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Philip Eaton

Showing results (41-50 of 110) with videos related to

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Journal of Molecular and Cellular Cardiology|November 15, 2002
Glyceraldehyde phosphate dehydrogenase oxidation during cardiac ischemia and reperfusionPhilip Eaton, Neville Wright, David J Hearse, et al.
Redox Biology|October 4, 2021
Cysteine trisulfide oxidizes protein thiols and induces electrophilic stress in human cellsChristopher H Switzer, Sebastian Guttzeit, Thomas R Eykyn, et al.
FASEB Journal : Official Publication of the Federation of American Societies for Experimental Biology|November 5, 2003
Ischemia-induced phosphorylation of phospholemman directly activates rat cardiac Na/K-ATPaseWilliam Fuller, Philip Eaton, James R Bell, et al.
Hypertension (Dallas, Tex. : 1979)|July 19, 2017
Proof of Principle for a Novel Class of Antihypertensives That Target the Oxidative Activation of PKG Iα (Protein Kinase G Iα)Joseph R Burgoyne, Oleksandra Prysyazhna, Daniel A Richards, et al.
Antioxidants & Redox Signaling|August 8, 2012
Hydrogen peroxide sensing and signaling by protein kinases in the cardiovascular systemJoseph R Burgoyne, Shin-ichi Oka, Niloofar Ale-Agha, et al.
Antioxidants & Redox Signaling|July 7, 2005
Ischemic preconditioning: a potential role for protein S-thiolation?Philip Eaton, Robert M Bell, Alison C Cave, et al.
Circulation Research|October 2, 2012
Redox signaling in cardiac physiology and pathologyJoseph R Burgoyne, Héloïse Mongue-Din, Philip Eaton, et al.
Cardiovascular Research|March 26, 2003
Cardiac ischemia causes inhibition of the Na/K ATPase by a labile cytosolic compound whose production is linked to oxidant stressWilliam Fuller, Vina Parmar, Philip Eaton, et al.
The Journal of Biological Chemistry|June 26, 2016
Phosphodiesterase 5 Inhibition Limits Doxorubicin-induced Heart Failure by Attenuating Protein Kinase G Iα OxidationOleksandra Prysyazhna, Joseph Robert Burgoyne, Jenna Scotcher, et al.
The American Journal of Medicine|October 18, 2025
A new paradigm to reduce cardiovascular disease based on the pathogenesis of atherosclerosisDavid S Schade, James C Blankenship, Kristen Gonzales, et al.
Pageof 11

Showing results (41-50 of 110) with videos related to

Sort By:
Pageof 11
Journal of Molecular and Cellular Cardiology|November 15, 2002
Glyceraldehyde phosphate dehydrogenase oxidation during cardiac ischemia and reperfusionPhilip Eaton, Neville Wright, David J Hearse, et al.
Redox Biology|October 4, 2021
Cysteine trisulfide oxidizes protein thiols and induces electrophilic stress in human cellsChristopher H Switzer, Sebastian Guttzeit, Thomas R Eykyn, et al.
FASEB Journal : Official Publication of the Federation of American Societies for Experimental Biology|November 5, 2003
Ischemia-induced phosphorylation of phospholemman directly activates rat cardiac Na/K-ATPaseWilliam Fuller, Philip Eaton, James R Bell, et al.
Hypertension (Dallas, Tex. : 1979)|July 19, 2017
Proof of Principle for a Novel Class of Antihypertensives That Target the Oxidative Activation of PKG Iα (Protein Kinase G Iα)Joseph R Burgoyne, Oleksandra Prysyazhna, Daniel A Richards, et al.
Antioxidants & Redox Signaling|August 8, 2012
Hydrogen peroxide sensing and signaling by protein kinases in the cardiovascular systemJoseph R Burgoyne, Shin-ichi Oka, Niloofar Ale-Agha, et al.
Antioxidants & Redox Signaling|July 7, 2005
Ischemic preconditioning: a potential role for protein S-thiolation?Philip Eaton, Robert M Bell, Alison C Cave, et al.
Circulation Research|October 2, 2012
Redox signaling in cardiac physiology and pathologyJoseph R Burgoyne, Héloïse Mongue-Din, Philip Eaton, et al.
Cardiovascular Research|March 26, 2003
Cardiac ischemia causes inhibition of the Na/K ATPase by a labile cytosolic compound whose production is linked to oxidant stressWilliam Fuller, Vina Parmar, Philip Eaton, et al.
The Journal of Biological Chemistry|June 26, 2016
Phosphodiesterase 5 Inhibition Limits Doxorubicin-induced Heart Failure by Attenuating Protein Kinase G Iα OxidationOleksandra Prysyazhna, Joseph Robert Burgoyne, Jenna Scotcher, et al.
The American Journal of Medicine|October 18, 2025
A new paradigm to reduce cardiovascular disease based on the pathogenesis of atherosclerosisDavid S Schade, James C Blankenship, Kristen Gonzales, et al.
Pageof 11