Fluid secretion provides a critical distending pressure necessary for fetal lung growth and differentiation. This laboratory first demonstrated that ClC-2, like CFTR, is highly expressed in rabbit fetal airway epithelia and even more rapidly down regulated. The goal of this proposal is to elucidate the mechanism by which the ClC-2 fetal lung chloride channel is highly expressed in fetal airway epithelia and then down-regulated in lung at birth, and to compare this regulation with that of the CFTR. The hypothesis is that ClC-2 gene expression is controlled by perinatal regulation of specific nuclear transcription factors. We have preliminary data indicating a key role for the SP-1 family and the TTF-1 (thyroid transcription factor).
Aim 1 is to identify the ClC-2 promoter elements that drive or inhibit gene expression using a combination of promoter-luciferase assays, DNA foot printing, and mutation analyses.
Aim 2 is to study the perinatal regulation of ClC-2 by SP-1 (and other transcription factors). Two important regulators of SP-1 activity, phosphorylation/dephosphorylation and butyrate stimulation of expression, will be a focus of these studies.
Aim 3 is to study ClC-2 dependent chloride transport under conditions designed to upregulate or down-regulate ClC-2 gene expression. In this section, we will utilize Ussing Chamber models of polarized distal rat lung epithelial cells treated to upregulate SP-I/SP-3 or TTF-I. This refocused proposal should provide important new information with regard to perinatal chloride channel regulation in the lung and fuel thinking into the design of future therapies for pulmonary hypoplasia, cystic fibrosis, and related airway diseases thought to result from inadequate airway hydration or fluid pressure.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL059410-02
Application #
6389789
Study Section
Special Emphasis Panel (ZRG1-ALTX-1 (01))
Program Officer
Berberich, Mary Anne
Project Start
2000-09-01
Project End
2003-08-31
Budget Start
2001-09-01
Budget End
2002-08-31
Support Year
2
Fiscal Year
2001
Total Cost
$286,125
Indirect Cost
Name
Johns Hopkins University
Department
Pediatrics
Type
Schools of Medicine
DUNS #
045911138
City
Baltimore
State
MD
Country
United States
Zip Code
21218
Tran, Ian; Ji, Changhoon; Ni, Inzer et al. (2015) Role of Cigarette Smoke-Induced Aggresome Formation in Chronic Obstructive Pulmonary Disease-Emphysema Pathogenesis. Am J Respir Cell Mol Biol 53:159-73
Lee, Seakwoo; Henderson, Mark J; Schiffhauer, Eric et al. (2014) Interference with ubiquitination in CFTR modifies stability of core glycosylated and cell surface pools. Mol Cell Biol 34:2554-65
Schiffhauer, Eric S; Vij, Neeraj; Kovbasnjuk, Olga et al. (2013) Dual activation of CFTR and CLCN2 by lubiprostone in murine nasal epithelia. Am J Physiol Lung Cell Mol Physiol 304:L324-31
Henderson, Mark J; Singh, Om V; Zeitlin, Pamela L (2010) Applications of proteomic technologies for understanding the premature proteolysis of CFTR. Expert Rev Proteomics 7:473-86
Henderson, Mark J; Vij, Neeraj; Zeitlin, Pamela L (2010) Ubiquitin C-terminal hydrolase-L1 protects cystic fibrosis transmembrane conductance regulator from early stages of proteasomal degradation. J Biol Chem 285:11314-25
Vij, Neeraj; Mazur, Steven; Zeitlin, Pamela L (2009) CFTR is a negative regulator of NFkappaB mediated innate immune response. PLoS One 4:e4664
MacDonald, Kelvin D; McKenzie, Karen R; Henderson, Mark J et al. (2008) Lubiprostone activates non-CFTR-dependent respiratory epithelial chloride secretion in cystic fibrosis mice. Am J Physiol Lung Cell Mol Physiol 295:L933-40
Vij, Neeraj; Amoako, Martha O; Mazur, Steven et al. (2008) CHOP transcription factor mediates IL-8 signaling in cystic fibrosis bronchial epithelial cells. Am J Respir Cell Mol Biol 38:176-84
Zeitlin, Pamela L (2008) Cystic fibrosis and estrogens: a perfect storm. J Clin Invest 118:3841-4
Singh, Om V; Pollard, Harvey B; Zeitlin, Pamela L (2008) Chemical rescue of deltaF508-CFTR mimics genetic repair in cystic fibrosis bronchial epithelial cells. Mol Cell Proteomics 7:1099-110

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