Daniel G. Sadler
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Also affiliated: Duke University (2024–2026); University of Arkansas Medical Center (2023); Duke Medical Center (2024); Arkansas Children's Nutrition Center (2022–2026); Arkansas Children's Research Institute (2022–2026); Liverpool John Moores University (2021–2022)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Daniel G. Sadler's research investigates human and animal energetics, with a focus on metabolism, mitochondrial function, and physiological responses to environmental and lifestyle factors. His work has examined how housing temperature and dietary components like cocoa flavanols influence energy expenditure and thermogenic capacity in mice and humans. Sadler also studies the impact of parental fitness and maternal health on early life energetics and metabolic outcomes in offspring. His publications include investigations into endothelial cell responses to exercise-induced shear rates and the effects of specific compounds on reactive oxygen and nitrogen species production. Sadler collaborates with several researchers at the University of Arkansas for Medical Sciences, including Craig Porter, Lillie Treas, James D. Sikes, and Elisabet Børsheim.
Metrics
- h-index: 4
- Publications: 21
- Citations: 68
Selected Publications
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Inborn cardiorespiratory fitness and exercise training modulate brown adipose tissue function and plasticity in early life (2026)
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Carnitine deficiency alters fuel metabolism and voluntary wheel running in mice (2026)
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Mitochondrial respiratory function in human platelets: Influence of sample preparation, assay buffer, and instrumental platform (2025)
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Shared and distinct adaptations to early‐life exercise training based on inborn fitness (2025)
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Shared and distinct adaptations to early-life exercise training based on inborn fitness (2024)
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Protonophore treatment augments energy expenditure in mice housed at thermoneutrality (2024)
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Parental cardiorespiratory fitness influences early life energetics and metabolic health (2023)
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A modest change in housing temperature alters whole body energy expenditure and adipocyte thermogenic capacity in mice (2022)
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Housing Temperature Alters Energy Expenditure and Adipose Tissue Bioenergetics in Mice (2022)
Collaboration Network
Top Collaborators
- A modest change in housing temperature alters whole body energy expenditure and adipocyte thermogenic capacity in mice
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Protonophore treatment augments energy expenditure in mice housed at thermoneutrality
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Housing Temperature Alters Energy Expenditure and Adipose Tissue Bioenergetics in Mice
Showing 5 of 9 shared publications
- A modest change in housing temperature alters whole body energy expenditure and adipocyte thermogenic capacity in mice
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Protonophore treatment augments energy expenditure in mice housed at thermoneutrality
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Housing Temperature Alters Energy Expenditure and Adipose Tissue Bioenergetics in Mice
Showing 5 of 8 shared publications
- A modest change in housing temperature alters whole body energy expenditure and adipocyte thermogenic capacity in mice
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Protonophore treatment augments energy expenditure in mice housed at thermoneutrality
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
Showing 5 of 7 shared publications
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Mitochondrial respiratory function in human platelets: Influence of sample preparation, assay buffer, and instrumental platform
- Carnitine deficiency alters fuel metabolism and voluntary wheel running in mice
Showing 5 of 6 shared publications
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Inborn cardiorespiratory fitness and exercise training modulate brown adipose tissue function and plasticity in early life
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Inborn cardiorespiratory fitness and exercise training modulate brown adipose tissue function and plasticity in early life
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Shared and distinct adaptations to early‐life exercise training based on inborn fitness
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Carnitine deficiency alters fuel metabolism and voluntary wheel running in mice
- Inborn cardiorespiratory fitness and exercise training modulate brown adipose tissue function and plasticity in early life
- Parental cardiorespiratory fitness influences early life energetics and metabolic health
- Protonophore treatment augments energy expenditure in mice housed at thermoneutrality
- Shared and distinct adaptations to early-life exercise training based on inborn fitness
- Mitochondrial respiratory function in human platelets: Influence of sample preparation, assay buffer, and instrumental platform
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