The inward rectifier current (IK1) plays a role in the excitability properties of the cardiac cell. Loss of function in one of the genes (KCNJ2) underlying the channel protein (Kir2.1) in humans leads to Andersen's syndrome, characterized by dysmorphic features, paralysis and cardiac arrhythmias. Properties of ion channels depend on their three dimensional structure as well as by their interactions with accessory proteins. There is little information available on proteins that directly associate with Kir2.x channels, or how these proteins modify channel function in the heart. The scaffolding proteins, (SAP97, Veli and CASK) that target, cluster and regulate ion channels, have been shown to directly bind or are co localized with Kir2.x channels in the heart, with implications that are largely unknown. Our objective is to determine the protein-protein interactions involved in the regulation of Kir2.x channel function. Our main hypothesis is that SAP97, Veli and CASK interactions with Kir2.x channels results in modification of channel biophysics, regulation, expression and subcellular targeting in the heart. We will use a combination of approaches including electrophysiological, surface plasmon resonance, biochemical and molecular biological techniques and carry out our studies in HEK293 cells and in isolated cardiac myocytes.
Specific Aims : 1) To investigate the molecular basis of changes in the biophysical properties of Kir2.x channels following co-expression with cardiac PDZ domain proteins. 2) To study the impact of interactions between Kir2.x channels and PDZ domain proteins on channel phosphorylation by PKA. 3) To determine the role of PDZ domain proteins on Kir2.x channel expression, localization and function in cardiac and non-cardiac cells. These studies should lead to a better understanding of the molecular properties that modulate the function of the classical cardiac inward rectifier current.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM076608-04
Application #
7690276
Study Section
Electrical Signaling, Ion Transport, and Arrhythmias Study Section (ESTA)
Program Officer
Shapiro, Bert I
Project Start
2007-09-01
Project End
2012-08-31
Budget Start
2009-09-01
Budget End
2010-08-31
Support Year
4
Fiscal Year
2009
Total Cost
$293,550
Indirect Cost
Name
University of Michigan Ann Arbor
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
073133571
City
Ann Arbor
State
MI
Country
United States
Zip Code
48109
O'Connell, Ryan P; Musa, Hassan; Gomez, Mario San Martin et al. (2015) Free Fatty Acid Effects on the Atrial Myocardium: Membrane Ionic Currents Are Remodeled by the Disruption of T-Tubular Architecture. PLoS One 10:e0133052
Vaidyanathan, Ravi; O'Connell, Ryan P; Deo, Makarand et al. (2013) The ionic bases of the action potential in isolated mouse cardiac Purkinje cell. Heart Rhythm 10:80-7
Musa, Hassan; Kaur, Kuljeet; O'Connell, Ryan et al. (2013) Inhibition of platelet-derived growth factor-AB signaling prevents electromechanical remodeling of adult atrial myocytes that contact myofibroblasts. Heart Rhythm 10:1044-51
Milstein, Michelle L; Musa, Hassan; Balbuena, Daniela Ponce et al. (2012) Dynamic reciprocity of sodium and potassium channel expression in a macromolecular complex controls cardiac excitability and arrhythmia. Proc Natl Acad Sci U S A 109:E2134-43
Pandit, Sandeep V; Kaur, Kuljeet; Zlochiver, Sharon et al. (2011) Left-to-right ventricular differences in I(KATP) underlie epicardial repolarization gradient during global ischemia. Heart Rhythm 8:1732-9
Anumonwo, Justus M B; Lopatin, Anatoli N (2010) Cardiac strong inward rectifier potassium channels. J Mol Cell Cardiol 48:45-54
Vaidyanathan, Ravi; Taffet, Steven M; Vikstrom, Karen L et al. (2010) Regulation of cardiac inward rectifier potassium current (I(K1)) by synapse-associated protein-97. J Biol Chem 285:28000-9
Grzeda, Krzysztof R; Anumonwo, Justus M B; O'Connell, Ryan et al. (2009) A single-cell model of phase-driven control of ventricular fibrillation frequency. Biophys J 96:2961-76
Vikstrom, Karen L; Vaidyanathan, Ravi; Levinsohn, Susan et al. (2009) SAP97 regulates Kir2.3 channels by multiple mechanisms. Am J Physiol Heart Circ Physiol 297:H1387-97
Anumonwo, Justus (2008) Antiarrhythmic benefits of targeting the Na+/Ca2+ exchanger. Heart Rhythm 5:1453-4