Knockdown of the intercalated disc protein Tmem65 in mouse cardiomyocytes significantly reduced electrical conduction velocity to 7.3 cm/s compared to 26.3 cm/s in scrambled controls.
Tmem65 is a novel intercalated disc protein essential for proper localization and function of connexin 43, regulating cardiac electrical coupling and conduction.
Absolute Event Rate: 7.3% vs 26.3%
p-value: p=<0.05
Membrane proteins are crucial to heart function and development. Here we combine cationic silica-bead coating with shotgun proteomics to enrich for and identify plasma membrane-associated proteins from primary mouse neonatal and human fetal ventricular cardiomyocytes. We identify Tmem65 as a cardiac-enriched, intercalated disc protein that increases during development in both mouse and human hearts. Functional analysis of Tmem65 both in vitro using lentiviral shRNA-mediated knockdown in mouse cardiomyocytes and in vivo using morpholino-based knockdown in zebrafish show marked alterations in gap junction function and cardiac morphology. Molecular analyses suggest that Tmem65 interaction with connexin 43 (Cx43) is required for correct localization of Cx43 to the intercalated disc, since Tmem65 deletion results in marked internalization of Cx43, a shorter half-life through increased degradation, and loss of Cx43 function. Our data demonstrate that the membrane protein Tmem65 is an intercalated disc protein that interacts with and functionally regulates ventricular Cx43. Mechanical and electrical activity in the heart is propagated through unique cardiomyocyte membrane structures, the intercalated discs (ID). Sharma et al.identify a novel ID protein, Tmem65, that controls Ca2+ signalling and electrical coupling by interacting with and functionally regulating the gap junction protein Cx43.
Sharma et al. (2015) studied Cardiac conduction and connexin 43 function. Tmem65 knockdown vs. Scrambled control was evaluated on Electrical conduction velocity (cm/s) (p=<0.05). Knockdown of the intercalated disc protein Tmem65 in mouse cardiomyocytes significantly reduced electrical conduction velocity to 7.3 cm/s compared to 26.3 cm/s in scrambled controls.