Area of research
Endocrine and Autonomic Systems · Physiology
Research interest
Research focused on Endocrinology and Myogenin, with related work in Calorie, Psychological repression, Cell biology. Notable publications include 'When a calorie is not just a calorie: Diet quality and timing as mediators of metabolism and healthy aging', 'Circadian REV-ERBs repress E4bp4 to activate NAMPT-dependent NAD+ biosynthesis and sustain cardiac function', and 'MitoQ regulates redox-related noncoding RNAs to preserve mitochondrial network integrity in pressure-overload heart failure'.
When a calorie is not just a calorie: Diet quality and timing as mediators of metabolism and healthy aging
Novel Roles for the Transcriptional Repressor E4BP4 in Both Cardiac Physiology and Pathophysiology
Biomarkers of Stress and Inflammation in Children
Loss of Brain Angiogenesis Inhibitor-3 (BAI3) G-Protein Coupled Receptor in Mice Regulates Adaptive Thermogenesis by Enhancing Energy Expenditure
Cardiomyocyte-specific disruption of the circadian BMAL1–REV-ERBα/β regulatory network impacts distinct miRNA species in the murine heart
Circadian REV-ERBs repress E4bp4 to activate NAMPT-dependent NAD+ biosynthesis and sustain cardiac function
Branched chain amino acids selectively promote cardiac growth at the end of the awake period
Impact of obesity on day‐night differences in cardiac metabolism
Circadian rhythms in cardiac metabolic flexibility
MitoQ regulates redox-related noncoding RNAs to preserve mitochondrial network integrity in pressure-overload heart failure
Differential effects of REV-ERBα/β agonism on cardiac gene expression, metabolism, and contractile function in a mouse model of circadian disruption
Physiological and Molecular Mechanisms of Methionine Restriction
miR-210 expression is associated with methionine-induced differentiation of trout satellite cells
Dietary methionine restriction: Effects on glucose tolerance, lipid content and micro-RNA composition in the muscle of rainbow trout
Distribution of H3K27me3, H3K9me3, and H3K4me3 along autophagy-related genes highly expressed in starved zebrafish myotubes