← back to search

Christopher G. Vann

Duke University · US
Area of research
Cell Biology · Orthopedics and Sports Medicine
Research interest
Research interests include Muscle metabolism and nutrition, Sports Performance and Training, Exercise and Physiological Responses, and Muscle Physiology and Disorders.
h-index
24
citations
1,530
works
69
NIH funding
primary concept
email

Recent publications

Skeletal muscle myosin heavy chain fragmentation following exercise may be linked to post‐exercise inflammation and remodelling
Experimental Physiology 2026cited by 0position: middledoi
Skeletal muscle mitochondrial responses to a single bout and six weeks of high load versus high volume resistance training in previously trained men
bioRxiv (Cold Spring Harbor Laboratory) 2025cited by 0position: middledoi
Peripheral quantitative computed tomography is a valid imaging technique for tracking changes in skeletal muscle cross‐sectional area
Clinical Physiology and Functional Imaging 2024cited by 1position: middledoi
Different Resistance Exercise Loading Paradigms Similarly Affect Skeletal Muscle Gene Expression Patterns of Myostatin-Related Targets and mTORC1 Signaling Markers
Cells 2023cited by 25position: middledoi
Resistance training in humans and mechanical overload in rodents do not elevate muscle protein lactylation
Frontiers in Physiology 2023cited by 9position: middledoi
Different resistance exercise loading paradigms similarly affect methylation status and mRNA expression patterns of myostatin-related genes in skeletal muscle
Physiology 2023cited by 0position: middledoi
Effects of High-Volume Versus High-Load Resistance Training on Skeletal Muscle Growth and Molecular Adaptations
Frontiers in Physiology 2022cited by 25position: firstdoi
Skeletal Muscle Ribosome and Mitochondrial Biogenesis in Response to Different Exercise Training Modalities
Frontiers in Physiology 2021cited by 60position: middledoi
Resistance training rejuvenates the mitochondrial methylome in aged human skeletal muscle
The FASEB Journal 2021cited by 53position: middledoi
LAT1 Protein Content Increases Following 12 Weeks of Resistance Exercise Training in Human Skeletal Muscle
Frontiers in Nutrition 2021cited by 26position: middledoi
Effects of Resistance Training on the Redox Status of Skeletal Muscle in Older Adults
Antioxidants 2021cited by 26position: middledoi
Molecular Differences in Skeletal Muscle After 1 Week of Active vs. Passive Recovery From High-Volume Resistance Training
The Journal of Strength and Conditioning Research 2021cited by 13position: firstdoi
Proteasome- and Calpain-Mediated Proteolysis, but Not Autophagy, Is Required for Leucine-Induced Protein Synthesis in C2C12 Myotubes
Physiologia 2021cited by 11position: middledoi
An intron variant of the GLI family zinc finger 3 (GLI3) gene differentiates resistance training‐induced muscle fiber hypertrophy in younger men
The FASEB Journal 2021cited by 6position: firstdoi
Resistance training rejuvenates the mitochondrial methylome in aged human skeletal muscle
bioRxiv (Cold Spring Harbor Laboratory) 2021cited by 5position: middledoi
Effects of High-Volume versus High-Load Resistance Training on Skeletal Muscle Growth and Molecular Adaptations
bioRxiv (Cold Spring Harbor Laboratory) 2021cited by 1position: firstdoi
Sarcoplasmic Hypertrophy in Skeletal Muscle: A Scientific “Unicorn” or Resistance Training Adaptation?
Frontiers in Physiology 2020cited by 65position: middledoi
Resistance training increases muscle NAD+ and NADH concentrations as well as NAMPT protein levels and global sirtuin activity in middle-aged, overweight, untrained individuals
Aging 2020cited by 65position: middledoi
Acute and chronic effects of resistance training on skeletal muscle markers of mitochondrial remodeling in older adults
Physiological Reports 2020cited by 58position: middledoi
Skeletal Muscle Protein Composition Adaptations to 10 Weeks of High-Load Resistance Training in Previously-Trained Males
Frontiers in Physiology 2020cited by 35position: firstdoi
An optimized procedure for isolation of rodent and human skeletal muscle sarcoplasmic and myofibrillar proteins
Journal of Biological Methods 2020cited by 34position: middledoi
Skeletal Muscle Myofibrillar Protein Abundance Is Higher in Resistance-Trained Men, and Aging in the Absence of Training May Have an Opposite Effect
Sports 2020cited by 33position: firstdoi
The effects of resistance training with or without peanut protein supplementation on skeletal muscle and strength adaptations in older individuals
Journal of the International Society of Sports Nutrition 2020cited by 27position: middledoi
Targeted SNP Interrogation to Determine if Select Polymorphisms are Associated with Skeletal Muscle Hypertrophy Following 12 Weeks of Resistance Training
The FASEB Journal 2020cited by 0position: firstdoi
Effects Of Six Weeks Of Unilateral High-volume Versus High-intensity Resistance Training On Vastus Lateralis Muscle Morphology In Previously Trained, College-aged Males.
Medicine & Science in Sports & Exercise 2020cited by 0position: middledoi
Effects Of High-Load And High-Volume Resistance Training On Maximal Strength, Peak Torque, And Mean Torque
Medicine & Science in Sports & Exercise 2020cited by 0position: middledoi
High-Volume And High-Intensity Resistance Training Effects On Upper-Leg Lean Tissue Mass And Muscle Cross-Sectional Area
Medicine & Science in Sports & Exercise 2020cited by 0position: middledoi
Effects Of High-Load Versus High-Volume Resistance Training On Muscle Sarcoplasmic, Actin, And Myosin Protein Concentrations
Medicine & Science in Sports & Exercise 2020cited by 0position: firstdoi
The effects of resistance training with or without peanut protein supplementation on skeletal muscle and strength adaptations in older individuals
Research Square 2020cited by 0position: middledoi
The Effects of Resistance Training With or Without Peanut Protein Supplementation on Skeletal Muscle and Strength Adaptations in Older Individuals
Research Square 2020cited by 0position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Michael D. Roberts · Auburn University55 papers (2018–2026)Shelby C. Osburn · University of Alabama at Birmingham44 papers (2017–2024)Kaelin C. Young · Pacific Northwest University of Health Sciences37 papers (2017–2025)Cody T. Haun · Abterra Biosciences (United States)33 papers (2017–2022)Petey W. Mumford · Pacific Northwest University of Health Sciences30 papers (2017–2024)Paul A. Roberson · University of Colorado Anschutz Medical Campus28 papers (2017–2021)Matthew A. Romero · University of California, Los Angeles27 papers (2017–2021)C. Brooks Mobley · Auburn University21 papers (2017–2023)Carlton D. Fox · Auburn University20 papers (2019–2025)Andreas N. Kavazis · Auburn University17 papers (2018–2025)Casey L. Sexton · University of Alabama at Birmingham16 papers (2020–2025)Bradley A. Ruple · University of Utah15 papers (2020–2025)Morgan A. Smith · Stanford University13 papers (2020–2024)Darren T. Beck · Auburn University13 papers (2018–2025)Johnathon H. Moore · Auburn University11 papers (2019–2021)Jordan R. Moon · Quanta Technology (United States)9 papers (2018–2020)Stuart M. Phillips · City College of San Francisco9 papers (2020–2025)Hailey A. Parry · National Institutes of Health8 papers (2018–2025)Donald A. Lamb · Auburn University8 papers (2020–2021) · 8 papers (2017–2018)