Search bioRxiv⌕ Search

Biology subjects

Peterson, C. S.

Publications and source records attributed to Peterson, C. S..

2 recordsLinked to original sources

Exercise preconditioning confers skeletal muscle myometaplasticity

Previously exercise trained skeletal muscle is more growth-responsive to retraining. Using a murine training-detraining-retraining approach and multi-omics, we find that Pecam1 gene expression is lower, but capillarization is appreciably higher in previously trained (preconditioned) relative to naive trained control muscle. Greater capillarity could be permissive for accelerated hypertrophic adaptation. Exercise preconditioned myonuclei feature differential promoter CpG regulation in genes related to Wnt signaling. These epigenetic alterations with retraining align with our prior observations of methylation changes within the same pathway after a longer period of chronic training, suggesting a more rapid response due to preconditioning. Methylome-transcriptome integration and single myonucleus RNA-sequencing expose the polyamine metabolism enzyme Smox as a target that relates to heightened hypertrophic adaptability with retraining. Smox induction is sufficient to cause hypertrophy in aligned myotubes cultured on a stiffness-tuned substrate along with a growth-supportive transcriptional program. Integration of our multi-omics data suggests that Smox regulates repression of Ddit4/Redd1 (an inhibitor of mTORC1 signaling) after retraining. Smox may govern a favorable muscle fiber growth environment in previously trained muscle by sensitizing anabolic potential through polyamine metabolism. A lower adaptive threshold mediated by Smox could contribute to myometaplasticity, or a change to how subsequent muscle adaptations are made.

molecular biology↗

The 24-Hour Time Course of Integrated Molecular Responses to Resistance Exercise in Human Skeletal Muscle Implicates MYC as a Hypertrophic Regulator That is Sufficient for Growth

Molecular control of recovery after exercise in muscle is temporally dynamic. A time course of biopsies around resistance exercise (RE) combined with -omics is necessary to better comprehend the molecular contributions of skeletal muscle adaptation in humans. Vastus lateralis biopsies before and 30 minutes, 3-, 8-, and 24-hours after acute RE were collected. A time-point matched biopsy-only group was also included. RNA-sequencing defined the transcriptome while DNA methylomics and computational approaches complemented these data. The post-RE time course revealed: 1) DNA methylome responses at 30 minutes corresponded to upregulated genes at 3 hours, 2) a burst of translation- and transcription-initiation factor-coding transcripts occurred between 3 and 8 hours, 3) global gene expression peaked at 8 hours, 4) ribosome-related genes dominated the mRNA landscape between 8 and 24 hours, 5) methylation-regulated MYC was a highly influential transcription factor throughout the 24-hour recovery and played a primary role in ribosome-related mRNA levels between 8 and 24 hours. The influence of MYC in human muscle adaptation was strengthened by transcriptome information from acute MYC overexpression in mouse muscle. To test whether MYC was sufficient for hypertrophy, we generated a muscle fiber-specific doxycycline inducible model of pulsatile MYC induction. Periodic 48-hour pulses of MYC over 4 weeks resulted in higher muscle mass and fiber size in the soleus of adult female mice. Collectively, we present a temporally resolved resource for understanding molecular adaptations to RE in muscle and reveal MYC as a regulator of RE-induced mRNA levels and hypertrophy.

cell biology↗