Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 1.347
Filter
1.
Sci Rep ; 14(1): 21154, 2024 09 10.
Article in English | MEDLINE | ID: mdl-39256490

ABSTRACT

Skeletal muscle is a highly heterogeneous tissue, and its contractile proteins are composed of different isoforms, forming various types of muscle fiber, each of which has its own metabolic characteristics. It has been demonstrated that endurance exercise induces the transition of muscle fibers from fast-twitch to slow-twitch muscle fiber type. Herein, we discover a novel epigenetic mechanism for muscle contractile property tightly coupled to its metabolic capacity during muscle fiber type transition with exercise training. Our results show that an 8-week endurance exercise induces histone methylation remodeling of PGC-1α and myosin heavy chain (MHC) isoforms in the rat gastrocnemius muscle, accompanied by increased mitochondrial biogenesis and an elevated ratio of slow-twitch to fast-twitch fibers. Furthermore, to verify the roles of reactive oxygen species (ROS) and AMPK in exercise-regulated epigenetic modifications and muscle fiber type transitions, mouse C2C12 myotubes were used. It was shown that rotenone activates ROS/AMPK pathway and histone methylation enzymes, which then promote mitochondrial biogenesis and MHC slow isoform expression. Mitoquinone (MitoQ) partially blocking rotenone-treated model confirms the role of ROS in coupling mitochondrial biogenesis with muscle fiber type. In conclusion, endurance exercise couples mitochondrial biogenesis with MHC slow isoform by remodeling histone methylation, which in turn promotes the transition of fast-twitch to slow-twitch muscle fibers. The ROS/AMPK pathway may be involved in the regulation of histone methylation enzymes by endurance exercise.


Subject(s)
Histones , Myosin Heavy Chains , Organelle Biogenesis , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha , Physical Conditioning, Animal , Reactive Oxygen Species , Animals , Histones/metabolism , Mice , Rats , Reactive Oxygen Species/metabolism , Male , Myosin Heavy Chains/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism , Methylation , Muscle Fibers, Skeletal/metabolism , Epigenesis, Genetic , Muscle Fibers, Slow-Twitch/metabolism , Physical Endurance/physiology , Muscle Fibers, Fast-Twitch/metabolism , Muscle, Skeletal/metabolism , Cell Line , AMP-Activated Protein Kinases/metabolism
2.
Physiol Rep ; 12(15): e16181, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39138135

ABSTRACT

This study aimed to evaluate the influence of combined intermittent fasting (IF) and high-intensity interval training (HIIT) on morphology, caspase-independent apoptosis signaling pathway, and myostatin expression in soleus and gastrocnemius (white portion) muscles from healthy rats. Sixty-day-old male Wistar rats (n = 60) were divided into four groups: control (C), IF, high-intensity-interval training (T), and high-intensity-interval training and intermittent fasting (T-IF). The C and T groups received ad libitum chow daily; IF and T-IF received the same standard chow every other day. Animals from T and T-IF underwent a HIIT protocol five times a week for 12 weeks. IF reduced gastrocnemius mass and increased pro-apoptotic proteins apoptosis-inducing factor (AIF) and endonuclease G (EndoG) in soleus and cleaved-to-non-cleaved PARP-1 ratio and myostatin expression in gastrocnemius white portion. HIIT increased AIF and apoptosis repressor with caspase recruitment domain expression in soleus and cleaved-to-total PARP-1 ratio in gastrocnemius muscle white portion. The combination of IF and HIIT reduced fiber cross-sectional area in both muscles, increased EndoG and AIF expression, and decreased cleaved-to-non-cleaved PARP-1 ratio in gastrocnemius muscle white portion. Muscle responses to IF and HIIT are directly impacted by the muscle fiber type composition and are modulated, at least in part, by myostatin and caspase-independent apoptosis signaling.


Subject(s)
Apoptosis Inducing Factor , Apoptosis , Fasting , High-Intensity Interval Training , Muscle Fibers, Slow-Twitch , Muscular Atrophy , Myostatin , Rats, Wistar , Signal Transduction , Animals , Male , Apoptosis/physiology , Fasting/metabolism , Fasting/physiology , Myostatin/metabolism , High-Intensity Interval Training/methods , Rats , Signal Transduction/physiology , Muscular Atrophy/metabolism , Muscular Atrophy/pathology , Apoptosis Inducing Factor/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Fast-Twitch/pathology , Endodeoxyribonucleases/metabolism , Physical Conditioning, Animal/methods , Physical Conditioning, Animal/physiology , Muscle, Skeletal/metabolism , Intermittent Fasting , Poly (ADP-Ribose) Polymerase-1
3.
Pflugers Arch ; 476(10): 1517-1527, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39043889

ABSTRACT

After an initial increase, isovelocity elongation of a muscle fiber can lead to diminishing (referred to as Give in the literature) and subsequently increasing force. How the stretch velocity affects this behavior in slow-twitch fibers remains largely unexplored. Here, we stretched fully activated individual rat soleus muscle fibers from 0.85 to 1.3 optimal fiber length at stretch velocities of 0.01, 0.1, and 1 maximum shortening velocity, vmax, and compared the results with those of rat EDL fast-twitch fibers obtained in similar experimental conditions. In soleus muscle fibers, Give was 7%, 18%, and 44% of maximum isometric force for 0.01, 0.1, and 1 vmax, respectively. As in EDL fibers, the force increased nearly linearly in the second half of the stretch, although the number of crossbridges decreased, and its slope increased with stretch velocity. Our findings are consistent with the concept of a forceful detachment and subsequent crossbridge reattachment in the stretch's first phase and a strong viscoelastic titin contribution to fiber force in the second phase of the stretch. Interestingly, we found interaction effects of stretch velocity and fiber type on force parameters in both stretch phases, hinting at fiber type-specific differences in crossbridge and titin contributions to eccentric force. Whether fiber type-specific combined XB and non-XB models can explain these effects or if they hint at some not fully understood properties of muscle contraction remains to be shown. These results may stimulate new optimization perspectives in sports training and provide a better understanding of structure-function relations of muscle proteins.


Subject(s)
Muscle Fibers, Fast-Twitch , Muscle Fibers, Slow-Twitch , Rats, Wistar , Animals , Muscle Fibers, Slow-Twitch/physiology , Rats , Male , Muscle Fibers, Fast-Twitch/physiology , Muscle Fibers, Fast-Twitch/metabolism , Muscle Contraction/physiology , Isometric Contraction/physiology , Connectin/metabolism , Muscle, Skeletal/physiology , Muscle Proteins/metabolism
4.
Meat Sci ; 216: 109582, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38991479

ABSTRACT

This study conducted a thorough analysis of the myofiber type composition in the extensor digitorum longus muscle (EDL) and soleus muscle (SOL) of Kazakh horses, across different genders (male and female). The results showed significant differences in myofiber type composition between EDL and SOL, with a higher proportion of Type I fibers in SOL muscles and a greater prevalence of Type II fibers in EDL muscles. Additionally, the myofiber diameter in Kazakh horses was relatively small, potentially related to the tenderness and edible quality of their muscles. Using high-throughput sequencing technology, we constructed 32 cDNA sequencing libraries and obtained high-quality read data. Gene expression analysis revealed 278 and 372 differentially expressed genes (DEGs) in EDL and SOL muscles, respectively, including genes related to muscle contraction, metabolism, and development. Intersection analysis of DEGs between genders showed that 60 DEGs were significantly different in both male and female horses. GO annotation and KEGG analysis further elucidated the roles of these DEGs in muscle structure, function, and cellular signaling. Protein-protein interaction (PPI) network analysis and identification of hub genes provided new insights into the molecular mechanisms underlying muscle growth and development. Finally, the reliability of the DEGs data was validated through quantitative real-time PCR (qRT-PCR). This study not only enhances our understanding of the biological characteristics of horse muscles but also provides potential molecular targets for improving horse muscle performance and health.


Subject(s)
Gene Expression Profiling , Muscle Fibers, Fast-Twitch , Muscle Fibers, Slow-Twitch , Transcriptome , Animals , Horses/genetics , Male , Female , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Muscle, Skeletal/metabolism , High-Throughput Nucleotide Sequencing , Protein Interaction Maps
5.
Acta Physiol (Oxf) ; 240(9): e14208, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39077881

ABSTRACT

AIM: Parvalbumin (PV) is a primary calcium buffer in mouse fast skeletal muscle fibers. Previous work showed that PV ablation has a limited impact on cytosolic Ca2+ ([Ca2+]cyto) transients and contractile response, while it enhances mitochondrial density and mitochondrial matrix-free calcium concentration ([Ca2+]mito). Here, we aimed to quantitatively test the hypothesis that mitochondria act to compensate for PV deficiency. METHODS: We determined the free Ca2+ redistribution during a 2 s 60 Hz tetanic stimulation in the sarcoplasmic reticulum, cytosol, and mitochondria. Via a reaction-diffusion Ca2+ model, we quantitatively evaluated mitochondrial uptake and storage capacity requirements to compensate for PV lack and analyzed possible extracellular export. RESULTS: [Ca2+]mito during tetanic stimulation is greater in knock-out (KO) (1362 ± 392 nM) than in wild-type (WT) (855 ± 392 nM), p < 0.05. Under the assumption of a non-linear intramitochondrial buffering, the model predicts an accumulation of 725 µmoles/L fiber (buffering ratio 1:11 000) in KO, much higher than in WT (137 µmoles/L fiber, ratio 1:4500). The required transport rate via mitochondrial calcium uniporter (MCU) reaches 3 mM/s, compatible with available literature. TEM images of calcium entry units and Mn2+ quenching showed a greater capacity of store-operated calcium entry in KO compared to WT. However, levels of [Ca2+]cyto during tetanic stimulation were not modulated to variations of extracellular calcium. CONCLUSIONS: The model-based analysis of experimentally determined calcium distribution during tetanic stimulation showed that mitochondria can act as a buffer to compensate for the lack of PV. This result contributes to a better understanding of mitochondria's role in modulating [Ca2+]cyto in skeletal muscle fibers.


Subject(s)
Calcium , Cytosol , Mice, Knockout , Parvalbumins , Animals , Parvalbumins/metabolism , Cytosol/metabolism , Calcium/metabolism , Mice , Muscle Fibers, Fast-Twitch/metabolism , Mitochondria, Muscle/metabolism , Mice, Inbred C57BL , Sarcoplasmic Reticulum/metabolism , Mitochondria/metabolism , Male , Muscle Contraction/physiology , Muscle, Skeletal/metabolism
6.
Physiol Res ; 73(3): 369-379, 2024 07 17.
Article in English | MEDLINE | ID: mdl-39027954

ABSTRACT

The skeletal muscle is the main organ responsible for insulin action, and glucose disposal and metabolism. Endurance and/or resistance training raises the number of mitochondria in diabetic muscles. The details of these adaptations, including mitochondrial adaptations of the slow and fast muscles in diabetes, are unclear. This study aimed to determine whether exercise training in streptozotocin (STZ)-induced mice leads to differential adaptations in the slow and fast muscles, and improving glucose clearance. Eight-week-old mice were randomly distributed into normal control (CON), diabetes (DM), and diabetes and exercise (DM+Ex) groups. In the DM and DM+Ex groups, mice received a freshly prepared STZ (100 mg/kg) intraperitoneal injection on two consecutive days. Two weeks after the injection, the mice in the groups ran on a treadmill for 60 min at 20 m/min for a week and subsequently at 25 m/min for 5 weeks (5 days/week). The analyses indicated that running training at low speed (25 m/min) enhanced mitochondrial enzyme activity and expression of lactate and glucose transporters in the plantaris (low-oxidative) muscle that improved whole-body glucose metabolism in STZ-induced diabetic mice. There were no differences in glucose transporter expression levels in the soleus (high-oxidative) muscle. The endurance running exercise at 20-25 m/min was sufficient to induce mitochondrial adaptation in the low-oxidative muscles, but not in the high-oxidative muscles, of diabetic mice. In conclusion, the present study indicated that running training at 25 m/min improved glucose metabolism by increasing the mitochondrial enzyme activity and glucose transporter 4 and monocarboxylate transporter 4 protein contents in the low-oxidative muscles in STZ-induced diabetic mice.


Subject(s)
Adaptation, Physiological , Diabetes Mellitus, Experimental , Mitochondria, Muscle , Physical Conditioning, Animal , Running , Animals , Diabetes Mellitus, Experimental/metabolism , Adaptation, Physiological/physiology , Mice , Male , Physical Conditioning, Animal/physiology , Mitochondria, Muscle/metabolism , Running/physiology , Muscle, Skeletal/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Physical Endurance/physiology , Streptozocin , Blood Glucose/metabolism
7.
Int J Mol Sci ; 25(11)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38892319

ABSTRACT

The skeletal muscles of teleost fish encompass heterogeneous muscle types, termed slow-twitch muscle (SM) and fast-twitch muscle (FM), characterized by distinct morphological, anatomical, histological, biochemical, and physiological attributes, driving different swimming behaviors. Despite the central role of metabolism in regulating skeletal muscle types and functions, comprehensive metabolomics investigations focusing on the metabolic differences between these muscle types are lacking. To reveal the differences in metabolic characteristics between the SM and FM of teleost, we conducted an untargeted metabolomics analysis using Pseudocaranx dentex as a representative model and identified 411 differential metabolites (DFMs), of which 345 exhibited higher contents in SM and 66 in FM. KEGG enrichment analysis showed that these DFMs were enriched in the metabolic processes of lipids, amino acids, carbohydrates, purines, and vitamins, suggesting that there were significant differences between the SM and FM in multiple metabolic pathways, especially in the metabolism of energy substances. Furthermore, an integrative analysis of metabolite contents, enzymatic activity assays, and gene expression levels involved in ATP-PCr phosphate, anaerobic glycolysis, and aerobic oxidative energy systems was performed to explore the potential regulatory mechanisms of energy metabolism differences. The results unveiled a set of differential metabolites, enzymes, and genes between the SM and FM, providing compelling molecular evidence of the FM achieving a higher anaerobic energy supply capacity through the ATP-PCr phosphate and glycolysis energy systems, while the SM obtains greater energy supply capacity via aerobic oxidation. These findings significantly advance our understanding of the metabolic profiles and related regulatory mechanisms of skeletal muscles, thereby expanding the knowledge of metabolic physiology and ecological adaptation in teleost fish.


Subject(s)
Metabolomics , Muscle Fibers, Fast-Twitch , Muscle Fibers, Slow-Twitch , Animals , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Metabolomics/methods , Metabolome , Energy Metabolism , Gene Expression Profiling , Muscle, Skeletal/metabolism , Fish Proteins/metabolism , Fish Proteins/genetics , Gene Expression Regulation , Glycolysis
8.
Int J Mol Sci ; 25(11)2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38892380

ABSTRACT

Levosimendan's calcium sensitizing effects in heart muscle cells are well established; yet, its potential impact on skeletal muscle cells has not been evidently determined. Despite controversial results, levosimendan is still expected to interact with skeletal muscle through off-target sites (further than troponin C). Adding to this debate, we investigated levosimendan's acute impact on fast-twitch skeletal muscle biomechanics in a length-dependent activation study by submersing single muscle fibres in a levosimendan-supplemented solution. We employed our MyoRobot technology to investigate the calcium sensitivity of skinned single muscle fibres alongside their stress-strain response in the presence or absence of levosimendan (100 µM). While control data are in agreement with the theory of length-dependent activation, levosimendan appears to shift the onset of the 'descending limb' of active force generation to longer sarcomere lengths without notably improving myofibrillar calcium sensitivity. Passive stretches in the presence of levosimendan yielded over twice the amount of enlarged restoration stress and Young's modulus in comparison to control single fibres. Both effects have not been described before and may point towards potential off-target sites of levosimendan.


Subject(s)
Calcium , Muscle Fibers, Fast-Twitch , Simendan , Simendan/pharmacology , Animals , Mice , Calcium/metabolism , Muscle Fibers, Fast-Twitch/drug effects , Muscle Fibers, Fast-Twitch/metabolism , Muscle Contraction/drug effects , Sarcomeres/metabolism , Sarcomeres/drug effects , Male , Myofibrils/metabolism , Myofibrils/drug effects
9.
Endocrinol Metab (Seoul) ; 39(3): 521-530, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38858821

ABSTRACT

BACKGRUOUND: Aging leads to sarcopenia, which is characterized by reduced muscle mass and strength. Many factors, including altered muscle protein turnover, diminished neuromuscular function, hormonal changes, systemic inflammation, and the structure and composition of muscle fibers, play a crucial role in age-related muscle decline. This study explored differences in muscle fiber types contributing to overall muscle function decline in aging, focusing on individuals with hip fractures from falls. METHODS: A pilot study at Chungnam National University Hospital collected muscle biopsies from hip fracture patients aged 20 to 80 undergoing surgical treatment. Muscle biopsies from the vastus lateralis and gluteus maximus were obtained during hip arthroplasty or internal fixation. Handgrip strength, calf and thigh circumference, and bone mineral density were evaluated in individuals with hip fractures from falls. We analyzed the relationships between each clinical characteristic and muscle fiber type. RESULTS: In total, 26 participants (mean age 67.9 years, 69.2% male) were included in this study. The prevalence of sarcopenia was 53.8%, and that of femoral and lumbar osteoporosis was 19.2% and 11.5%, respectively. Vastus lateralis analysis revealed an age-related decrease in type IIx fibers, a higher proportion of type IIa fibers in women, and an association between handgrip strength and type IIx fibers in men. The gluteus maximus showed no significant correlations with clinical parameters. CONCLUSION: This study identified complex associations between age, sex, handgrip strength, and muscle fiber composition in hip fracture patients, offering insights crucial for targeted interventions combating age-related muscle decline and improving musculoskeletal health.


Subject(s)
Hip Fractures , Quadriceps Muscle , Sarcopenia , Humans , Male , Female , Aged , Hip Fractures/pathology , Sarcopenia/pathology , Quadriceps Muscle/pathology , Middle Aged , Pilot Projects , Aged, 80 and over , Hand Strength , Adult , Bone Density , Muscle Fibers, Skeletal/pathology , Muscle Fibers, Skeletal/metabolism , Young Adult , Aging/physiology , Aging/pathology , Muscle Fibers, Fast-Twitch/pathology , Muscle Fibers, Fast-Twitch/metabolism
10.
J Physiol ; 602(12): 2751-2762, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38695322

ABSTRACT

There is a growing appreciation that regulation of muscle contraction requires both thin filament and thick filament activation in order to fully activate the sarcomere. The prevailing mechano-sensing model for thick filament activation was derived from experiments on fast-twitch muscle. We address the question whether, or to what extent, this mechanism can be extrapolated to the slow muscle in the hearts of large mammals, including humans. We investigated the similarities and differences in structural signatures of thick filament activation in porcine myocardium as compared to fast rat extensor digitorum longus (EDL) skeletal muscle under relaxed conditions and sub-maximal contraction using small angle X-ray diffraction. Thick and thin filaments were found to adopt different structural configurations under relaxing conditions, and myosin heads showed different changes in configuration upon sub-maximal activation, when comparing the two muscle types. Titin was found to have an X-ray diffraction signature distinct from those of the overall thick filament backbone, and its spacing change appeared to be positively correlated to the force exerted on the thick filament. Structural changes in fast EDL muscle were found to be consistent with the mechano-sensing model. In porcine myocardium, however, the structural basis of mechano-sensing is blunted suggesting the need for additional activation mechanism(s) in slow cardiac muscle. These differences in thick filament regulation can be related to their different physiological roles where fast muscle is optimized for rapid, burst-like, contractions, and the slow cardiac muscle in large mammalian hearts adopts a more finely tuned, graded response to allow for their substantial functional reserve. KEY POINTS: Both thin filament and thick filament activation are required to fully activate the sarcomere. Thick and thin filaments adopt different structural configurations under relaxing conditions, and myosin heads show different changes in configuration upon sub-maximal activation in fast extensor digitorum longus muscle and slow porcine cardiac muscle. Titin has an X-ray diffraction signature distinct from those of the overall thick filament backbone and this titin reflection spacing change appeared to be directly proportional to the force exerted on the thick filament. Mechano-sensing is blunted in porcine myocardium suggesting the need for additional activation mechanism(s) in slow cardiac muscle. Fast skeletal muscle is optimized for rapid, burst-like contractions, and the slow cardiac muscle in large mammalian hearts adopts a more finely tuned graded response to allow for their substantial functional reserve.


Subject(s)
Myocardium , Animals , Swine , Myocardium/metabolism , Connectin/metabolism , Rats , Male , Muscle Fibers, Fast-Twitch/physiology , Muscle Fibers, Fast-Twitch/metabolism , Sarcomeres/physiology , Sarcomeres/metabolism , Muscle Fibers, Slow-Twitch/physiology , Muscle Fibers, Slow-Twitch/metabolism , Muscle, Skeletal/physiology , Muscle, Skeletal/metabolism , X-Ray Diffraction , Muscle Contraction/physiology , Myosins/metabolism , Myosins/physiology
11.
J Food Sci ; 89(6): 3788-3801, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38638069

ABSTRACT

The conversion of fast-twitch fibers into slow-twitch fibers within skeletal muscle plays a crucial role in improving physical stamina and safeguarding against metabolic disorders in individuals. Grape seed proanthocyanidin extract (GSPE) possesses numerous pharmacological and health advantages, effectively inhibiting the onset of chronic illnesses. However, there is a lack of research on the specific mechanisms by which GSPE influences muscle physiology and gut microbiota. This study aims to investigate the role of gut microbiota and their metabolites in GSPE regulation of skeletal muscle fiber type conversion. In this experiment, 54 male BALB/c mice were randomly divided into three groups: basal diet, basal diet supplemented with GSPE, and basal diet supplemented with GSPE and antibiotics. During the feeding period, glucose tolerance and forced swimming tests were performed. After euthanasia, samples of muscle and feces were collected for analysis. The results showed that GSPE increased the muscle mass and anti-fatigue capacity of the mice, as well as the expression of slow-twitch fibers. However, the beneficial effects of GSPE on skeletal muscle fibers disappeared after adding antibiotics to eliminate intestinal microorganisms, suggesting that GSPE may play a role by regulating intestinal microbial structure. In addition, GSPE increased the relative abundance of Blautia, Muribaculaceae, and Enterorhabdus, as well as butyrate production. Importantly, these gut microbes exhibited a significant positive correlation with the expression of slow-twitch muscle fibers. In conclusion, supplementation with GSPE can increase the levels of slow-twitch fibers by modulating the gut microbiota, consequently prolonging the duration of exercise before exhaustion. PRACTICAL APPLICATION: This research suggests that grape seed proanthocyanidin extract (GSPE) has potential applications in improving physical stamina and preventing metabolic disorders. By influencing the gut microbiota and increasing butyric acid production, GSPE contributes to the conversion of fast-twitch muscle fibers into slow-twitch fibers, thereby enhancing anti-fatigue capacity and exercise endurance. While further studies are needed, incorporating GSPE into dietary supplements or functional foods could support individuals seeking to optimize their exercise performance and overall metabolic health.


Subject(s)
Butyric Acid , Gastrointestinal Microbiome , Grape Seed Extract , Mice, Inbred BALB C , Proanthocyanidins , Animals , Proanthocyanidins/pharmacology , Male , Gastrointestinal Microbiome/drug effects , Grape Seed Extract/pharmacology , Mice , Butyric Acid/metabolism , Butyric Acid/pharmacology , Cecum/microbiology , Cecum/metabolism , Muscle Fibers, Skeletal/drug effects , Muscle Fibers, Slow-Twitch/drug effects , Muscle Fibers, Slow-Twitch/metabolism , Muscle Fibers, Fast-Twitch/drug effects , Muscle Fibers, Fast-Twitch/metabolism , Muscle, Skeletal/drug effects , Bacteria/drug effects , Bacteria/classification
12.
J Cell Physiol ; 239(5): e31226, 2024 May.
Article in English | MEDLINE | ID: mdl-38591363

ABSTRACT

Understanding how skeletal muscle fiber proportions are regulated is essential for understanding muscle function and improving the quality of mutton. While circular RNA (circRNA) has a critical function in myofiber type transformation, the specific mechanisms are not yet fully understood. Prior evidence indicates that circular ubiquitin-specific peptidase 13 (circUSP13) can promote myoblast differentiation by acting as a ceRNA, but its potential role in myofiber switching is still unknown. Herein, we found that circUSP13 enhanced slow myosin heavy chain (MyHC-slow) and suppressed MyHC-fast expression in goat primary myoblasts (GPMs). Meanwhile, circUSP13 evidently enhanced the remodeling of the mitochondrial network while inhibiting the autophagy of GPMs. We obtained fast-dominated myofibers, via treatment with rotenone, and further demonstrated the positive role of circUSP13 in the fast-to-slow transition. Mechanistically, activation of the mitogen-activated protein kinase/extracellular signal-regulated kinase (MAPK/ERK) pathway significantly impaired the slow-to-fast shift in fully differentiated myotubes, which was restored by circUSP13 or IGF1 overexpression. In conclusion, circUSP13 promoted the fast-to-slow myofiber type transition through MAPK/ERK signaling in goat skeletal muscle. These findings provide novel insights into the role of circUSP13 in myofiber type transition and contribute to a better understanding of the genetic mechanisms underlying meat quality.


Subject(s)
Goats , MAP Kinase Signaling System , Muscle Fibers, Fast-Twitch , Muscle Fibers, Slow-Twitch , Myosin Heavy Chains , RNA, Circular , Animals , Autophagy/physiology , Cell Differentiation , Cells, Cultured , Extracellular Signal-Regulated MAP Kinases/metabolism , Extracellular Signal-Regulated MAP Kinases/genetics , MAP Kinase Signaling System/physiology , Muscle Development/genetics , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Myoblasts/metabolism , Myosin Heavy Chains/metabolism , Myosin Heavy Chains/genetics , RNA, Circular/metabolism
13.
J Proteome Res ; 23(4): 1285-1297, 2024 04 05.
Article in English | MEDLINE | ID: mdl-38480473

ABSTRACT

C18ORF25 was recently shown to be phosphorylated at S67 by AMP-activated protein kinase (AMPK) in the skeletal muscle, following acute exercise in humans. Phosphorylation was shown to improve the ex vivo skeletal muscle contractile function in mice, but our understanding of the molecular mechanisms is incomplete. Here, we profiled the interactome of C18ORF25 in mouse myotubes using affinity purification coupled to mass spectrometry. This analysis included an investigation of AMPK-dependent and S67-dependent protein/protein interactions. Several nucleocytoplasmic and contractile-associated proteins were identified, which revealed a subset of GTPases that associate with C18ORF25 in an AMPK- and S67 phosphorylation-dependent manner. We confirmed that C18ORF25 is localized to the nucleus and the contractile apparatus in the skeletal muscle. Mice lacking C18Orf25 display defects in calcium handling specifically in fast-twitch muscle fibers. To investigate these mechanisms, we developed an integrated single fiber physiology and single fiber proteomic platform. The approach enabled a detailed assessment of various steps in the excitation-contraction pathway including SR calcium handling and force generation, followed by paired single fiber proteomic analysis. This enabled us to identify >700 protein/phenotype associations and 36 fiber-type specific differences, following loss of C18Orf25. Taken together, our data provide unique insights into the function of C18ORF25 and its role in skeletal muscle physiology.


Subject(s)
AMP-Activated Protein Kinases , Muscle Fibers, Slow-Twitch , Mice , Humans , Animals , Muscle Fibers, Slow-Twitch/metabolism , AMP-Activated Protein Kinases/metabolism , Proteomics/methods , Calcium/metabolism , Muscle Fibers, Skeletal/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Muscle, Skeletal/metabolism , Muscle Contraction , Mass Spectrometry
14.
Int J Mol Sci ; 25(6)2024 Mar 20.
Article in English | MEDLINE | ID: mdl-38542488

ABSTRACT

Disuse muscle atrophy is a disease caused by restricted activity, affecting human health and animal protein quality. While extensive research on its mechanism has been studied in mammals, comparatively little is known about this process in chickens, which are a significant source of protein for human consumption worldwide. Understanding the mechanisms underlying skeletal muscle atrophy in chickens is crucial for improving poultry health and productivity, as well as for developing strategies to mitigate muscle loss. In this study, two groups of chickens were subjected to limb immobilization for two and four weeks, respectively, in order to induce disuse muscle atrophy and uniformly sampled gastrocnemius muscle at the fourth week. A combined analysis of the transcriptome and metabolome was conducted to investigate the mechanisms of disuse-induced muscle atrophy. Through H&E staining and immunofluorescence, we found that, compared to slow-twitch muscle fibers, the fast-twitch muscle fibers showed a greater reduction in cross-sectional area in the immobilized leg, and were also the main driver of changes in cross-sectional area observed in the non-immobilized leg. Integrated analysis revealed that differentially expressed genes (DEGs) and differentially accumulated metabolites (DAMs) were mainly enriched in pathways related to energy metabolism, such as fatty acid metabolism, oxidative phosphorylation (OXPHOS), and glycolysis. These results provide important insights for further research on disuse muscle atrophy.


Subject(s)
Muscle Fibers, Fast-Twitch , Muscular Disorders, Atrophic , Humans , Animals , Muscle Fibers, Fast-Twitch/metabolism , Chickens/genetics , Transcriptome , Muscle, Skeletal/metabolism , Muscular Disorders, Atrophic/metabolism , Muscular Atrophy/metabolism , Metabolome , Mammals/genetics
15.
Can J Physiol Pharmacol ; 102(4): 293-304, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-37976473

ABSTRACT

Sclerostin, a potent inhibitor of the Wnt signaling pathway, plays a critical role in bone homeostasis. Evidence suggests that sclerostin may also be involved in crosstalk between other tissues, including muscle. This pilot study attempted to examine the effects of sclerostin on soleus and extensor digitorum longus (EDL) muscle tissue from male mice that were given continuous recombinant sclerostin injections for 4 weeks. A total of 48 10-week-old male C57BL/6J mice were assigned to be sedentary or perform 1 h treadmill running per day for 4 weeks and administered subcutaneous injections of either saline or recombinant sclerostin 5 days/week. Sclerostin injection led to a reduction in the soleus myosin heavy chain (MHC) I, MHC I/IIA, MHC IIA/X, and MHC IIB cross-sectional area (p < 0.05) with no exercise effects on these reductions. In contrast, there were no effects of sclerostin injections or exercise on the fast-twitch EDL muscle in terms of size, MHC protein, or markers of Wnt signaling. These findings provide preliminary evidence of sclerostin's endocrine role in muscle via decreases in myofiber cross-sectional area, which seems to be independent of fiber type but muscle type-specific. More studies, however, are needed to confirm these preliminary results.


Subject(s)
Muscle Fibers, Fast-Twitch , Muscle, Skeletal , Animals , Male , Mice , Mice, Inbred C57BL , Muscle Fibers, Fast-Twitch/metabolism , Muscle, Skeletal/metabolism , Myosin Heavy Chains/metabolism , Pilot Projects
16.
Can J Physiol Pharmacol ; 102(5): 342-360, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38118126

ABSTRACT

Sarcopenia is a musculoskeletal disease that reduces muscle mass and strength in older individuals. The study investigates the effects of azilsartan (AZL) on skeletal muscle loss in natural sarcopenic rats. Male Sprague-Dawley rats aged 4-6 months and 18-21 months were selected as young-matched control and natural-aged (sarcopenic) rats, respectively. Rats were allocated into young and old control (YC and OC) and young and old AZL treatment (YT and OT) groups, which received vehicles and AZL (8 mg/kg, orally) for 6 weeks. Rats were then sacrificed after muscle function analysis. Serum and gastrocnemius (GN) muscles were isolated for further endpoints. AZL significantly improved muscle grip strength and antioxidant levels in sarcopenic rats. AZL also restored the levels of insulin, testosterone, and muscle biomarkers such as myostatin and creatinine kinase in sarcopenic rats. Furthermore, AZL treatment improved the cellular and ultrastructure of GN muscle and prevented the shift of type II (glycolytic) myofibers to type I (oxidative) myofibers. The results showed that AZL intervention restored protein synthesis in natural sarcopenic rats by increasing p-Akt-1 and decreasing muscle RING-finger protein-1 and tumor necrosis factor alpha immunoexpressions. In conclusion, the present findings showed that AZL could be an effective intervention in treating age-related muscle impairments.


Subject(s)
Aging , Benzimidazoles , Muscle Fibers, Fast-Twitch , Muscle Fibers, Slow-Twitch , Oxadiazoles , Rats, Sprague-Dawley , Sarcopenia , Animals , Sarcopenia/prevention & control , Sarcopenia/metabolism , Sarcopenia/drug therapy , Sarcopenia/pathology , Male , Oxadiazoles/pharmacology , Oxadiazoles/therapeutic use , Aging/drug effects , Rats , Benzimidazoles/pharmacology , Benzimidazoles/therapeutic use , Muscle Fibers, Fast-Twitch/drug effects , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Fast-Twitch/pathology , Muscle Fibers, Slow-Twitch/drug effects , Muscle Fibers, Slow-Twitch/metabolism , Muscle Fibers, Slow-Twitch/pathology , Muscle Strength/drug effects , Muscle, Skeletal/drug effects , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Proto-Oncogene Proteins c-akt/metabolism , Myostatin/metabolism , Antioxidants/pharmacology
17.
Mol Metab ; 79: 101854, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38104652

ABSTRACT

OBJECTIVE: Human skeletal muscle consists of a mixture of slow- and fast-twitch fibers with distinct capacities for contraction mechanics, fermentation, and oxidative phosphorylation. While the divergence in mitochondrial volume favoring slow-twitch fibers is well established, data on the fiber type-specific intrinsic mitochondrial function and morphology are highly limited with existing data mainly being generated in animal models. This highlights the need for more human data on the topic. METHODS: Here, we utilized THRIFTY, a rapid fiber type identification protocol to detect, sort, and pool fast- and slow-twitch fibers within 6 h of muscle biopsy sampling. Respiration of permeabilized fast- and slow-twitch fiber pools was then analyzed with high-resolution respirometry. Using standardized western blot procedures, muscle fiber pools were subsequently analyzed for control proteins and key proteins related to respiratory capacity. RESULTS: Maximal complex I+II respiration was 25% higher in human slow-twitch fibers compared to fast-twitch fibers. However, per mitochondrial volume, the respiratory rate of mitochondria in fast-twitch fibers was approximately 50% higher for complex I+II, which was primarily mediated through elevated complex II respiration. Furthermore, the abundance of complex II protein and proteins regulating cristae structure were disproportionally elevated in mitochondria of the fast-twitch fibers. The difference in intrinsic respiratory rate was not reflected in fatty acid-or complex I respiration. CONCLUSION: Mitochondria of human fast-twitch muscle fibers compensate for their lack of volume by substantially elevating intrinsic respiratory rate through increased reliance on complex II.


Subject(s)
Muscle Contraction , Muscle Fibers, Slow-Twitch , Animals , Humans , Muscle Fibers, Slow-Twitch/metabolism , Muscle Contraction/physiology , Mitochondria/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Skeletal/metabolism
18.
Cell Death Dis ; 14(10): 689, 2023 10 19.
Article in English | MEDLINE | ID: mdl-37857600

ABSTRACT

Skeletal muscle comprises different muscle fibers, including slow- and fast-type muscles, and satellite cells (SCs), which exist in individual muscle fibers and possess different myogenic properties. Previously, we reported that myoblasts (MBs) from slow-type enriched soleus (SOL) had a high potential to self-renew compared with cells derived from fast-type enriched tibialis anterior (TA). However, whether the functionality of myogenic cells in adult muscles is attributed to the muscle fiber in which they reside and whether the characteristics of myogenic cells derived from slow- and fast-type fibers can be distinguished at the genetic level remain unknown. Global gene expression analysis revealed that the myogenic potential of MBs was independent of the muscle fiber type they reside in but dependent on the region of muscles they are derived from. Thus, in this study, proteomic analysis was conducted to clarify the molecular differences between MBs derived from TA and SOL. NADH dehydrogenase (ubiquinone) iron-sulfur protein 8 (Ndufs8), a subunit of NADH dehydrogenase in mitochondrial complex I, significantly increased in SOL-derived MBs compared with that in TA-derived cells. Moreover, the expression level of Ndufs8 in MBs significantly decreased with age. Gain- and loss-of-function experiments revealed that Ndufs8 expression in MBs promoted differentiation, self-renewal, and apoptosis resistance. In particular, Ndufs8 suppression in MBs increased p53 acetylation, followed by a decline in NAD/NADH ratio. Nicotinamide mononucleotide treatment, which restores the intracellular NAD+ level, could decrease p53 acetylation and increase myogenic cell self-renewal ability in vivo. These results suggested that the functional differences in MBs derived from SOL and TA governed by the mitochondrial complex I-encoding gene reflect the magnitude of the decline in SC number observed with aging, indicating that the replenishment of NAD+ is a possible approach for improving impaired cellular functions caused by aging or diseases.


Subject(s)
Muscle Fibers, Fast-Twitch , Satellite Cells, Skeletal Muscle , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Electron Transport Complex I/genetics , Electron Transport Complex I/metabolism , NAD/metabolism , Proteomics , Tumor Suppressor Protein p53/genetics , Tumor Suppressor Protein p53/metabolism , Muscle, Skeletal/metabolism , Satellite Cells, Skeletal Muscle/metabolism
19.
Exp Clin Endocrinol Diabetes ; 131(11): 589-594, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37875146

ABSTRACT

Skeletal muscle is the tissue directly involved in insulin-stimulated glucose uptake. Glucose is the primary energy substrate for contracting muscles, and proper metabolism of glucose is essential for health. Contractile activity and the associated Ca2+signaling regulate functional capacity and muscle mass. A high concentration of Ca2+and the presence of calmodulin (CaM) leads to the activation of calcineurin (CaN), a protein with serine-threonine phosphatase activity. The signaling pathway linked with CaN and transcription factors like the nuclear factor of activated T cells (NFAT) is essential for skeletal muscle development and reprogramming of fast-twitch to slow-twitch fibers. CaN activation may promote metabolic adaptations in muscle cells, resulting in better insulin-stimulated glucose transport. The molecular mechanisms underlying the altered insulin response remain unclear. The role of the CaN/NFAT pathway in regulating skeletal muscle hypertrophy is better described than its involvement in the pathogenesis of insulin resistance. Thus, there are opportunities for future research in that field. This review presents the role of CaN/NFAT signaling and suggests the relationship with insulin-resistant muscles.


Subject(s)
Insulin Resistance , Humans , Calmodulin/metabolism , Calcineurin/metabolism , Calcium/metabolism , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Slow-Twitch/metabolism , Muscle, Skeletal/metabolism , NFATC Transcription Factors/metabolism , Signal Transduction/physiology , Insulin/metabolism , Glucose/metabolism
20.
Life Sci Alliance ; 6(10)2023 10.
Article in English | MEDLINE | ID: mdl-37550008

ABSTRACT

The composition of fiber types within skeletal muscle impacts the tissue's physiological characteristics and susceptibility to disease and ageing. In vitro systems should therefore account for fiber-type composition when modelling muscle conditions. To induce fiber specification in vitro, we designed a quantitative contractility assay based on optogenetics and particle image velocimetry. We submitted cultured myotubes to long-term intermittent light-stimulation patterns and characterized their structural and functional adaptations. After several days of in vitro exercise, myotubes contract faster and are more resistant to fatigue. The enhanced contractile functionality was accompanied by advanced maturation such as increased width and up-regulation of neuron receptor genes. We observed an up-regulation in the expression of fast myosin heavy-chain isoforms, which induced a shift towards a fast-twitch phenotype. This long-term in vitro exercise strategy can be used to study fiber specification and refine muscle disease modelling.


Subject(s)
Muscle Fibers, Fast-Twitch , Muscle Fibers, Slow-Twitch , Muscle Fibers, Fast-Twitch/chemistry , Muscle Fibers, Fast-Twitch/metabolism , Muscle Fibers, Slow-Twitch/chemistry , Muscle Fibers, Slow-Twitch/metabolism , Optogenetics , Muscle Fibers, Skeletal , Muscle, Skeletal/metabolism
SELECTION OF CITATIONS
SEARCH DETAIL