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Biology subjects

Fry, C. S.

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

5 recordsLinked to original sources

Disrupted FAP-satellite cell communication contribute to maladaptive muscle remodeling in older women

Aged skeletal muscle has decreased ability to rebound from physiological stressors such as disuse atrophy. We previously observed that older adults during recovery following muscle disuse were characterized by rapid skeletal muscle immune cell expansion, cellular senescence and collagen deposition, responses that were biased toward older women. Here we used single-nucleus RNA sequencing and complementary in vitro muscle primary cell experiments in young (YF; 22[plusmn]3y; n=8) and older females (OF; 66[plusmn]5y; n=9) to investigate age-mediated cellular function and intercellular communication during recovery from disuse atrophy. Compared with YF, OF exhibited a markedly greater transcriptional response at 7d-recovery (YF: 1,548 DEGs, OF: 7,999 DEGs), driven primarily by slow- (YF: 96 DEGs, OF: 984 DEGs) and fast-twitch myonuclei (YF: 194 DEGs, OF: 1,234 DEGs), satellite cells (YF: 548 DEGs, OF: 2,784 DEGs) and FAPs (YF: 326 DEGs, OF: 2,102 DEGs). Satellite cells from OF demonstrated collagen signatures including elevated THBS1 expression and enrichment of TGF-[beta] signaling. Concurrently, OF FAPs exhibited increased expression of fibroblast activation marker ADAMTS14. Furthermore, NicheNet analyses unmasked altered FAP-satellite cell communication in OF. Complementary In vitro experiments revealed that myogenic progenitor cells collected at 7d-recovery from OF (vs YF) donors displayed impaired myogenic differentiation and a cellular senescence-associated phenotype, while fibroblasts exhibited greater myofibroblast-like activation. Conditioned media derived from OF fibroblasts at 7d-recovery further increased cellular senescence and impaired myogenic potential (vs YF fibroblast conditioned media). Collectively, these findings suggest that recovery from disuse atrophy in older females is characterized by altered FAP-satellite cell communication and intrinsic function which may contribute to poor muscle remodeling.

cell biology↗

Skeletal Muscle Stem Cell-Derived Myonuclei Adopt Divergent Terminal Transcriptional States in Adult and Aged Muscle In Response to a Hypertrophic Stimulus

Skeletal muscle stem cells (MuSCs) give rise to a fusogenic cell population that provide new myonuclei to muscle fibers. Myonuclear functional heterogeneity has recently become appreciated, but the terminal identity of MuSC-Derived myonuclei remains undefined. We performed single-nucleus RNA-sequencing of myonuclei in Adult and Aged muscle to define MuSC-Derived and resident myonuclear responses to mechanical overload (MOV), which induces a hypertrophic stimulus. We found a MuSC-dependent induction of a youthful transcriptional signature in resident myonuclei after MOV in Aged muscle. Age determined terminal transcriptional states of MuSC-Derived myonuclei toward MTJ in Adult, NMJ in Aged, and muscle spindles in both ages. Microtubule-remodeling genes, Macf1, Map1b, and Nav3, along with the transcription factor Runx1, identified this post-fusion specialization with greater expression of these genes in Adult than in Aged MuSC-Derived myonuclei. In-silico transcription factor KO screen identified Runx1 as a regulator of post-fusion specialization and Esrrg as a driver of spindle (intrafusal) MuSC-Derived myonuclear maturation. By defining the age-associated fate of MuSC fusion to muscle fibers, we provide potential targets for modulating muscle plasticity.

molecular biology↗

Muscle mass and denervation explain variability in maximal power and rapid force across the adult female lifespan

BackgroundDynamic power declines earlier across the lifespan and shows a more pronounced and complex pattern than isometric strength, particularly in ageing females. However, the functional, skeletal muscle and molecular mechanisms underpinning power loss across the female lifespan remain to be collectively examined. MethodsEighty-six females aged 18-80 years and stratified per decade of age completed a series of maximal voluntary knee extensions to construct torque-velocity and power-velocity relationships of the quadriceps. Data points corresponding to >95% maximal power were selected for the evaluation of rate of torque development (RTD) and quadriceps surface electromyography (EMG). Outcomes were quantified within discrete 50ms time bins from torque onset to +200ms and included absolute RTD, RTD normalised to peak force, and EMG amplitude and rate of rise normalised to the maximal compound action potential. Quadriceps morphology was assessed via computed tomography, and a vastus lateralis muscle biopsy was collected to assess markers of denervation and expression of genes associated with the neuromuscular junction and calcium-handling transcriptome. ResultsAgeing led to linear reductions in maximal power (-1.39 {+/-} 0.01% p/year), torque (-0.98 {+/-} 0.13% p/year) and velocity (-0.38 {+/-} 0.01% p/year) (all p < 0.05). Quadriceps skeletal muscle CSA attenuated power loss by [~]40% (p < 0.001), largely through reduction of the decline in torque ([~]50%), with no effect on the decline in velocity. During early time bins, older females generated higher relative RTD accompanied by higher EMG amplitude, whereas during later time bins, older females generated less absolute and relative RTD accompanied by lower EMG amplitude and rate of rise (all p < 0.05). Ageing increased neural cell adhesion molecule (NCAM) positive fibres and fibrosis (both p < 0.05). The presence of NCAM{square} fibres was associated with attenuation of the age-related decline in maximal power ([~]15%), torque ([~]35%) and velocity ([~]60%), suggesting that NCAM{square} fibre prevalence may partially explain the observed age associations. Within the neuromuscular junction transcriptome, ageing reduced acetylcholinesterase and increased laminin alpha-2 and muscle-specific kinase (all FDR < 0.05), whereas lesser changes were observed within the calcium-handling transcriptome. ConclusionsSkeletal muscle CSA explains [~]40% of the age-related decline in quadriceps dynamic maximal power across the female lifespan, whereas a neurodegenerative profile mainly evidenced by age-related changes in voluntary neural drive, denervation and markers of neuromuscular junction instability further contribute to the decline.

physiology↗

Resistance Exercise and Mechanical Overload Upregulate Vimentin for Skeletal Muscle Remodeling

Our laboratory has performed various experiments examining the proteomic alterations that occur with mechanical overload (MOV)-induced skeletal muscle hypertrophy. In the current study we first sought to determine how 10 weeks of resistance training in 15 college-aged females affected protein concentrations in different tissue fractions. Training, which promoted significantly lower body muscle- and fiber-level hypertrophy, notably increased sarcolemmal/membrane protein content (+10.1%, p<0.05). Sarcolemmal/membrane protein isolates were queried using mass spectrometry-based proteomics, [~]10% (38/387) of proteins associated with the sarcolemma were up-regulated (>1.5-fold, p<0.05), and one of these targets (the intermediate filament vimentin; VIM) warranted further mechanistic investigation. VIM expression was first examined in the plantaris muscles of 4-month-old C57BL/6J mice following 10- and 20-days of MOV via synergist ablation. Relative to Sham (control) mice, VIM mRNA and protein content was significantly higher in MOV mice and immunohistochemistry indicated that VIM was predominantly present in the extracellular matrix (ECM). The 10- and 20-day MOV experiments were replicated in Pax7-DTA (tamoxifen-induced, satellite cell depleted) mice, which reduced the presence of VIM in the ECM. Finally, a third set of 10- and 20-day MOV experiments were performed in C57BL/6 mice intramuscularly injected with either AAV9-scrambled (control) or AAV9-VIM shRNA. While VIM shRNA mice presented with lower VIM in the ECM ([~]50%), plantaris masses in response to MOV were similar between the injection groups. However, VIM shRNA mice presented with appreciably more MyHCemb-positive fibers with centrally located nuclei, indicating a regenerative phenotype. Using an integrative approach, we propose that skeletal muscle VIM is a mechanosensitive target predominantly localized to the ECM, and satellite cells are involved in its expression. Moreover, a disruption in VIM expression during MOV leads to dysfunctional skeletal muscle hypertrophy.

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↗