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D Brian Foster

Showing results (11-20 of 58) with videos related to

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ACS Omega|August 27, 2025
Inhibition of Cardiac p38 Highlights the Role of the Phosphoproteome in Heart Failure ProgressionSogol Sedighi, Ting Liu, Robert O'Meally, et al.
Frontiers in Physiology|May 15, 2015
Pseudo-acetylation of K326 and K328 of actin disrupts Drosophila melanogaster indirect flight muscle structure and performanceMeera C Viswanathan, Anna C Blice-Baum, William Schmidt, et al.
Circulation Research|October 11, 2003
C-terminal truncation of cardiac troponin I causes divergent effects on ATPase and force: implications for the pathophysiology of myocardial stunningD Brian Foster, Teruo Noguchi, Peter VanBuren, et al.
Biorxiv : the Preprint Server for Biology|November 28, 2024
Inhibition of Cardiac p38 Highlights the Role of the Phosphoproteome in Heart Failure ProgressionSogol Sedighi, Ting Liu, Robert O'Meally, et al.
Experimental & Molecular Medicine|September 15, 2019
Induced cardiac pacemaker cells survive metabolic stress owing to their low metabolic demandJin-Mo Gu, Sandra I Grijalva, Natasha Fernandez, et al.
The Journal of Biological Chemistry|October 1, 2004
Modes of caldesmon binding to actin: sites of caldesmon contact and modulation of interactions by phosphorylationD Brian Foster, Renjian Huang, Victoria Hatch, et al.
Circulation Research|August 6, 2011
Redox regulation of mitochondrial ATP synthase: implications for cardiac resynchronization therapySheng-Bing Wang, D Brian Foster, Jasma Rucker, et al.
American Journal of Physiology. Heart and Circulatory Physiology|February 11, 2025
Retinoic acid signaling and metabolism in heart failureLauren E Parker, Kyriakos N Papanicolaou, Stephanie Zalesak-Kravec, et al.
Blood|July 1, 2009
Miltenberger blood group antigen type III (Mi.III) enhances the expression of band 3Kate Hsu, Naiwen Chi, Marjan Gucek, et al.
Plos One|July 12, 2013
The cardiac acetyl-lysine proteomeD Brian Foster, Ting Liu, Jasma Rucker, et al.
Pageof 6

Showing results (11-20 of 58) with videos related to

Sort By:
Pageof 6
ACS Omega|August 27, 2025
Inhibition of Cardiac p38 Highlights the Role of the Phosphoproteome in Heart Failure ProgressionSogol Sedighi, Ting Liu, Robert O'Meally, et al.
Frontiers in Physiology|May 15, 2015
Pseudo-acetylation of K326 and K328 of actin disrupts Drosophila melanogaster indirect flight muscle structure and performanceMeera C Viswanathan, Anna C Blice-Baum, William Schmidt, et al.
Circulation Research|October 11, 2003
C-terminal truncation of cardiac troponin I causes divergent effects on ATPase and force: implications for the pathophysiology of myocardial stunningD Brian Foster, Teruo Noguchi, Peter VanBuren, et al.
Biorxiv : the Preprint Server for Biology|November 28, 2024
Inhibition of Cardiac p38 Highlights the Role of the Phosphoproteome in Heart Failure ProgressionSogol Sedighi, Ting Liu, Robert O'Meally, et al.
Experimental & Molecular Medicine|September 15, 2019
Induced cardiac pacemaker cells survive metabolic stress owing to their low metabolic demandJin-Mo Gu, Sandra I Grijalva, Natasha Fernandez, et al.
The Journal of Biological Chemistry|October 1, 2004
Modes of caldesmon binding to actin: sites of caldesmon contact and modulation of interactions by phosphorylationD Brian Foster, Renjian Huang, Victoria Hatch, et al.
Circulation Research|August 6, 2011
Redox regulation of mitochondrial ATP synthase: implications for cardiac resynchronization therapySheng-Bing Wang, D Brian Foster, Jasma Rucker, et al.
American Journal of Physiology. Heart and Circulatory Physiology|February 11, 2025
Retinoic acid signaling and metabolism in heart failureLauren E Parker, Kyriakos N Papanicolaou, Stephanie Zalesak-Kravec, et al.
Blood|July 1, 2009
Miltenberger blood group antigen type III (Mi.III) enhances the expression of band 3Kate Hsu, Naiwen Chi, Marjan Gucek, et al.
Plos One|July 12, 2013
The cardiac acetyl-lysine proteomeD Brian Foster, Ting Liu, Jasma Rucker, et al.
Pageof 6