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1.
Nutrients ; 14(17)2022 Aug 27.
Article in English | MEDLINE | ID: mdl-36079790

ABSTRACT

Home-based resistance exercise (RE) has become increasingly prevalent, but its effects on protein metabolism are understudied. We tested the effect of an essential amino acid formulation (EAA+: 9 g EAAs, 3 g leucine) and branched-chain amino acids (BCAAs: 6 g BCAAs, 3 g leucine), relative to a carbohydrate (CHO) placebo, on exogenous leucine retention and myofibrillar protein breakdown following dynamic bodyweight RE in a home-based setting. Twelve recreationally active adults (nine male, three female) participated in a double-blind, placebo-controlled, crossover study with four trial conditions: (i) RE and EAA+ (EX-EAA+); (ii) RE and BCAAs (EX-BCAA); (iii) RE and CHO placebo (EX-CHO); and (iv) rest and CHO placebo (REST-CHO). Total exogenous leucine oxidation and retention (estimates of whole-body anabolism) and urinary 3-methylhistidine:creatinine ratio (3MH:Cr; estimate of muscle catabolism) were assessed over 5 h post-supplement. Total exogenous leucine oxidation and retention in EX-EAA+ and EX-BCAA did not significantly differ (p = 0.116) but were greater than EX-CHO (p < 0.01). There was a main effect of condition on urinary 3MH:Cr (p = 0.034), with post hoc analysis revealing a trend (p = 0.096) for reduced urinary 3MH:Cr with EX-EAA+ (32%) compared to EX-CHO. By direct comparison, urinary 3MH:Cr was significantly lower (23%) in EX-EAA+ than EX-BCAA (p = 0.026). In summary, the ingestion of EAA+ or BCAA provided leucine that was ~60% retained for protein synthesis following home-based bodyweight RE, but EAA+ most effectively attenuated myofibrillar protein breakdown.


Subject(s)
Amino Acids, Essential , Leucine , Muscle Proteins , Myofibrils , Resistance Training , Amino Acids, Essential/administration & dosage , Cross-Over Studies , Double-Blind Method , Eating , Female , Humans , Leucine/metabolism , Male , Muscle Proteins/metabolism , Myofibrils/metabolism , Young Adult
2.
Nutrients ; 13(11)2021 Nov 09.
Article in English | MEDLINE | ID: mdl-34836236

ABSTRACT

Protein supplementation is a commonly employed strategy to enhance resistance training adaptations. However, little research to date has examined if peanut protein supplementation is effective in this regard. Thus, we sought to determine if peanut protein supplementation (PP; 75 total g/d of powder providing 30 g/d protein, >9.2 g/d essential amino acids, ~315 kcal/d) affected resistance training adaptations in college-aged adults. Forty-seven college-aged adults (n = 34 females, n = 13 males) with minimal prior training experience were randomly assigned to a PP group (n = 18 females, n = 5 males) or a non-supplement group (CTL; n = 16 females, n = 8 males) (ClinicalTrials.gov trial registration NCT04707963; registered 13 January 2021). Body composition and strength variables were obtained prior to the intervention (PRE). Participants then completed 10 weeks of full-body resistance training (twice weekly) and PP participants consumed their supplement daily. POST measures were obtained 72 h following the last training bout and were identical to PRE testing measures. Muscle biopsies were also obtained at PRE, 24 h following the first exercise bout, and at POST. The first two biopsy time points were used to determine myofibrillar protein synthesis (MyoPS) rates in response to a naïve training bout with or without PP, and the PRE and POST biopsies were used to determine muscle fiber adaptations in females only. Dependent variables were analyzed in males and females separately using two-way (supplement × time) repeated measures ANOVAs, unless otherwise stated. The 24-h integrated MyoPS response to the first naïve training bout was similar between PP and CTL participants (dependent samples t-test p = 0.759 for females, p = 0.912 for males). For males, the only significant supplement × time interactions were for DXA-derived fat mass (interaction p = 0.034) and knee extensor peak torque (interaction p = 0.010); these variables significantly increased in the CTL group (p < 0.05), but not the PP group. For females, no significant supplement × time interactions existed, although interactions for whole body lean tissue mass (p = 0.088) and vastus lateralis thickness (p = 0.099) approached significance and magnitude increases in these characteristics favored the PP versus CTL group. In summary, this is the second study to determine the effects of PP supplementation on resistance training adaptations. While PP supplementation did not significantly enhance training adaptations, the aforementioned trends in females, the limited n-size in males, and this being the second PP supplementation study warrant more research to determine if different PP dosing strategies are more effective than the current approach.


Subject(s)
Adaptation, Physiological , Arachis/chemistry , Dietary Supplements , Plant Proteins/pharmacology , Resistance Training , Adaptation, Physiological/drug effects , Amino Acids/analysis , Body Composition , Eating , Female , Humans , Male , Muscle Strength/drug effects , Muscle, Skeletal/diagnostic imaging , Myofibrils/metabolism , Protein Biosynthesis , Thigh/diagnostic imaging , Young Adult
3.
J Mol Cell Cardiol ; 150: 77-90, 2021 01.
Article in English | MEDLINE | ID: mdl-33148509

ABSTRACT

BACKGROUND: The clinical outcome of hypertrophic cardiomyopathy patients is not only determined by the disease-causing mutation but influenced by a variety of disease modifiers. Here, we defined the role of the mutation location and the mutant protein dose of the troponin T mutations I79N, R94C and R278C. METHODS AND RESULTS: We determined myofilament function after troponin exchange in permeabilized single human cardiomyocytes as well as in cardiac patient samples harboring the R278C mutation. Notably, we found that a small dose of mutant protein is sufficient for the maximal effect on myofilament Ca2+-sensitivity for the I79N and R94C mutation while the mutation location determines the magnitude of this effect. While incorporation of I79N and R94C increased myofilament Ca2+-sensitivity, incorporation of R278C increased Ca2+-sensitivity at low and intermediate dose, while it decreased Ca2+-sensitivity at high dose. All three cTnT mutants showed reduced thin filament binding affinity, which coincided with a relatively low maximal exchange (50.5 ± 5.2%) of mutant troponin complex in cardiomyocytes. In accordance, 32.2 ± 4.0% mutant R278C was found in two patient samples which showed 50.0 ± 3.7% mutant mRNA. In accordance with studies that showed clinical variability in patients with the exact same mutation, we observed variability on the functional single cell level in patients with the R278C mutation. These differences in myofilament properties could not be explained by differences in the amount of mutant protein. CONCLUSIONS: Using troponin exchange in single human cardiomyocytes, we show that TNNT2 mutation-induced changes in myofilament Ca2+-sensitivity depend on mutation location, while all mutants show reduced thin filament binding affinity. The specific mutation-effect observed for R278C could not be translated to myofilament function of cardiomyocytes from patients, and is most likely explained by other (post)-translational troponin modifications. Overall, our studies illustrate that mutation location underlies variability in myofilament Ca2+-sensitivity, while only the R278C mutation shows a highly dose-dependent effect on myofilament function.


Subject(s)
Cardiomyopathy, Hypertrophic/genetics , Cardiomyopathy, Hypertrophic/pathology , Mutation/genetics , Myocytes, Cardiac/pathology , Myofibrils/pathology , Troponin T/genetics , Adolescent , Adult , Aged , Calcium/metabolism , Female , Humans , Male , Middle Aged , Mutant Proteins/metabolism , Myocytes, Cardiac/metabolism , Myofibrils/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism
4.
Int J Mol Sci ; 21(21)2020 Oct 31.
Article in English | MEDLINE | ID: mdl-33142923

ABSTRACT

Heme released from red blood cells targets a number of cell components including the cytoskeleton. The purpose of the present study was to determine the impact of free heme (20-300 µM) on human skeletal muscle fibres made available during orthopedic surgery. Isometric force production and oxidative protein modifications were monitored in permeabilized skeletal muscle fibre segments. A single heme exposure (20 µM) to muscle fibres decreased Ca2+-activated maximal (active) force (Fo) by about 50% and evoked an approximately 3-fold increase in Ca2+-independent (passive) force (Fpassive). Oxidation of sulfhydryl (SH) groups was detected in structural proteins (e.g., nebulin, α-actinin, meromyosin 2) and in contractile proteins (e.g., myosin heavy chain and myosin-binding protein C) as well as in titin in the presence of 300 µM heme. This SH oxidation was not reversed by dithiothreitol (50 mM). Sulfenic acid (SOH) formation was also detected in the structural proteins (nebulin, α-actinin, meromyosin). Heme effects on SH oxidation and SOH formation were prevented by hemopexin (Hpx) and α1-microglobulin (A1M). These data suggest that free heme has a significant impact on human skeletal muscle fibres, whereby oxidative alterations in structural and contractile proteins limit contractile function. This may explain and or contribute to the weakness and increase of skeletal muscle stiffness in chronic heart failure, rhabdomyolysis, and other hemolytic diseases. Therefore, therapeutic use of Hpx and A1M supplementation might be effective in preventing heme-induced skeletal muscle alterations.


Subject(s)
Cysteine/metabolism , Heme/pharmacology , Muscle Contraction/drug effects , Muscle Fibers, Skeletal/drug effects , Muscle Proteins/metabolism , Myofibrils/drug effects , Amino Acid Sequence , Calcium/metabolism , Cysteine/chemistry , Humans , Mass Spectrometry/methods , Muscle Contraction/physiology , Muscle Fibers, Skeletal/metabolism , Muscle Fibers, Skeletal/pathology , Myofibrils/metabolism , Myofibrils/pathology , Oxidation-Reduction
5.
J Biol Chem ; 295(41): 14100-14110, 2020 10 09.
Article in English | MEDLINE | ID: mdl-32788211

ABSTRACT

Actin's interactions with myosin and other actin-binding proteins are essential for cellular viability in numerous cell types, including muscle. In a previous high-throughput time-resolved FRET (TR-FRET) screen, we identified a class of compounds that bind to actin and affect actomyosin structure and function. For clinical utility, it is highly desirable to identify compounds that affect skeletal and cardiac muscle differently. Because actin is more highly conserved than myosin and most other muscle proteins, most such efforts have not targeted actin. Nevertheless, in the current study, we tested the specificity of the previously discovered actin-binding compounds for effects on skeletal and cardiac α-actins as well as on skeletal and cardiac myofibrils. We found that a majority of these compounds affected the transition of monomeric G-actin to filamentous F-actin, and that several of these effects were different for skeletal and cardiac actin isoforms. We also found that several of these compounds affected ATPase activity differently in skeletal and cardiac myofibrils. We conclude that these structural and biochemical assays can be used to identify actin-binding compounds that differentially affect skeletal and cardiac muscles. The results of this study set the stage for screening of large chemical libraries for discovery of novel compounds that act therapeutically and specifically on cardiac or skeletal muscle.


Subject(s)
Actins , Muscle, Skeletal/metabolism , Myocardium/metabolism , Myofibrils/metabolism , Myosins , Small Molecule Libraries , Actins/antagonists & inhibitors , Actins/chemistry , Actins/metabolism , Animals , Cattle , Drug Evaluation, Preclinical , Fluorescence Resonance Energy Transfer , Myosins/chemistry , Myosins/metabolism , Rabbits
6.
Nutrients ; 12(5)2020 Apr 27.
Article in English | MEDLINE | ID: mdl-32349353

ABSTRACT

Skeletal muscle myofibrillar protein synthesis (MPS) increases in response to protein feeding and to resistance exercise (RE), where each stimuli acts synergistically when combined. The efficacy of plant proteins such as potato protein (PP) isolate to stimulate MPS is unknown. We aimed to determine the effects of PP ingestion on daily MPS with and without RE in healthy women. In a single blind, parallel-group design, 24 young women (21 ± 3 years, n = 12/group) consumed a weight-maintaining baseline diet containing 0.8 g/kg/d of protein before being randomized to consume either 25 g of PP twice daily (1.6 g/kg/d total protein) or a control diet (CON) (0.8 g/kg/d total protein) for 2 wks. Unilateral RE (~30% of maximal strength to failure) was performed thrice weekly with the opposite limb serving as a non-exercised control (Rest). MPS was measured by deuterated water ingestion at baseline, following supplementation (Rest), and following supplementation + RE (Exercise). Ingestion of PP stimulated MPS by 0.14 ± 0.09 %/d at Rest, and by 0.32 ± 0.14 %/d in the Exercise limb. MPS was significantly elevated by 0.20 ± 0.11 %/d in the Exercise limb in CON (P = 0.008). Consuming PP to increase protein intake to levels twice the recommended dietary allowance for protein augmented rates of MPS. Performance of RE stimulated MPS regardless of protein intake. PP is a high-quality, plant-based protein supplement that augments MPS at rest and following RE in healthy young women.


Subject(s)
Dietary Proteins/administration & dosage , Dietary Supplements , Exercise/physiology , Muscle Proteins/metabolism , Muscle, Skeletal/metabolism , Myofibrils/metabolism , Nutritional Physiological Phenomena/physiology , Plant Proteins/administration & dosage , Resistance Training , Rest/physiology , Solanum tuberosum/chemistry , Adolescent , Adult , Extremities , Female , Humans , Recommended Dietary Allowances , Young Adult
7.
Nutrients ; 12(4)2020 Apr 11.
Article in English | MEDLINE | ID: mdl-32290521

ABSTRACT

BACKGROUND: Leucine-enriched essential amino acids (LEAAs) acutely enhance post-exercise myofibrillar protein synthesis (MyoPS), which has been suggested to be important for muscle repair and recovery. However, the ability of LEAAs to concurrently enhance MyoPS and muscle damage recovery in free-living humans has not been studied. METHODS: In a randomized, double-blind, placebo-controlled, parallel-group design, twenty recreationally active males consuming a controlled diet (1.2 g/kg/d of protein) were supplemented thrice daily with 4 g of LEAAs (containing 1.6 g leucine) or isocaloric placebo for four days following an acute bout of lower-body resistance exercise (RE). MyoPS at rest and integrated over 96 h of recovery was measured by D2O. Isometric and isokinetic torque, muscle soreness, Z-band streaming, muscle heat shock protein (HSP) 25 and 72, plasma creatine kinase (CK), and plasma interleukin-6 (IL-6) were measured over 96 h post-RE to assess various direct and indirect markers of muscle damage. RESULTS: Integrated MyoPS increased ~72% over 96 h after RE (p < 0.05), with no differences between groups (p = 0.98). Isometric, isokinetic, and total peak torque decreased ~21% by 48 h after RE (p < 0.05), whereas total peak torque was ~10% greater overall during recovery in LEAAs compared to placebo (p < 0.05). There were moderate to large effects for peak torque in favour of LEAAs. Muscle soreness increased during recovery with no statistical differences between groups but small to moderate effects in favour of LEAAs that correlated with changes in peak torque. Plasma CK, plasma IL-6, and muscle HSP25 increased after RE (p < 0.05) but were not significantly different between groups (p ≥ 0.13). Consistent with a trend toward attenuated Z-band streaming in LEAAs (p = 0.07), muscle HSP72 expression was lower (p < 0.05) during recovery in LEAAs compared with placebo. There were no correlations between MyoPS and any measures of muscle damage (p ≥ 0.37). CONCLUSION: Collectively, our data suggest that LEAAs moderately attenuated muscle damage without concomitant increases in integrated MyoPS in the days following an acute bout of resistance exercise in free-living recreationally active men.


Subject(s)
Amino Acids, Essential/pharmacology , Dietary Supplements , Exercise/physiology , Leucine/pharmacology , Muscle Proteins/metabolism , Muscle, Skeletal/metabolism , Muscle, Skeletal/physiology , Myofibrils/metabolism , Protein Biosynthesis , Sports Nutritional Physiological Phenomena/physiology , Adult , Amino Acids, Essential/administration & dosage , Double-Blind Method , Gene Expression , HSP72 Heat-Shock Proteins/metabolism , Humans , Leucine/administration & dosage , Male , Young Adult
8.
Nutrients ; 12(3)2020 Mar 21.
Article in English | MEDLINE | ID: mdl-32245197

ABSTRACT

BACKGROUND: The aim of this study was to investigate the effect of whey protein supplementation on myofibrillar protein synthesis (myoPS) and muscle recovery over a 7-d period of intensified resistance training (RT). METHODS: In a double-blind randomised parallel group design, 16 resistance-trained men aged 18 to 35 years completed a 7-d RT protocol, consisting of three lower-body RT sessions on non-consecutive days. Participants consumed a controlled diet (146 kJ·kg-1·d-1, 1.7 g·kg-1·d-1 protein) with either a whey protein supplement or an isonitrogenous control (0.33 g·kg-1·d-1 protein). To measure myoPS, 400 ml of deuterium oxide (D2O) (70 atom %) was ingested the day prior to starting the study and m. vastus lateralis biopsies were taken before and after RT-intervention. Myofibrillar fractional synthetic rate (myoFSR) was calculated via deuterium labelling of myofibrillar-bound alanine, measured by gas chromatography-pyrolysis-isotope ratio mass spectrometry (GC-Pyr-IRMS). Muscle recovery parameters (i.e., countermovement jump height, isometric-squat force, muscle soreness and serum creatine kinase) were assessed daily. RESULTS: MyoFSR PRE was 1.6 (0.2) %∙d-1 (mean (SD)). Whey protein supplementation had no effect on myoFSR (p = 0.771) or any recovery parameter (p = 0.390-0.989). CONCLUSIONS: Over an intense 7-d RT protocol, 0.33 g·kg-1·d-1 of supplemental whey protein does not enhance day-to-day measures of myoPS or postexercise recovery in resistance-trained men.


Subject(s)
Dietary Supplements , Muscle, Skeletal/metabolism , Myofibrils/metabolism , Protein Biosynthesis , Resistance Training , Whey Proteins/administration & dosage , Adolescent , Adult , Biomarkers , Gene Expression , Humans , Male , Muscle Strength , Young Adult
9.
Med Sci Sports Exerc ; 52(6): 1394-1403, 2020 06.
Article in English | MEDLINE | ID: mdl-31895298

ABSTRACT

INTRODUCTION: Protein ingestion and the ensuing hyperaminoacidemia stimulates skeletal muscle protein synthesis in the postexercise period. This response facilitates muscle remodeling, which is important during intensified training. The aim of this study was to determine whether supplementation with α-lactalbumin (LA), with high leucine and tryptophan contents, would improve responses to short periods of intensified aerobic training compared with supplementation with an isonitrogenous quantity of collagen peptides (CP). METHODS: Endurance-trained participants (5 male, 6 female, 24 ± 4 yr, V˙O2 = 53.2 ± 9.1 mL·kg·min, peak power output = 320 ± 48 W; means ± SD) consumed a controlled diet (1.0 g·kg·d protein) and refrained from habitual training for 11 d while taking part in this double-blind randomized, crossover trial. The two intervention phases, which consisted of brief intensified training (4 × 4-min cycling intervals at 70% of peak power output on 3 consecutive days) combined with the ingestion of LA or CP supplements after exercise (20 g) and before sleep (40 g), were separated by 4 d of washout without protein supplementation (i.e., the control phase). In response to each phase, myofibrillar (MyoPS), sarcoplasmic protein synthesis (SarcPS) rates (via H2O ingestion) and parameters of sleep quality were measured. RESULTS: LA ingestion increased plasma leucine (P < 0.001) and tryptophan concentrations (P < 0.001) relative to CP. Intensified training increased MyoPS and SarcPS above the washout phase in LA- and CP-supplemented phases (P < 0.01), with increases being 13% ± 5% and 5% ± 7% greater with LA than CP for MyoPS (P < 0.01) and SarcPS, respectively (P < 0.01). CONCLUSIONS: Despite an isonitrogenous diet, protein synthesis was enhanced to a greater extent when trained participants consumed LA compared with CP during intensified aerobic training, suggesting that protein quality is an important consideration for endurance-trained athletes aiming to augment adaption to exercise training.


Subject(s)
Collagen/administration & dosage , Dietary Supplements , Exercise/physiology , Lactalbumin/administration & dosage , Muscle Proteins/metabolism , Muscle, Skeletal/metabolism , Physical Conditioning, Human/physiology , Biological Availability , Female , Humans , Leucine/administration & dosage , Leucine/blood , Male , Myofibrils/metabolism , Sarcoplasmic Reticulum/metabolism , Sleep/physiology , Tryptophan/administration & dosage , Tryptophan/blood , Young Adult
10.
J Physiol ; 597(22): 5429-5443, 2019 11.
Article in English | MEDLINE | ID: mdl-31541562

ABSTRACT

KEY POINTS: Dietary nitrate supplementation increases plasma nitrite concentration, which provides an oxygen-independent source of nitric oxide and can delay skeletal muscle fatigue. Nitrate supplementation has been shown to increase myofibre calcium release and force production in mouse skeletal muscle during contractions at a supra-physiological oxygen tension, but it is unclear whether nitrite exposure can delay fatigue development and improve myofibre calcium handling at a near-physiological oxygen tension. Single mouse muscle fibres acutely treated with nitrite had a lower force and cytosolic calcium concentration during single non-fatiguing contractions at a near-physiological oxygen tension. Nitrite treatment delayed fatigue development during repeated fatiguing isometric contractions at near-physiological, but not at supra-physiological, oxygen tension in combination with better maintenance of myofilament calcium sensitivity and sarcoplasmic reticulum calcium pumping. These findings improve understanding of the mechanisms by which increased skeletal muscle nitrite exposure might be ergogenic and imply that this is related to improved calcium handling. ABSTRACT: Dietary nitrate (NO3- ) supplementation, which increases plasma nitrite (NO2- ) concentration, has been reported to attenuate skeletal muscle fatigue development. Sarcoplasmic reticulum (SR) calcium (Ca2+ ) release is enhanced in isolated single skeletal muscle fibres following NO3- supplementation or NO2- incubation at a supra-physiological PO2 but it is unclear whether NO2- incubation can alter Ca2+ handling and fatigue development at a near-physiological PO2 . We hypothesised that NO2- treatment would improve Ca2+ handling and delay fatigue at a physiological PO2 in intact single mouse skeletal muscle fibres. Each muscle fibre was perfused with Tyrode solution pre-equilibrated with either 20% ( PO2 ∼150 Torr) or 2% O2 ( PO2  = 15.6 Torr) in the absence and presence of 100 µM NaNO2 . At supra-physiological PO2 (i.e. 20% O2 ), time to fatigue was lowered by 34% with NaNO2 (control: 257 ± 94 vs. NaNO2 : 159 ± 46 s, Cohen's d = 1.63, P < 0.05), but extended by 21% with NaNO2 at 2% O2 (control: 308 ± 217 vs. NaNO2 : 368 ± 242 s, d = 1.14, P < 0.01). During the fatiguing contraction protocol completed with NaNO2 at 2% O2 , peak cytosolic Ca2+ concentration ([Ca2+ ]c ) was not different (P > 0.05) but [Ca2+ ]c accumulation between contractions was lower, concomitant with a greater SR Ca2+ pumping rate (P < 0.05) compared to the control condition. These results demonstrate that increased exposure to NO2- blunts fatigue development at near-physiological, but not at supra-physiological, PO2 through enhancing SR Ca2+ pumping rate in single skeletal muscle fibres. These findings extend our understanding of the mechanisms by which increased NO2- exposure can mitigate skeletal muscle fatigue development.


Subject(s)
Muscle Fatigue/drug effects , Muscle Fibers, Skeletal/drug effects , Muscle Fibers, Skeletal/metabolism , Oxygen/metabolism , Sodium Nitrite/pharmacology , Animals , Calcium/metabolism , Male , Mice , Mice, Inbred C57BL , Muscle Contraction/drug effects , Myofibrils/drug effects , Myofibrils/metabolism , Nitric Oxide/metabolism , Sarcoplasmic Reticulum/drug effects , Sarcoplasmic Reticulum/metabolism , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism
11.
J Appl Physiol (1985) ; 127(1): 71-80, 2019 07 01.
Article in English | MEDLINE | ID: mdl-31095464

ABSTRACT

Patients with rheumatoid arthritis (RA) frequently suffer from muscle weakness. We examined whether eccentric training prevents skeletal muscle weakness in adjuvant-induced arthritis (AIA) rat, a widely used animal model for RA. AIA was induced in the knees of Wistar rats by injection of complete Freund's adjuvant. To induce eccentric contractions (ECCs), neuromuscular electrical stimulation (45 V) was applied to the plantar flexor muscles simultaneously with forced dorsiflexion of the ankle joint (0-40°) and was given every 6 s. ECC exercise was applied every other day for a total of 11 sessions and consisted of 4 sets of 5 contractions. There was a significant reduction in in vitro maximum Ca2+-activated force in skinned fibers in gastrocnemius muscle from AIA rats. These changes were associated with reduced expression levels of contractile proteins (i.e., myosin and actin), increased levels of inflammation redox stress-related biomarkers (i.e., TNF-α, malondialdehyde-protein adducts, NADPH oxidase 2, and neuronal nitric oxide synthase), and autolyzed active calpain-1 in AIA muscles. ECC training markedly enhanced the steady-state levels of αB-crystallin, a small heat shock protein, and its binding to the myofibrils and prevented the AIA-induced myofibrillar dysfunction, reduction in contractile proteins, and inflammation-oxidative stress insults. Our findings demonstrate that ECC training preserves myofibrillar function without muscle damage in AIA rats, which is at least partially attributable to the protective effect of αB-crystallin on the myofibrils against oxidative stress-mediated protein degeneration. Thus ECC training can be a safe and effective intervention, counteracting the loss of muscle strength in RA patients. NEW & NOTEWORTHY Eccentric contractions (ECCs) are regarded as an effective way to increase muscle strength. No studies, however, assess safety and effectiveness of ECC training on muscle weakness associated with rheumatoid arthritis. Here, we used adjuvant-induced arthritis (AIA) rats to demonstrate that ECC training prevents intrinsic contractile dysfunction without muscle damage in AIA rats, which may be attributed to the protective effect of αB-crystallin on the myofibrils against inflammation-oxidative stress insults.


Subject(s)
Arthritis/metabolism , Muscle Strength/physiology , Muscle, Skeletal/metabolism , Myofibrils/metabolism , Physical Conditioning, Animal/physiology , alpha-Crystallin B Chain/metabolism , Actins/metabolism , Animals , Arthritis/physiopathology , Calcium/metabolism , Disease Models, Animal , Heat-Shock Proteins/metabolism , Male , Muscle Contraction/physiology , Myosins/metabolism , NADPH Oxidases/metabolism , Oxidative Stress/physiology , Rats , Rats, Wistar
12.
Food Chem ; 294: 316-325, 2019 Oct 01.
Article in English | MEDLINE | ID: mdl-31126469

ABSTRACT

The present study studied the effects of fish gelatin (FG) incorporated with grape seed extract (GSE) through vacuum impregnation (VI) on refrigerated tilapia (Oreochromis niloticus) fillets over 12 days. The VI of FG-GSE significantly improved the quality of the fish by decreasing drip loss, texture changes, and microbial survival. It also delayed protein oxidation by inhibiting the formation of disulphide bonds and carbonyl groups, and maintaining a higher sulfhydryl content and Ca2+-ATPase activity. Regarding myofibril degradation, FG-GSE maintained their secondary structure by increasing the ratio of α-helices and ß-sheets (70.88-75.51%). Atomic force microscopy further revealed that the FG-GSE coating preserved the myofibril nanostructure by maintaining their length, width, and height. Overall, the synergistic effects of VI with 3% FG and 0.9% GSE suggested a promising approach for fillet preservation.


Subject(s)
Fish Proteins/chemistry , Gelatin/chemistry , Grape Seed Extract/chemistry , Animals , Calcium-Transporting ATPases/metabolism , Fish Proteins/metabolism , Gram-Negative Bacteria/drug effects , Grape Seed Extract/pharmacology , Hardness , Microscopy, Atomic Force , Myofibrils/metabolism , Oxidation-Reduction , Protein Structure, Secondary , Seafood/analysis , Sulfhydryl Compounds/metabolism , Tilapia/metabolism , Vacuum
13.
Med Sci Sports Exerc ; 51(10): 2098-2108, 2019 10.
Article in English | MEDLINE | ID: mdl-31083045

ABSTRACT

Carnosine (ß-alanyl-L-histidine) plays an important role in exercise performance and skeletal muscle homeostasis. Dietary supplementation with the rate-limiting precursor ß-alanine leads to an increase in skeletal muscle carnosine content, which further potentiates its effects. There is significant interest in carnosine and ß-alanine across athletic and clinical populations. Traditionally, attention has been given to performance outcomes with less focus on the underlying mechanism(s). Putative physiological roles in human skeletal muscle include acting as an intracellular pH buffer, modulating energy metabolism, regulating Ca handling and myofilament sensitivity, and scavenging of reactive species. Emerging evidence shows that carnosine could also act as a cytoplasmic Ca-H exchanger and form stable conjugates with exercise-induced reactive aldehydes. The enigmatic nature of carnosine means there is still much to learn regarding its actions and applications in exercise, health, and disease. In this review, we examine the research relating to each physiological role attributed to carnosine, and its precursor ß-alanine, in exercising human skeletal muscle.


Subject(s)
Carnosine/metabolism , Dietary Supplements , Exercise/physiology , Muscle, Skeletal/metabolism , beta-Alanine/metabolism , Calcium/metabolism , Energy Metabolism , Glycolysis , Humans , Hydrogen-Ion Concentration , Muscle Cells/metabolism , Muscle Contraction/physiology , Myofibrils/metabolism , Oxidation-Reduction , Reactive Oxygen Species/metabolism
14.
Med Sci Sports Exerc ; 51(9): 1828-1837, 2019 09.
Article in English | MEDLINE | ID: mdl-30933004

ABSTRACT

Cancer cachexia, an unintentional body weight loss due to cancer, affects patients' survival, quality of life, and response to chemotherapy. Although exercise training is a promising intervention to prevent and treat cancer cachexia, our mechanistic understanding of cachexia's effect on contraction-induced muscle adaptation has been limited to the examination of male mice. Because sex can affect muscle regeneration and response to contraction in humans and mice, the effect of cachexia on the female response to eccentric contraction warrants further investigation. PURPOSE: The purpose of this study was to determine whether high-frequency electric stimulation (HFES) could attenuate muscle mass loss during the progression of cancer cachexia in female tumor-bearing mice. METHODS: Female wild-type (WT) and Apc (Min) mice (16-18 wk old) performed either repeated bouts or a single bout of HFES (10 sets of 6 repetitions, ~22 min), which eccentrically contracts the tibialis anterior (TA) muscle. TA myofiber size, oxidative capacity, anabolic signaling, and catabolic signaling were examined. RESULTS: Min had reduced TA muscle mass and type IIa and type IIb fiber sizes compared with WT. HFES increased the muscle weight and the mean cross-sectional area of type IIa and type IIb fibers in WT and Min mice. HFES increased mTOR signaling and myofibrillar protein synthesis and attenuated cachexia-induced AMPK activity. HFES attenuated the cachexia-associated decrease in skeletal muscle oxidative capacity. CONCLUSION: HFES in female mice can activate muscle protein synthesis through mTOR signaling and repeated bouts of contraction can attenuate cancer-induced muscle mass loss.


Subject(s)
Cachexia/physiopathology , Cachexia/therapy , Electric Stimulation Therapy/methods , Muscle, Skeletal/physiopathology , Animals , Body Weight , Cachexia/etiology , Creatine Kinase/blood , Disease Models, Animal , Female , Humans , Mice , Muscle Contraction/physiology , Muscle Proteins/biosynthesis , Muscle, Skeletal/pathology , Myofibrils/metabolism , Myofibrils/pathology , Neoplasms/complications , Organ Size , Signal Transduction/physiology , TOR Serine-Threonine Kinases/physiology
15.
FASEB J ; 33(3): 4586-4597, 2019 03.
Article in English | MEDLINE | ID: mdl-30629458

ABSTRACT

Omega-3 (n-3) fatty acid supplementation enhances muscle protein synthesis and muscle size. Whether n-3 fatty acid supplementation attenuates human muscle disuse atrophy is unknown. We determined the influence of n-3 fatty acid supplementation on muscle size, mass, and integrated rates of myofibrillar protein synthesis (MyoPS) following 2 wk of muscle disuse and recovery in women. Twenty women (BMI = 23.0 ± 2.3 kg/m2, age = 22 ± 3 yr) underwent 2 wk of unilateral limb immobilization followed by 2 wk of return to normal activity. Starting 4 wk prior to immobilization, participants consumed either 5 g/d of n-3 fatty acid or an isoenergetic quantity of sunflower oil (control). Muscle size and mass were measured pre- and postimmobilization, and after recovery. Serial muscle biopsies were obtained to measure integrated (daily) MyoPS. Following immobilization, the decline in muscle volume was greater in the control group compared to the n-3 fatty acid group (14 vs. 8%, P < 0.05) and was not different from preimmobilization at recovery in the n-3 fatty acid group; however, it was still lower in the control group ( P < 0.05). Muscle mass was reduced in the control group only ( P < 0.05). MyoPS was higher in the n-3 group compared with the control group at all times ( P < 0.05). We conclude that n-3 fatty acid supplementation attenuates skeletal muscle disuse atrophy in young women, which may be mediated by higher rates of MyoPS.-McGlory, C., Gorissen, S. H. M., Kamal, M., Bahniwal, R., Hector, A. J., Baker, S. K., Chabowski, A., Phillips, S. M. Omega-3 fatty acid supplementation attenuates skeletal muscle disuse atrophy during two weeks of unilateral leg immobilization in healthy young women.


Subject(s)
Dietary Fats/therapeutic use , Dietary Supplements , Fatty Acids, Omega-3/therapeutic use , Immobilization/adverse effects , Muscular Atrophy/prevention & control , Adult , Biopsy , Body Composition/drug effects , Body Water , Dietary Fats/administration & dosage , Double-Blind Method , Fatty Acids, Omega-3/administration & dosage , Fatty Acids, Omega-3/pharmacology , Female , Gene Expression Regulation/drug effects , Humans , Knee/physiology , Muscle Proteins/biosynthesis , Muscle Proteins/genetics , Muscle Strength/drug effects , Muscular Atrophy/etiology , Myofibrils/metabolism , Organ Size/drug effects , Phospholipids/analysis , Phospholipids/blood , Quadriceps Muscle/drug effects , Quadriceps Muscle/metabolism , Quadriceps Muscle/pathology , Reference Values , Sunflower Oil/administration & dosage , Young Adult
16.
Nat Commun ; 9(1): 4849, 2018 11 19.
Article in English | MEDLINE | ID: mdl-30451841

ABSTRACT

Myotubular myopathy (MTM) is a severe X-linked disease without existing therapies. Here, we show that tamoxifen ameliorates MTM-related histopathological and functional abnormalities in mice, and nearly doubles survival. The beneficial effects of tamoxifen are mediated primarily via estrogen receptor signaling, as demonstrated through in vitro studies and in vivo phenotypic rescue with estradiol. RNA sequencing and protein expression analyses revealed that rescue is mediated in part through post-transcriptional reduction of dynamin-2, a known MTM modifier. These findings demonstrate an unexpected ability of tamoxifen to improve the murine MTM phenotype, providing preclinical evidence to support clinical translation.


Subject(s)
Dynamin II/genetics , Muscle, Skeletal/drug effects , Myopathies, Structural, Congenital/drug therapy , Protective Agents/pharmacology , Protein Tyrosine Phosphatases, Non-Receptor/genetics , Receptors, Estrogen/genetics , Tamoxifen/pharmacology , Animals , Disease Models, Animal , Drug Evaluation, Preclinical , Dynamin II/metabolism , Estradiol/metabolism , Estradiol/pharmacology , Excitation Contraction Coupling/drug effects , Female , Gene Expression/drug effects , High-Throughput Nucleotide Sequencing , Humans , Longevity/drug effects , Male , Mice , Mice, Knockout , Motor Activity/drug effects , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Myofibrils/drug effects , Myofibrils/metabolism , Myofibrils/ultrastructure , Myopathies, Structural, Congenital/genetics , Myopathies, Structural, Congenital/metabolism , Myopathies, Structural, Congenital/pathology , Protein Tyrosine Phosphatases, Non-Receptor/deficiency , Receptors, Estrogen/metabolism
17.
J Food Sci ; 83(8): 2148-2158, 2018 Aug.
Article in English | MEDLINE | ID: mdl-30020543

ABSTRACT

Bromelain was used to tenderize golden pomfrets (Trachinotus blochii). The enzyme kinetic model was x=2.447×ln[1+(1332.21×E0S0-1.74)t], which indicated that the degree of hydrolysis (DH, x) was dependent on hydrolysis time (t), the initial concentration of myofibril (S0 ) and bromelain (E0 ). The relationship between the overall hydrolysis rate (v), S0 , E0 , and t is demonstrated as: v=(16.50(E0S0)-1.33)S0 exp {-2.447ln[1+(1332.21E0S0-1.74)t2]}. Sample of 0.40% E0 /S0 was further used to study the effects of hydrolysis time on the changes of proteins, peptides, free amino acids (FAA), and protein nanostructure. SDS-PAGE result showed that myosin heavy chain was degraded dramatically from 22.88% before treatment to 12.03% after 2 min bromelain treatment. Meanwhile, bromelain did not exhibit activity towards actin, trypomyosin, myosin light chain, and troponin C. A general increase of amino acids indicated the increased DH and the preferential cleavage sites of bromelain in the descending order of lysine, glutamic acid, glycine, ornithine, methionine sulfoxide, and alanine. Atomic force microscope images showed that the strip-like structure of myofibril was considerably degraded by bromelain, and the granulation of protein after 20 min indicated possible self-assembling of protein hydrolysate. Confocal laser scanning microscopy further confirmed the degradation of myofibril proteins and formation of protein aggregates. PRACTICAL APPLICATION: Meat of golden pomfrets is tough, thus not idea for fish balls or fish cakes. Tenderization is essential to achieve desired texture and consumer acceptance, especially for this fish meat with intrinsic hard texture. Bromelain can be extracted from pineapple processing waste. Enzymatic kinetics was studied to instruct industry to control the tenderness of the processed fish meat. The microstructural and mechanism study elucidate the process, thus could be applied to improve the quality of the seafood products correspondingly.


Subject(s)
Bromelains/metabolism , Fishes/metabolism , Myofibrils/metabolism , Seafood , Amino Acids/analysis , Ananas/enzymology , Animals , Food Handling/methods , Hydrolysis , Kinetics , Meat/analysis , Myofibrils/chemistry , Protein Hydrolysates/metabolism , Proteins/analysis , Seafood/analysis
18.
Exp Gerontol ; 110: 202-208, 2018 09.
Article in English | MEDLINE | ID: mdl-29890270

ABSTRACT

BACKGROUND: Oxidative stress and inflammation may contribute to anabolic resistance in response to protein and exercise in older adults. We investigated whether consumption of montmorency cherry concentrate (MCC) increased anabolic sensitivity to protein ingestion and resistance exercise in healthy older men. METHODS: Sixteen healthy older men were randomized to receive MCC (60 mL·d-1) or placebo (PLA) for two weeks, after baseline measures in week 1. During week 3, participants consumed 10 g whey protein·d-1 and completed three bouts of unilateral leg resistance exercise (4 × 8-10 repetitions at 80% 1RM). Participants consumed a bolus (150 mL) and weekly (50 mL) doses of deuterated water. Body water 2H enrichment was measured in saliva and vastus lateralis biopsies were taken from the non-exercised leg after weeks 1, 2 and 3, and the exercised leg after week 3, to measure tracer incorporation at rest, in response to protein and protein + exercise. RESULTS: Myofibrillar protein synthesis increased in response to exercise + protein compared to rest (p < 0.05) in both groups, but there was no added effect of supplement (MCC: 1.79 ±â€¯0.75 EX vs 1.15 ±â€¯0.40 rest; PLA: 2.22 ±â€¯0.54 vs 1.21 ±â€¯0.18; all %·d-1). Muscle total NFĸB protein was decreased with exercise and protein in MCC (NFĸB: -20.7 ±â€¯17.5%) but increased in PLA (NFĸB: 17.8 ±â€¯31.3%, p = 0.073). CONCLUSION: Short-term MCC ingestion does not affect the anabolic response to protein and exercise in healthy, relatively active, older men, despite MCC ingestion attenuating expression of proteins involved in the muscle inflammatory response to exercise, which may influence the chronic training response.


Subject(s)
Dietary Supplements , Muscle, Skeletal/physiology , Polyphenols/pharmacology , Prunus avium/chemistry , Resistance Training , Aged , Deuterium , Healthy Volunteers , Humans , Male , Middle Aged , Muscle Proteins/metabolism , Myofibrils/metabolism , Oxidative Stress , Protein Biosynthesis , Quadriceps Muscle/pathology , Whey Proteins/administration & dosage
19.
Br J Nutr ; 119(5): 517-526, 2018 03.
Article in English | MEDLINE | ID: mdl-29508695

ABSTRACT

This study was a randomised, double-blind, placebo-controlled cross-over trial examining the effects of ß-hydroxy ß-methylbutyrate free acid (HMB-FA) supplementation on muscle protein breakdown, cortisol, testosterone and resting energy expenditure (REE) during acute fasting. Conditions consisted of supplementation with 3 g/d HMB-FA or placebo during a 3-d meat-free diet followed by a 24-h fast. Urine was collected before and during the 24-h fast for analysis of 3-methylhistidine:creatinine ratio (3MH:CR). Salivary cortisol, testosterone, their ratio (T:C), and the cortisol awakening response were assessed. ANOVA was used to analyse all dependent variables, and linear mixed models were used to confirm the absence of carryover effects. Eleven participants (six females, five males) completed the study. Urinary HMB concentrations confirmed compliance with supplementation. 3MH:CR was unaffected by fasting and supplementation, but the cortisol awakening response differed between conditions. In both conditions, cortisol increased from awakening to 30 min post-awakening (P=0·01). Cortisol was reduced from 30 to 45 min post-awakening with HMB-FA (-32 %, d=-1·0, P=0·04), but not placebo (PL) (-6 %, d=-0·2, P=0·14). In males, T:C increased from 0 to 24 h of fasting with HMB-FA (+162 %, d=3·0, P=0·001), but not placebo (+13 %, d=0·4, P=0·60), due to reductions in cortisol. REE was higher at 24 h of fasting than 16 h of fasting independent of supplementation (+4·0 %, d=0·3, P=0·04). In conclusion, HMB-FA may affect cortisol responses, but not myofibrillar proteolysis, during acute 24-h fasting.


Subject(s)
Dietary Supplements , Fasting/physiology , Hydrocortisone/metabolism , Muscle, Skeletal/drug effects , Myofibrils/drug effects , Proteolysis/drug effects , Valerates/pharmacology , Adult , Basal Metabolism , Cross-Over Studies , Double-Blind Method , Female , Humans , Male , Muscle, Skeletal/metabolism , Myofibrils/metabolism , Rest , Testosterone/metabolism , Young Adult
20.
Pflugers Arch ; 469(10): 1359-1371, 2017 10.
Article in English | MEDLINE | ID: mdl-28534086

ABSTRACT

Cardiac neuronal nitric oxide synthase (nNOS) is an important molecule that regulates intracellular Ca2+ homeostasis and contractility of healthy and diseased hearts. Here, we examined the effects of nNOS on fatty acid (FA) regulation of left ventricular (LV) myocyte contraction in sham and angiotensin II (Ang II)-induced hypertensive (HTN) rats. Our results showed that palmitic acid (PA, 100 µM) increased the amplitudes of sarcomere shortening and intracellular ATP in sham but not in HTN despite oxygen consumption rate (OCR) was increased by PA in both groups. Carnitine palmitoyltransferase-1 inhibitor, etomoxir (ETO), reduced OCR and ATP with PA in sham and HTN but prevented PA potentiation of sarcomere shortening only in sham. PA increased nNOS-derived NO only in HTN. Inhibition of nNOS with S-methyl-L-thiocitrulline (SMTC) prevented PA-induced OCR and restored PA potentiation of myocyte contraction in HTN. Mechanistically, PA increased intracellular Ca2+ transient ([Ca2+]i) without changing Ca2+ influx via L-type Ca2+ channel (I-LTCC) and reduced myofilament Ca2+ sensitivity in sham. nNOS inhibition increased [Ca2+]i, I-LTCC and reduced myofilament Ca2+ sensitivity prior to PA supplementation; as such, normalized PA increment of [Ca2+]i. In HTN, PA reduced I-LTCC without affecting [Ca2+]i or myofilament Ca2+ sensitivity. However, PA increased I-LTCC, [Ca2+]i and reduced myofilament Ca2+ sensitivity following nNOS inhibition. Myocardial FA oxidation (18F-fluoro-6-thia-heptadecanoic acid, 18F-FTHA) was comparable between groups, but nNOS inhibition increased it only in HTN. Collectively, PA increases myocyte contraction through stimulating [Ca2+]i and mitochondrial activity in healthy hearts. PA-dependent cardiac inotropy was limited by nNOS in HTN, predominantly due to its modulatory effect on [Ca2+]i handling.


Subject(s)
Hypertension/metabolism , Myocardium/metabolism , Myofibrils/metabolism , Nitric Oxide Synthase Type I/metabolism , Actin Cytoskeleton/metabolism , Animals , Calcium Signaling/physiology , Cytoplasm/metabolism , Myocardial Contraction/physiology , Myocytes, Cardiac/metabolism , Rats, Sprague-Dawley
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