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Iain Scott

Showing results (41-50 of 74) with videos related to

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The Biochemical Journal|February 23, 2024
Cardiomyocyte-specific deletion of GCN5L1 reduces lysine acetylation and attenuates diastolic dysfunction in aged mice by improving cardiac fatty acid oxidationJackson E Stewart, Jenna M Crawford, William E Mullen, et al.
Scientific Reports|March 20, 2022
A resonant cavity system for exposing cell cultures to intense pulsed RF fieldsMasood Ur-Rehman, Yasir Alfadhl, Xiaodong Chen, et al.
Biorxiv : the Preprint Server for Biology|June 6, 2025
GCN5L1 inhibits pyruvate dehydrogenase phosphorylation during cardiac ischemia-reperfusion injuryParamesha Bugga, Michael W Stoner, Janet R Manning, et al.
The Biochemical Journal|April 22, 2016
α-Lipoic acid promotes α-tubulin hyperacetylation and blocks the turnover of mitochondria through mitophagyMichael W Stoner, Dharendra Thapa, Manling Zhang, et al.
Immunological Reviews|July 11, 2006
T-cell memory and recall responses to respiratory virus infectionsHirokazu Hikono, Jacob E Kohlmeier, Kenneth H Ely, et al.
FASEB Bioadvances|September 15, 2025
GCN5L1 Inhibits Pyruvate Dehydrogenase Phosphorylation During Cardiac Ischemia-Reperfusion InjuryParamesha Bugga, Michael W Stoner, Janet R Manning, et al.
Physiological Reports|April 30, 2019
Loss of GCN5L1 in cardiac cells limits mitochondrial respiratory capacity under hyperglycemic conditionsDharendra Thapa, Manling Zhang, Janet R Manning, et al.
American Journal of Physiology. Heart and Circulatory Physiology|May 21, 2017
Acetylation of mitochondrial proteins by GCN5L1 promotes enhanced fatty acid oxidation in the heartDharendra Thapa, Manling Zhang, Janet R Manning, et al.
The Biochemical Journal|May 30, 2019
Loss of GCN5L1 in cardiac cells disrupts glucose metabolism and promotes cell death via reduced Akt/mTORC2 signalingJanet R Manning, Dharendra Thapa, Manling Zhang, et al.
Redox Biology|June 18, 2018
Adropin regulates pyruvate dehydrogenase in cardiac cells via a novel GPCR-MAPK-PDK4 signaling pathwayDharendra Thapa, Michael W Stoner, Manling Zhang, et al.
Pageof 8

Showing results (41-50 of 74) with videos related to

Sort By:
Pageof 8
The Biochemical Journal|February 23, 2024
Cardiomyocyte-specific deletion of GCN5L1 reduces lysine acetylation and attenuates diastolic dysfunction in aged mice by improving cardiac fatty acid oxidationJackson E Stewart, Jenna M Crawford, William E Mullen, et al.
Scientific Reports|March 20, 2022
A resonant cavity system for exposing cell cultures to intense pulsed RF fieldsMasood Ur-Rehman, Yasir Alfadhl, Xiaodong Chen, et al.
Biorxiv : the Preprint Server for Biology|June 6, 2025
GCN5L1 inhibits pyruvate dehydrogenase phosphorylation during cardiac ischemia-reperfusion injuryParamesha Bugga, Michael W Stoner, Janet R Manning, et al.
The Biochemical Journal|April 22, 2016
α-Lipoic acid promotes α-tubulin hyperacetylation and blocks the turnover of mitochondria through mitophagyMichael W Stoner, Dharendra Thapa, Manling Zhang, et al.
Immunological Reviews|July 11, 2006
T-cell memory and recall responses to respiratory virus infectionsHirokazu Hikono, Jacob E Kohlmeier, Kenneth H Ely, et al.
FASEB Bioadvances|September 15, 2025
GCN5L1 Inhibits Pyruvate Dehydrogenase Phosphorylation During Cardiac Ischemia-Reperfusion InjuryParamesha Bugga, Michael W Stoner, Janet R Manning, et al.
Physiological Reports|April 30, 2019
Loss of GCN5L1 in cardiac cells limits mitochondrial respiratory capacity under hyperglycemic conditionsDharendra Thapa, Manling Zhang, Janet R Manning, et al.
American Journal of Physiology. Heart and Circulatory Physiology|May 21, 2017
Acetylation of mitochondrial proteins by GCN5L1 promotes enhanced fatty acid oxidation in the heartDharendra Thapa, Manling Zhang, Janet R Manning, et al.
The Biochemical Journal|May 30, 2019
Loss of GCN5L1 in cardiac cells disrupts glucose metabolism and promotes cell death via reduced Akt/mTORC2 signalingJanet R Manning, Dharendra Thapa, Manling Zhang, et al.
Redox Biology|June 18, 2018
Adropin regulates pyruvate dehydrogenase in cardiac cells via a novel GPCR-MAPK-PDK4 signaling pathwayDharendra Thapa, Michael W Stoner, Manling Zhang, et al.
Pageof 8