Whitcomb, David C. Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis |
title | Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis |
title_full | Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis |
title_fullStr | Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis |
title_full_unstemmed | Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis |
title_short | Mechanisms of CFTR Functional Variants That Impair Regulated Bicarbonate Permeation and Increase Risk for Pancreatitis but Not for Cystic Fibrosis |
title_sort | mechanisms of cftr functional variants that impair regulated bicarbonate permeation and increase risk for pancreatitis but not for cystic fibrosis |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4102440/ https://www.ncbi.nlm.nih.gov/pubmed/25033378 http://dx.doi.org/10.1371/journal.pgen.1004376 |
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