Area of research
Molecular Biology · Physiology
Research interest
Research interests include Biology, Skeletal muscle, Cell biology, DNA methylation, Epigenetics, and Transcriptome.
The Age‐Dependent Resident Myonuclear Multi‐Omic Response to an Acute Skeletal Muscle Hypertrophic Stimulus in Mice
At the Nexus Between Epigenetics and Senescence: The Effects of Senolytic ( <scp>BI01</scp> ) Administration on <scp>DNA</scp> Methylation Clock Age and the Methylome in Aged and Regenerated Skeletal Muscle
A satellite cell‐dependent epigenetic fingerprint in skeletal muscle identity genes after lifelong physical activity
The Age-Dependent Resident Myonuclear Multi-Omic Response to a Skeletal Muscle Hypertrophic Stimulus
Methylome–proteome integration after late‐life voluntary exercise training reveals regulation and target information for improved skeletal muscle health
The 24-hour molecular landscape after exercise in humans reveals MYC is sufficient for muscle growth
Muscle weakness and mitochondrial stress occur before severe metastasis in a novel mouse model of ovarian cancer cachexia
Mitochondrial antioxidant SkQ1 attenuates C26 cancer-induced muscle wasting in males and improves muscle contractility in female tumor-bearing mice
Muscle weakness and mitochondrial stress occur before metastasis in a novel mouse model of ovarian cancer cachexia
Exercise metabolism and adaptation in skeletal muscle
The myonuclear domain in adult skeletal muscle fibres: past, present and future
Division-Independent Differentiation of Muscle Stem Cells During a Growth Stimulus
Senolytic treatment rescues blunted muscle hypertrophy in old mice
Multi-transcriptome analysis following an acute skeletal muscle growth stimulus yields tools for discerning global and MYC regulatory networks
A molecular signature defining exercise adaptation with ageing and <i>in vivo</i> partial reprogramming in skeletal muscle
Nucleus Type-Specific DNA Methylomics Reveals Epigenetic “Memory” of Prior Adaptation in Skeletal Muscle
The myonuclear DNA methylome in response to an acute hypertrophic stimulus
Transcriptional profiling of skeletal muscle during hypertrophy in the absence of satellite cell participation reveals muscle‐specific diversity and satellite cell dependent signaling networks
Fiber typing human skeletal muscle with fluorescent immunohistochemistry
Starring or Supporting Role? Satellite Cells and Skeletal Muscle Fiber Size Regulation