Developmental gene expression is under tight temporal and spatial control. This regulation is imparted by tissue specific enhancers that integrate developmental signals into transcriptional responses to allow for developmental progression. Often species specific, the enhancers that regulate human muscle progenitor and stem cell gene expression are currently unknown. Here, we define the 3D chromatin organization of human muscle development and reveal key changes across the human genome that are associated with multiple layers of 3D genome reorganization during the transition from a more progenitor-like to muscle stem cell state, including a reduction of TAD numbers and an increase in CTCF binding at TAD boundaries and chromatin loops throughout developmental progression. Specifically, we found that increased CTCF occupancy at human enhancers of PAX7 in stem cells holds enhancer-promoter (e-p) loops for timely activation of PAX7 enhancers during early human development. These findings demonstrate that stem cell state acquisition is stabilized earlier than previously known and provide unprecedented insights into the initiation and control of the muscle stem cell state in humans.
The noncoding genome imparts important regulatory control over gene expression. In particular, gene enhancers represent a critical layer of control that integrates developmental and differentiation signals outside the cell into transcriptional outputs inside the cell. Recently, there has been an explosion in genomic techniques to probe enhancer control, function, and regulation. How enhancers are regulated and integrate signals in stem cell development and differentiation is largely an open question. In this review, we focus on the role gene enhancers play in muscle stem cell specification, differentiation, and progression. We pay specific attention toward the identification of muscle-specific enhancers, the binding of transcription factors to these enhancers, and how enhancers communicate to their target genes via three-dimensional looping.
Duchenne Muscular Dystrophy (DMD) is a devastating disease with no cure affecting approximately 1 in 3,500-5,000 boys. Stem cell treatments using skeletal muscle stem cells (or satellite cells, SCs) provide great potential for regenerating new muscle and we have developed directed differentiation strategies to generate skeletal muscle cells from human induced pluripotent stem cells (hiPSCs). Our work has shown that hiPSCs generate PAX7 skeletal muscle progenitor cells (SMPCs) resembling early myogenic cells that align closer to week 7-12 in human development and are not equivalent to adult SCs. We are interested in understanding the key molecular and functional differences that control SMPC versus SC cell states. Recently, there has been an intense interest in the three dimensional (3D) organization of the genome and its involvement in cell specific gene regulation. This has led to the discovery of chromatin loops between gene enhancers and promoters as well as self-interacting domains termed topologically associating domains (TADs). Recently published data support a role for the 3D genome in cellular differentiation, however, the differences between the 3D genome in human SMPCs compared to adult SCs is unknown. High throughput chromosome conformation capture (Hi-C) was used to characterize the 3D genome of SMPCs. We found genome-wide 3D configurations were different between hPSCs and SMPCs as was the number of TADs. Interestingly, TAD size was also different between cell types, suggesting dynamic control of TADs during differentiation. When focusing on the PAX7 locus, TAD boundaries differ between cell types further highlighting the dynamic nature of TADs with respect to cell specific gene expression. Not all muscle specific loci were different between cell types, however, suggesting that some TADs may be pre-established early in the differentiation process while others are established de-novo. With respect to chromatin looping at the PAX7 locus, we found SMPC specific looping between the PAX7 promoter and downstream sequences that were unique in SMPCs. Considering that PAX7 enhancer sequences have yet to be determined, these sequences may serve as candidate enhancers for PAX7. These data, for the first time, characterize the 3D genome of human SMPCs using Hi-C. Moreover, these data provide candidate enhancer sequences for that could provide unique candidates for support of PAX7 SMPCs.
Objective Long INterspersed Element-1 (L1) is an autonomous transposable element in the genome. L1 transcripts that are not reverse transcribed back into the genome can accumulate in the cytoplasm and activate an inflammatory response via the cyclic GMP-AMP (cGAS)-STING pathway. We examined skeletal muscle L1 markers as well as STING protein levels in 10 older individuals (63 ± 11 y, BMI = 30.2 ± 6.8 kg/m 2 ) with end-stage osteoarthritis (OA) undergoing total hip (THA, n = 4) or knee (TKA, n = 6) arthroplasty versus 10 young, healthy comparators (Y, 22 ± 2 y, BMI = 23.2 ± 2.5 kg/m 2 ). For OA, muscle was collected from surgical (SX) and contralateral (CTL) sides whereas single vastus lateralis samples were collected from Y. Results L1 mRNA was higher in CTL and SX compared to Y (p < 0.001 and p = 0.001, respectively). Protein expression was higher in SX versus Y for ORF1p (p = 0.002) and STING (p = 0.022). While these data are preliminary due to limited n-sizes and the lack of a BMI-matched younger control group, higher L1 mRNA expression, ORF1p and STING protein are evident in older versus younger adults. More research is needed to determine whether cGAS-STING signaling contributes to heightened muscle inflammation during aging and/or OA.
Duchenne muscular dystrophy (DMD) is caused by out-of-frame mutations in the DMD gene resulting in the absence of a functional dystrophin protein, leading to a devastating and progressive lethal muscle-wasting disease. Little is known about cellular heterogeneity as disease severity increases. Advances in single-cell RNA sequencing (scRNA-seq) enabled us to explore skeletal muscle-resident cell populations in healthy, dystrophic, and severely dystrophic mouse models. We found increased frequencies of activated fibroblasts, fibro-adipogenic pro-genitor cells, and pro-inflammatory macrophages in dystrophic gastrocnemius muscles and an upregulation of extracellular matrix genes on endothelial cells in dystrophic and severely dystrophic muscles. We observed a pronounced risk of clotting, especially in the severely dystrophic mice with increased expression of plasminogen activator inhibitor-1 in endothelial cells, indicating endothelial cell impairment as disease severity increases. This work extends our understanding of the severe nature of DMD which should be considered when developing single or combinatorial approaches for DMD.
We investigated the effects of whey protein (WP) supplementation on body composition and physical performance in soldiers participating in Army Initial Entry Training (IET). Sixty-nine, male United States Army soldiers volunteered for supplementation with either twice daily whey protein (WP, 77 g/day protein, ~580 kcal/day; n = 34, age = 19 ± 1 year, height = 173 ± 6 cm, weight = 73.4 ± 12.7 kg) or energy-matched carbohydrate (CHO) drinks (CHO, 127 g/day carbohydrate, ~580 kcal/day; n = 35, age = 19 ± 1 year, height = 173 ± 5 cm, weight = 72.3 ± 10.9 kg) for eight weeks during IET. Physical performance was evaluated using the Army Physical Fitness Test during weeks two and eight. Body composition was assessed using 7-site skinfold assessment during weeks one and nine. Post-testing push-up performance averaged 7 repetitions higher in the WP compared to the CHO group (F = 10.1, p < 0.001) when controlling for baseline. There was a significant decrease in fat mass at post-training (F = 4.63, p = 0.04), but no significant change in run performance (F = 3.50, p = 0.065) or fat-free mass (F = 0.70, p = 0.41). Effect sizes for fat-free mass gains were large for both the WP (Cohen’s d = 0.44) and CHO (Cohen’s d = 0.42) groups. WP had a large effect on fat mass (FM) loss (Cohen’s d = −0.67), while CHO had a medium effect (Cohen’s d = −0.40). Twice daily supplementation with WP improved push-up performance and potentiated reductions in fat mass during IET training in comparison to CHO supplementation.
Retrotransposons are gene segments that proliferate in the genome, and the Long INterspersed Element 1 (LINE-1 or L1) retrotransposon is active in humans. Although older mammals show enhanced skeletal muscle L1 expression, exercise generally reverses this trend. We hypothesize skeletal muscle L1 expression influences muscle physiology, and additional innovative investigations are needed to confirm this hypothesis.
Introduction: Amino acid transporters are essential for cellular amino acid transport and promoting protein synthesis. While previous literature has demonstrated the association of amino acid transporters and protein synthesis following acute resistance exercise and amino acid supplementation, the chronic effect of resistance exercise and supplementation on amino acid transporters is unknown. The purpose herein was to determine if amino acid transporters and amino acid metabolic enzymes were related to skeletal muscle hypertrophy following resistance exercise training with different nutritional supplementation strategies. Methods: 43 college-aged males were separated into a maltodextrin placebo (PLA, n = 12), leucine (LEU, n = 14), or whey protein concentrate (WPC, n = 17) group and underwent 12 weeks of total-body resistance exercise training. Each group's supplement was standardized for total energy and fat, and LEU and WPC supplements were standardized for total leucine (6 g/d). Skeletal muscle biopsies were obtained prior to training and ~72 h following each subject's last training session. Results: All groups increased type I and II fiber cross-sectional area (fCSA) following training (p < 0.050). LAT1 protein increased following training (p < 0.001) and increased more in PLA than LEU and WPC (p < 0.050). BCKDHα protein increased and ATF4 protein decreased following training (p < 0.001). Immunohistochemistry indicated total LAT1/fiber, but not membrane LAT1/fiber, increased with training (p = 0.003). Utilizing all groups, the change in ATF4 protein, but no other marker, trended to correlate with the change in fCSA (r = 0.314; p = 0.055); however, when regression analysis was used to delineate groups, the change in ATF4 protein best predicted the change in fCSA only in LEU (r 2 = 0.322; p = 0.043). In C2C12 myoblasts, LAT1 protein overexpression caused a paradoxical decrease in protein synthesis levels (p = 0.002) and decrease in BCKDHα protein (p = 0.001). Conclusions: Amino acid transporters and metabolic enzymes are affected by resistance exercise training, but do not appear to dictate muscle fiber hypertrophy. In fact, overexpression of LAT1 in vitro decreased protein synthesis.
Abstract Vann, CG, Haun, CT, Osburn, SC, Romero, MA, Roberson, PA, Mumford, PW, Mobley, CB, Holmes, HM, Fox, CD, Young, KC, and Roberts, MD. Molecular differences in skeletal muscle after 1 week of active vs. passive recovery from high-volume resistance training. J Strength Cond Res 35(8): 2102–2113, 2021—Numerous studies have evaluated how deloading after resistance training (RT) affects strength and power outcomes. However, the molecular adaptations that occur after deload periods remain understudied. Trained, college-aged men (n = 30) performed 6 weeks of whole-body RT starting at 10 sets of 10 repetitions per exercise per week and finishing at 32 sets of 10 repetitions per exercise per week. After this period, subjects performed either active (AR; n = 16) or passive recovery (PR; n = 14) for 1 week where AR completed ∼15% of the week 6 training volume and PR ceased training. Variables related to body composition and recovery examined before RT (PRE), after 6 weeks of RT (POST), and after the 1-week recovery period (DL). Vastus lateralis (VL) muscle biopsies and blood samples were collected at each timepoint, and various biochemical and histological assays were performed. Group × time interactions (p < 0.05) existed for skeletal muscle myosin heavy chain (MHC)-IIa mRNA (AR > PR at POST and DL) and 20S proteasome activity (post-hoc tests revealed no significance in groups over time). Time effects (P < 0.05) existed for total mood disturbance and serum creatine kinase and mechano growth factor mRNA (POST > PRE &D L), VL pressure to pain threshold and MHC-IIx mRNA (PRE&DL > POST), Atrogin-1 and MuRF-1 mRNA (PRE < POST < DL), MHC-I mRNA (PRE < POST & DL), myostatin mRNA (PRE & POST < DL), and mechanistic target of rapamycin (PRE > POST & DL). No interactions or time effects were observed for barbell squat velocity, various hormones, histological metrics, polyubiquitinated proteins, or phosphorylated/pan protein levels of 4E-BP1, p70S6k, and AMPK. One week of AR after a high-volume training block instigates marginal molecular differences in skeletal muscle relative to PR. From a practical standpoint, however, both paradigms elicited largely similar responses.
We examined the association between genotype and resistance training-induced changes (12 wk) in dual x-ray energy absorptiometry (DXA)-derived lean soft tissue mass (LSTM) as well as muscle fiber cross-sectional area (fCSA; vastus lateralis; n = 109; age = 22 ± 2 y, BMI = 24.7 ± 3.1 kg/m2 ). Over 315 000 genetic polymorphisms were interrogated from muscle using DNA microarrays. First, a targeted investigation was performed where single nucleotide polymorphisms (SNP) identified from a systematic literature review were related to changes in LSTM and fCSA. Next, genome-wide association (GWA) studies were performed to reveal associations between novel SNP targets with pre- to post-training change scores in mean fCSA and LSTM. Our targeted investigation revealed no genotype-by-time interactions for 12 common polymorphisms regarding the change in mean fCSA or change in LSTM. Our first GWA study indicated no SNP were associated with the change in LSTM. However, the second GWA study indicated two SNP exceeded the significance level with the change in mean fCSA (P = 6.9 × 10-7 for rs4675569, 1.7 × 10-6 for rs10263647). While the former target is not annotated (chr2:205936846 (GRCh38.p12)), the latter target (chr7:41971865 (GRCh38.p12)) is an intron variant of the GLI Family Zinc Finger 3 (GLI3) gene. Follow-up analyses indicated fCSA increases were greater in the T/C and C/C GLI3 genotypes than the T/T GLI3 genotype (P < .05). Data from the Auburn cohort also revealed participants with the T/C and C/C genotypes exhibited increases in satellite cell number with training (P < .05), whereas T/T participants did not. Additionally, those with the T/C and C/C genotypes achieved myonuclear addition in response to training (P < .05), whereas the T/T participants did not. In summary, this is the first GWA study to examine how polymorphisms associate with the change in hypertrophy measures following resistance training. Future studies are needed to determine if the GLI3 variant differentiates hypertrophic responses to resistance training given the potential link between this gene and satellite cell physiology.
Resistance training generally increases skeletal muscle hypertrophy, whereas aging is associated with a loss in muscle mass. Interestingly, select studies suggest that aging, as well as resistance training, may lead to a reduction in the abundance of skeletal muscle myofibrillar (or contractile) protein (per mg tissue). Proteomic interrogations have also demonstrated that aging, as well as weeks to months of resistance training, lead to appreciable alterations in the muscle proteome. Given this evidence, the purpose of this small pilot study was to examine total myofibrillar as well as total sarcoplasmic protein concentrations (per mg wet muscle) from the vastus lateralis muscle of males who were younger and resistance-trained (denoted as YT, n = 6, 25 ± 4 years old, 10 ± 3 self-reported years of training), younger and untrained (denoted as YU, n = 6, 21 ± 1 years old), and older and untrained (denoted as OU, n = 6, 62 ± 8 years old). The relative abundances of actin and myosin heavy chain (per mg tissue) were also examined using SDS-PAGE and Coomassie staining, and shotgun proteomics was used to interrogate the abundances of individual sarcoplasmic and myofibrillar proteins between cohorts. Whole-body fat-free mass (YT > YU = OU), VL thickness (YT > YU = OU), and leg extensor peak torque (YT > YU = OU) differed between groups (p < 0.05). Total myofibrillar protein concentrations were greater in YT versus OU (p = 0.005), but were not different between YT versus YU (p = 0.325). The abundances of actin and myosin heavy chain were greater in YT versus YU (p < 0.05) and OU (p < 0.001). Total sarcoplasmic protein concentrations were not different between groups. While proteomics indicated that marginal differences existed for individual myofibrillar and sarcoplasmic proteins between YT versus other groups, age-related differences were more prominent for myofibrillar proteins (YT = YU > OU, p < 0.05: 7 proteins; OU > YT = YU, p < 0.05: 11 proteins) and sarcoplasmic proteins (YT = YU > OU, p < 0.05: 8 proteins; OU > YT&YU, p < 0.05: 29 proteins). In summary, our data suggest that modest (~9%) myofibrillar protein packing (on a per mg muscle basis) was evident in the YT group. This study also provides further evidence to suggest that notable skeletal muscle proteome differences exist between younger and older humans. However, given that our n-sizes are low, these results only provide a preliminary phenotyping of the reported protein and proteomic variables.
Several published protocols exist for isolating contractile or myofibrillar (MF) proteins from skeletal muscle, however, achieving complete resuspension of the myofibril pellet can be technically challenging. We performed several previously published MF isolation methods with the intent of determining which method was most suitable for MF protein isolation and solubilization. Here, we provide an optimized protocol to isolate sarcoplasmic and solubilized MF protein fractions from mammalian skeletal muscle suitable for several downstream assays.
AbstractBackgroundCancer Anorexia Cachexia Syndrome (CACS) is a distinct atrophy disease negatively influencing multiple aspects of clinical care and patient quality of life. Although it directly causes 20% of all cancer‐related deaths, there are currently no model systems that encompass the entire multifaceted syndrome, nor are there any effective therapeutic treatments.MethodsA novel model of systemic metastasis was evaluated for the comprehensive CACS (metastasis, skeletal muscle and adipose tissue wasting, inflammation, anorexia, anemia, elevated protein breakdown, hypoalbuminemia, and metabolic derangement) in both males and females. Ex vivo skeletal muscle analysis was utilized to determine ubiquitin proteasome degradation pathway activation. A novel ketone diester (R/S 1,3‐Butanediol Acetoacetate Diester) was assessed in multifaceted catabolic environments to determine anti‐atrophy efficacy.ResultsHere, we show that the VM‐M3 mouse model of systemic metastasis demonstrates a novel, immunocompetent, logistically feasible, repeatable phenotype with progressive tumor growth, spontaneous metastatic spread, and the full multifaceted CACS with sex dimorphisms across tissue wasting. We also demonstrate that the ubiquitin proteasome degradation pathway was significantly upregulated in association with reduced insulin‐like growth factor‐1/insulin and increased FOXO3a activation, but not tumor necrosis factor‐α‐induced nuclear factor‐kappa B activation, driving skeletal muscle atrophy. Additionally, we show that R/S 1,3‐Butanediol Acetoacetate Diester administration shifted systemic metabolism, attenuated tumor burden indices, reduced atrophy/catabolism and mitigated comorbid symptoms in both CACS and cancer‐independent atrophy environments.ConclusionsOur findings suggest the ketone diester attenuates multifactorial CACS skeletal muscle atrophy and inflammation‐induced catabolism, demonstrating anti‐catabolic effects of ketone bodies in multifactorial atrophy.
Training civilians to be soldiers is a challenging task often resulting in musculoskeletal injuries, especially bone stress injuries. This study evaluated bone health biomarkers (P1NP/CTX) and whey protein or carbohydrate supplementations before and after Army initial entry training (IET). Ninety male IET soldiers participated in this placebo-controlled, double-blind study assessing carbohydrate and whey protein supplementations. Age and fat mass predicted bone formation when controlling for ethnicity, explaining 44% (p < 0.01) of bone formation variations. Age was the only significant predictor of bone resorption (p = 0.02) when controlling for run, fat, and ethnicity, and these factors together explained 32% of the variance in bone resorption during week one (p < 0.01). Vitamin D increased across training (p < 0.01). There was no group by time interaction for supplementation and bone formation (p = 0.75), resorption (p = 0.73), Vitamin D (p = 0.36), or calcium (p = 0.64), indicating no influence of a supplementation on bone biomarkers across training. Age, fitness, fat mass, and ethnicity were important predictors of bone metabolism. The bone resorption/formation ratio suggests IET soldiers are at risk of stress injuries. Male IET soldiers are mildly to moderately deficient in vitamin D and slightly deficient in calcium throughout training. Whey protein or carbohydrate supplementations did not affect the markers of bone metabolism.
PURPOSE: Deloading is widely practiced in the strength and conditioning community as a method to augment recovery; however, there is little molecular signaling data to fully explain the details of why this practice is beneficial. METHODS: Recreationally-trained, college-aged males (n = 30) underwent 6 weeks of volume based training, after which the participants were split into active recovery (AR) and passive recovery (PR) groups with delaod lasting 7 days. Participants donated a muscle biopsy from the vastus lateralis prior to week 1 (PRE), post training (POST), and post deload (DL). Protein expression for mTOR, AMPk, 4EBP1, and p70S6k was evaluated via western blotting. Additionally, blood was obtained via venipuncture, and serum levels of creatine kinase (CK), testosterone (TEST), and cortisol (CORT) were evaluated using commercially available assay kits. RESULTS: There was an effect of time for phosphorylated (p) 4EBP1 (p = 0.014) where PRE (p = 0.003) and POSTDL (p = 0.004) expression of p-4EBP1 were significantly higher than POST. CK activity also had an effect of time (p = 0.016) where CK at POST was significantly higher than at DL (p = 0.007). There was a significant group*time interaction of proteasome activity (p = 0.040) where post-hoc analysis revealed the AR group exhibited higher proteasome activity DL than the PR group (p = 0.051). Differences in protein expression for pan and phosphorylated mTOR, AMPk, p70S6K, and pan 4EBP1 were not significant (p > 0.05). Additionally, there were no significant differences in serum testosterone and cortisol levels (p > 0.05) CONCLUSION: AR may stimulate the PI3K/AkT pathway resulting in the phosphorylation of 4EBP1 potentially allowing hypertrophic adaptation to occur. Additionally, proteasome activity being upregulated with AR POSTDL may be beneficial in cleaving damaged protein structures. More research is needed to further investigate molecular signaling after deloading paradigms.
The current study investigated how bovine milk extracellular vesicles (EVs) affected rotarod performance and biomarkers of skeletal muscle physiology in young, growing rats. Twenty-eight-day Fisher 344 rats were provided an AIN-93G-based diet for 4 weeks that either remained unadulterated [EVs and RNA-sufficient (ERS; n = 12)] or was sonicated [EVs and RNA-depleted (ERD; n = 12)]. Prior to (PRE) and on the last day of the intervention (POST), animals were tested for maximal rotarod performance. Following the feeding period, the gastrocnemius muscle was analyzed at the histological, biochemical, and molecular levels and was also used to measure mitochondrial function and reactive oxygen species (ROS) emission. A main effect of time was observed for rotarod time (PRE > POST, p = 0.001). Terminal gastrocnemius mass was unaffected by diet, although gastrocnemius muscle fiber cross sectional area was 11% greater (p = 0.018) and total RNA (a surrogate of ribosome density) was 24% greater (p = 0.001) in ERD. Transcriptomic analysis of the gastrocnemius indicated that 22 mRNAs were significantly greater in ERS versus ERD (p < 0.01), whereas 55 mRNAs were greater in ERD versus ERS (p < 0.01). There were no differences in gastrocnemius citrate synthase activity or mitochondrial coupling (respiratory control ratio), although mitochondrial ROS production was lower in ERD gastrocnemius (p = 0.016), which may be explained by an increase in glutathione peroxidase protein levels (p = 0.020) in ERD gastrocnemius. Dietary EVs profiling confirmed that sonication in the ERD diet reduced EVs content by ∼60%. Our findings demonstrate that bovine milk EVs depletion through sonication elicits anabolic and transcriptomic effects in the gastrocnemius muscle of rapidly maturing rats. While this did not translate into a functional outcome between diets (i.e., rotarod performance), longer feeding periods may be needed to observe such functional effects.
With aging, there is a decline in both skeletal muscle size and quality. This occurrence is known as sarcopenia and the implications due to this decline can be debilitating. Previous research has elucidated genes that are associated with muscle sarcopenia and how a change in expression can affect both muscle protein synthesis and degradation, which can affect skeletal muscle size and quality. PURPOSE: To investigate the expression of genes relating to skeletal muscle growth, collagen synthesis, and inflammation across the lifespan of rats. METHODS: Sedentary male Fischer 344 rats were fed ad libitum and were aged to 3 and 24 months (mo) (n=8 per age group) and then sacrificed. Body and gastrocnemius (gastroc) weights were collected and muscle was processed for RNA isolation and sent out for RNA sequencing. The following genes relating to muscle growth, collagen synthesis and inflammation were analyzed: Myostatin (MSTN), Insulin-like Growth Factor 1 (IGF-1), Insulin-like Growth Factor 2 (IGF-2), phosphorylated Mechanistic Target of Rapamycin (mTOR), Collagen Type I Alpha 1 Chain (COL1a1), Collagen Type I Alpha 2 Chain (COL1a2), Collagen Type IV Alpha 1 Chain (COL4a1), Lysyl Oxidase (LOX), Nuclear Factor Kappa B Subunit 1 (NFkB1), Tumor Necrosis Factor (TNF), Interleukin 6 (IL-6), and Interleukin 1 Beta (IL-1B). RESULTS: MSTN expression was significantly higher in 3 vs. 24 mo rats (p = 0.018), and was positively correlated to relative gastroc weights (R = 0.663, p = 0.005). All genes related to collagen synthesis were significantly higher in 3 vs. 24 mo rats (COL1a1, p < 0.001; COL1a2, p = 0.007; COL4a1, p = 0.030; LOX, p = 0.046). Furthermore, COL1a1 and COL1a2 were positively correlated to relative gastroc weight (R = 0.649, p = 0.007; R = 0.730, p = 0.001, respectively). However, no genes related to inflammation were significantly different between age groups, but there was a negative correlation between IL-6 gene expression and relative gastroc weights (R = -0.546, p = 0.028). CONCLUSION: We suspect 24-month old rodents may be too young to capture the sarcopenia symptoms that occur with aging. However, the relationship between inflammation and relative gastrocnemius muscle weight may warrant further investigations in rodents older than 24 months.
PURPOSE: Deloading is a common practice in the strength and conditioning community; however, there is a lack of data analyzing the effects of deloading on genes associated with muscle growth. METHODS: Resistance-trained, college-aged males, (n=30; training age 5±3 yrs) completed 6 weeks of high-volume resistance training, after which the participants were split into active and passive recovery groups, with the deload period lasting 7 days. A muscle biopsy was obtained from the vastus lateralis prior to week one (PRE), after week 6 (POST), and after a week of either passive (PS) or active (AC) deloading (DL). Biopsy samples were used to evaluate messenger ribonucleic acid (mRNA) expression via real-time polymerase chain reaction (PCR) of the following markers: Atrogrin-1, Muscle RING Finger Protein-1 (MURF-1), Mechano Growth Factor (MGF), Myosin Heavy Chain Ia (MHC-1), Myosin Heavy Chain IIa (MHC-IIa), Myosin Heavy Chain IIx (MHC IIx) and Myostatin. RESULTS: MHC IIa exhibited a significant group (p = 0.029) and time effect (p < 0.001), and a GxT interaction was also observed (p=0.048). The expression of MHC IIa was significantly higher in AC at POST and DL compared to PS. A significant time effect was observed in MURF-1, MGF, MHC I, MHC IIa, MHC IIx, and Myostatin expression (p < 0.05). Atrogin-1 exhibited no significant effect of time or group. CONCLUSION: Active recovery during a deloading period after the completion of a high-volume resistance training phase may increase the mRNA expression of MHC IIa, but further research into the protein expression of the MHC IIa isoform is necessary to better understand relationships between deloading, gene, and protein expression.
Exosomes are extracellular vesicles that carry ‘cargo’, such as microRNA, which may interact with different tissues and regulate cellular signaling pathways. PURPOSE: To determine the effects of exogenous bovine exosomes on the liver and skeletal muscle in young, growing rats. METHODS: Twenty-eight-day Fisher 344 rats were provided a milk-based diet that either contained exosomes (EXO+, n=12) or was exosome depleted via sonication (EXO-, n=12) for four weeks. Following the intervention, the liver and gastrocnemius were removed and measurements of respiratory control ratio (RCR), reactive oxygen species emission (ROS), antioxidant levels, cross sectional area (CSA), total RNA, and transcriptomics were performed. Except for transcriptomic data, independent samples t-tests were performed between diet groups and statistical significance was set at p<0.05. For transcriptomic data, all annotated transcripts with FPKM scores >1.0 were analyzed between groups and any score exceeding a fold-change cut-off >1.5 fold (p<0.01) were considered meaningful. RESULTS: There was no significant change in mitochondrial volume in either the liver (p=0.707) or gastrocnemius (p=0.724), however the liver had increased state 3 and state 4 in the EXO- treated group (p=0.040 and p=0.009) with complex I substrates. No significant differences were detected in liver antioxidant protein levels or oxidative damage markers (p>0.050). There was an increase in GPX protein levels in gastrocnemius in the EXO- rats (p=0.020), which may explain the significant decrease in ROS emission (p=0.016). No significant change was observed in gastrocnemius mitochondria respiration (p>0.050). Interestingly, gastrocnemius CSA and total RNA significantly increased in EXO- group (p=0.018 and p=0.001). Further analysis of the diet verified sonication decreased exosomes, however RNA was enriched per particle by >7.5 fold. CONCLUSION: An exosome depleted diet affects liver and skeletal muscle parameters and resulted in increased muscle hypertrophy. These changes may be due to the enhanced mRNA nature of the EXO- diet. Supported by AU IGP Grant; NIFA 2015-67017-23181 and 2016-67001-25301; NIH 1P20GM104320; Gates Foundation, Gerber Foundation; PureTech Health, Inc. JZ serves as a consultant for PureTech Health, Inc.
Transposable elements (TEs) are mobile DNA and constitute approximately half of the human genome. LINE-1 (L1) is the only active autonomous TE in the mammalian genome and has been implicated in a number of diseases as well as aging. We have previously reported that skeletal muscle L1 expression is lower following acute and chronic exercise training in humans. Herein, we used a rodent model of voluntary wheel running to determine whether long-term exercise training affects markers of skeletal muscle L1 regulation. Selectively bred high-running female Wistar rats ( n = 11 per group) were either given access to a running wheel (EX) or not (SED) at 5 wk of age, and these conditions were maintained until 27 wk of age. Thereafter, mixed gastrocnemius tissue was harvested and analyzed for L1 mRNA expression and DNA content along with other L1 regulation markers. We observed significantly ( P < 0.05) lower L1 mRNA expression, higher L1 DNA methylation, and less L1 DNA in accessible chromatin regions in EX versus SED rats. We followed these experiments with 3-h in vitro drug treatments in L6 myotubes to mimic transient exercise-specific signaling events. The AMP-activated protein kinase (AMPK) agonist 5-aminoimidazole-4-carboxamide ribonucleotide (AICAR; 4 mM) significantly decreased L1 mRNA expression in L6 myotubes. However, this effect was not facilitated through increased L1 DNA methylation. Collectively, these data suggest that long-term voluntary wheel running downregulates skeletal muscle L1 mRNA, and this may occur through chromatin modifications. Enhanced AMPK signaling with repetitive exercise bouts may also decrease L1 mRNA expression, although the mechanism of action remains unknown.