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Methods in Enzymology|June 8, 2006
Analyses of Rem/RGK signaling and biological activityDouglas A Andres, Shawn M Crump, Robert N Correll, et al.Cardiovascular Research|November 13, 2004
Divergent action potential morphologies reveal nonequilibrium properties of human cardiac Na channelsJános Magyar, Carmen E Kiper, Robert Dumaine, et al.Cellular Signalling|December 11, 2007
Analysis of the Rem2 - voltage dependant calcium channel beta subunit interaction and Rem2 interaction with phosphorylated phosphatidylinositide lipidsRobert N Correll, Gregory J Botzet, Jonathan Satin, et al.Toxicology and Applied Pharmacology|September 3, 2020
Heart slice culture system reliably demonstrates clinical drug-related cardiotoxicityJessica M Miller, Moustafa H Meki, Qinghui Ou, et al.The Journal of Biological Chemistry|August 10, 2007
Plasma membrane targeting is essential for Rem-mediated Ca2+ channel inhibitionRobert N Correll, Chunyan Pang, Brian S Finlin, et al.American Journal of Physiology. Heart and Circulatory Physiology|September 16, 2015
Loss of Rad-GTPase produces a novel adaptive cardiac phenotype resistant to systolic decline with agingJanet R Manning, Catherine N Withers, Bryana Levitan, et al.The Journal of Biological Chemistry|June 23, 2006
Analysis of the complex between Ca2+ channel beta-subunit and the Rem GTPaseBrian S Finlin, Robert N Correll, Chunyan Pang, et al.Stem Cells and Development|May 31, 2008
In vitro electrophysiological drug testing using human embryonic stem cell derived cardiomyocytesOren Caspi, Ilanit Itzhaki, Izhak Kehat, et al.Cell Calcium|February 21, 2009
Steady-state coupling of plasma membrane calcium entry to extrusion revealed by novel L-type calcium channel blockWilliam C Lester, Elizabeth A Schroder, Don E Burgess, et al.Channels (Austin, Tex.)|May 12, 2010
Rem GTPase interacts with the proximal CaV1.2 C-terminus and modulates calcium-dependent channel inactivationChunyan Pang, Shawn M Crump, Ling Jin, et al.Pageof 5