Our long-term goals are: a) to characterize the molecular mechanisms of cardiac gap junction regulation and? b) to identify the consequences of the regulation on the function of the heart. Our previous studies have? centered on the structural bases for the regulation of Connexin43 (Cx43), the most abundant cardiac gap? junction protein. Using exogenous expression systems, we have shown that the carboxyl terminal region of? Cx43 (Cx43CT) acts as a regulatory domain. Here, we propose that: a) the integrity of the Cx43CT domain? is essential for the regulation of native cardiac gap junctions and b) this regulation plays a key role in specific? morphological and electrophysiological changes that follow the ischemic event.? Studies on cardiac gap junction regulation have been hindered by the lack of an appropriate experimental? model where the function of the Cx43CT domain can be directly and specifically altered. Recently, the? Willecke laboratory developed a """"""""knock-out/knock-in"""""""" mouse line where the gene coding for the wild-type? Cx43 was replaced with a truncated form that lacks most of the CT domain. These mice present us with the? first biological system to document directly the role of Cx43CT domain on: 1) The biophysical properties and? pH gating of cardiac gap junctions. 2) The internalization of Cx43 in response to low intracellular pH (pHi) or? global ischemia. 3) The electrophysiological behavior of adult murine ventricle in response to low pHi and? ischemia.? Overall, these studies will offer data fundamental to our understanding of the molecular mechanisms of? regulation of cardiac gap junctions and their role in heart function in health and disease.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program Projects (P01)
Project #
7P01HL039707-18
Application #
7691297
Study Section
Heart, Lung, and Blood Initial Review Group (HLBP)
Project Start
Project End
Budget Start
2008-09-01
Budget End
2009-08-31
Support Year
18
Fiscal Year
2008
Total Cost
$391,165
Indirect Cost
Name
University of Michigan Ann Arbor
Department
Type
DUNS #
073133571
City
Ann Arbor
State
MI
Country
United States
Zip Code
48109
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Takemoto, Yoshio; Ramirez, Rafael J; Yokokawa, Miki et al. (2016) Galectin-3 Regulates Atrial Fibrillation Remodeling and Predicts Catheter Ablation Outcomes. JACC Basic Transl Sci 1:143-154
Filgueiras-Rama, David; Jalife, José (2016) STRUCTURAL AND FUNCTIONAL BASES OF CARDIAC FIBRILLATION. DIFFERENCES AND SIMILARITIES BETWEEN ATRIA AND VENTRICLES. JACC Clin Electrophysiol 2:1-3
Pedrón-Torrecilla, Jorge; Rodrigo, Miguel; Climent, Andreu M et al. (2016) Noninvasive Estimation of Epicardial Dominant High-Frequency Regions During Atrial Fibrillation. J Cardiovasc Electrophysiol 27:435-42

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