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1.
Aging Cell ; 17(2)2018 04.
Article in English | MEDLINE | ID: mdl-29517834

ABSTRACT

In this study, results are reported from the analyses of vastus lateralis muscle biopsy samples obtained from a subset (n = 90) of 125 previously phenotyped, highly active male and female cyclists aged 55-79 years in regard to age. We then subsequently attempted to uncover associations between the findings in muscle and in vivo physiological functions. Muscle fibre type and composition (ATPase histochemistry), size (morphometry), capillary density (immunohistochemistry) and mitochondrial protein content (Western blot) in relation to age were determined in the biopsy specimens. Aside from an age-related change in capillary density in males (r = -.299; p = .02), no other parameter measured in the muscle samples showed an association with age. However, in males type I fibres and capillarity (p < .05) were significantly associated with training volume, maximal oxygen uptake, oxygen uptake kinetics and ventilatory threshold. In females, the only association observed was between capillarity and training volume (p < .05). In males, both type II fibre proportion and area (p < .05) were associated with peak power during sprint cycling and with maximal rate of torque development during a maximal voluntary isometric contraction. Mitochondrial protein content was not associated with any cardiorespiratory parameter in either males or females (p > .05). We conclude in this highly active cohort, selected to mitigate most of the effects of inactivity, that there is little evidence of age-related changes in the properties of VL muscle across the age range studied. By contrast, some of these muscle characteristics were correlated with in vivo physiological indices.


Subject(s)
Exercise/physiology , Muscle, Skeletal/physiopathology , Age Factors , Aged , Aged, 80 and over , Exercise/psychology , Female , Humans , Male , Middle Aged
3.
Crit Care Med ; 43(8): 1603-11, 2015 Aug.
Article in English | MEDLINE | ID: mdl-25882765

ABSTRACT

OBJECTIVES: A rapid and early loss of skeletal muscle mass underlies the physical disability common amongst survivors of critical illness. However, skeletal muscle function depends not only on its quantity but its quality, which may be adversely affected. We set out to characterise the changes in macroscopic muscle echogenicity and fascial characteristics that occur early in critical illness, and to relate these to microscopic histologically defined myofibre necrosis and fascial pathology. DESIGN AND SETTING: Prospective two center observational study. PATIENTS: Thirty subjects comprising a subgroup of patients recruited to the Musculoskeletal Ultrasound in Critical Illness: Longitudinal Evaluation (MUSCLE) study. MEASUREMENTS AND MAIN RESULTS: Comparisons were made between sequential Vastus Lateralis histological specimens and ultrasound assessment of Rectus Femoris echogenicity. Change in muscle echogenicity was greater in patients who developed muscle necrosis (n = 15) than in those who did not (8.2% [95% CI, -5.3 to 21.7] vs -15.0% [95% CI, -28.9 to -1.09]; p = 0.016). The area under receiver operator curve for ultrasound echogenicity's prediction of myofiber necrosis was 0.74 (95% CI, 0.565 to 0.919; p = 0.024) increasing to 0.85 (95% CI, 0.703 to -0.995; p = 0.003) with the removal of those with potential iatrogenic muscle damage. Fasciitis was observed in 18 of 30 biopsies (60%). CONCLUSIONS: Myofiber necrosis and fascial inflammation can be detected noninvasively using ultrasound in the critically ill. Fasciitis precedes and frequently accompanies muscle necrosis. These findings may have functional implications for survivors of critical illness.


Subject(s)
Critical Illness , Fasciitis/diagnostic imaging , Fasciitis/pathology , Muscle Fibers, Skeletal/pathology , Muscular Atrophy/diagnostic imaging , Muscular Atrophy/pathology , Acute Disease , Adult , Female , Humans , Intensive Care Units , Male , Middle Aged , Prospective Studies , Quadriceps Muscle/diagnostic imaging , Quadriceps Muscle/pathology , Ultrasonography
4.
J Vis Exp ; (95): 52049, 2015 Jan 12.
Article in English | MEDLINE | ID: mdl-25650991

ABSTRACT

The repair and regeneration of skeletal muscle requires the action of satellite cells, which are the resident muscle stem cells. These can be isolated from human muscle biopsy samples using enzymatic digestion and their myogenic properties studied in culture. Quantitatively, the two main adherent cell types obtained from enzymatic digestion are: (i) the satellite cells (termed myogenic cells or muscle precursor cells), identified initially as CD56(+) and later as CD56(+)/desmin(+) cells and (ii) muscle-derived fibroblasts, identified as CD56(-) and TE-7(+). Fibroblasts proliferate very efficiently in culture and in mixed cell populations these cells may overrun myogenic cells to dominate the culture. The isolation and purification of different cell types from human muscle is thus an important methodological consideration when trying to investigate the innate behavior of either cell type in culture. Here we describe a system of sorting based on the gentle enzymatic digestion of cells using collagenase and dispase followed by magnetic activated cell sorting (MACS) which gives both a high purity (>95% myogenic cells) and good yield (~2.8 x 10(6) ± 8.87 x 10(5) cells/g tissue after 7 days in vitro) for experiments in culture. This approach is based on incubating the mixed muscle-derived cell population with magnetic microbeads beads conjugated to an antibody against CD56 and then passing cells though a magnetic field. CD56(+) cells bound to microbeads are retained by the field whereas CD56(-) cells pass unimpeded through the column. Cell suspensions from any stage of the sorting process can be plated and cultured. Following a given intervention, cell morphology, and the expression and localization of proteins including nuclear transcription factors can be quantified using immunofluorescent labeling with specific antibodies and an image processing and analysis package.


Subject(s)
Fibroblasts/cytology , Fibroblasts/metabolism , Satellite Cells, Skeletal Muscle/cytology , Satellite Cells, Skeletal Muscle/metabolism , Cell Differentiation/physiology , Cell Separation/methods , Cells, Cultured , Desmin/metabolism , Humans , Immunohistochemistry
5.
Arch Oral Biol ; 59(6): 601-7, 2014 Jun.
Article in English | MEDLINE | ID: mdl-24698832

ABSTRACT

OBJECTIVE: Type I myosins are molecular motors necessary for glucose transport in the cytoplasm and initiation of transcription in the nucleus. Two of these, MYO1H and MYO1C, are paralogs which may be important in the development of malocclusion. The objective of this study was to investigate their gene expression in the masseter muscle of malocclusion subjects. Two functionally related proteins known to contribute to malocclusion were also investigated: KAT6B (a chromatin remodelling epigenetic enzyme which is activated by MYO1C) and RUNX2 (a transcription factor regulating osteogenesis which is activated by KAT6B). DESIGN: Masseter muscle samples and malocclusion classifications were obtained from orthognathic surgery subjects. Muscle was sectioned and immunostained to determine fibre type properties. RNA was isolated from the remaining sample to determine expression levels for the four genes by TaqMan(®) RT-PCR. Fibre type properties, gene expression quantities and malocclusion classification were compared. RESULTS: There were very significant associations (P<0.0000001) between MYO1C and KAT6B expressions. There were also significant associations (P<0.005) between RUNX2 expression and masseter muscle type II fibre properties. Very few significant associations were identified between MYO1C and masseter muscle fibre type properties. CONCLUSIONS: The relationship between MYO1C and KAT6B suggests that the two are interacting in chromatin remodelling for gene expression. This is the nuclear myosin1 (NM1) function of MYO1C. A surprising finding is the relationship between RUNX2 and type II masseter muscle fibres, since RUNX2 expression in mature muscle was previously unknown. Further investigations are necessary to elucidate the role of RUNX2 in adult masseter muscle.


Subject(s)
Core Binding Factor Alpha 1 Subunit/genetics , Histone Acetyltransferases/genetics , Malocclusion/genetics , Masseter Muscle/metabolism , Myosin Type I/genetics , Female , Gene Expression , Humans , Male , Malocclusion/classification , Real-Time Polymerase Chain Reaction , Young Adult
6.
JAMA ; 310(15): 1591-600, 2013 Oct 16.
Article in English | MEDLINE | ID: mdl-24108501

ABSTRACT

IMPORTANCE: Survivors of critical illness demonstrate skeletal muscle wasting with associated functional impairment. OBJECTIVE: To perform a comprehensive prospective characterization of skeletal muscle wasting, defining the pathogenic roles of altered protein synthesis and breakdown. DESIGN, SETTING, AND PARTICIPANTS: Sixty-three critically ill patients (59% male; mean age: 54.7 years [95% CI, 50.0-59.6 years]) with an Acute Physiology and Chronic Health Evaluation II score of 23.5 (95% CI, 21.9-25.2) were prospectively recruited within 24 hours following intensive care unit (ICU) admission from August 2009 to April 2011 at a university teaching and a community hospital in England. Patients were recruited if older than 18 years and were anticipated to be intubated for longer than 48 hours, to spend more than 7 days in critical care, and to survive ICU stay. MAIN OUTCOMES AND MEASURES: Muscle loss was determined through serial ultrasound measurement of the rectus femoris cross-sectional area (CSA) on days 1, 3, 7, and 10. In a subset of patients, the fiber CSA area was quantified along with the ratio of protein to DNA on days 1 and 7. Histopathological analysis was performed. In addition, muscle protein synthesis, breakdown rates, and respective signaling pathways were characterized. RESULTS: There were significant reductions in the rectus femoris CSA observed at day 10 (−17.7% [95% CI, −25.9% to 8.1%]; P < .001). In the 28 patients assessed by all 3 measurement methods on days 1 and 7, the rectus femoris CSA decreased by 10.3% (95% CI, 6.1% to 14.5%), the fiber CSA by 17.5% (95% CI, 5.8% to 29.3%), and the ratio of protein to DNA by 29.5% (95% CI, 13.4% to 45.6%). Decrease in the rectus femoris CSA was greater in patients who experienced multiorgan failure by day 7 (−15.7%; 95% CI, −27.7% to 11.4%) compared with single organ failure (−3.0%; 95% CI, −5.3% to 2.1%) (P < .001), even by day 3 (−8.7% [95% CI, −59.3% to 50.6%] vs −1.8% [95% CI, −12.3% to 10.5%], respectively; P = .03). Myofiber necrosis occurred in 20 of 37 patients (54.1%). Protein synthesis measured by the muscle protein fractional synthetic rate was depressed in patients on day 1 (0.035%/hour; 95% CI, 0.023% to 0.047%/hour) compared with rates observed in fasted healthy controls (0.039%/hour; 95% CI, 0.029% to 0.048%/hour) (P = .57) and increased by day 7 (0.076% [95% CI, 0.032%-0.120%/hour]; P = .03) to rates associated with fed controls (0.065%/hour [95% CI, 0.049% to 0.080%/hour]; P = .30), independent of nutritional load. Leg protein breakdown remained elevated throughout the study (8.5 [95% CI, 4.7 to 12.3] to 10.6 [95% CI, 6.8 to 14.4] µmol of phenylalanine/min/ideal body weight × 100; P = .40). The pattern of intracellular signaling supported increased breakdown (n = 9, r = −0.83, P = .005) and decreased synthesis (n = 9, r = −0.69, P = .04). CONCLUSIONS AND RELEVANCE: Among these critically ill patients, muscle wasting occurred early and rapidly during the first week of critical illness and was more severe among those with multiorgan failure compared with single organ failure. These findings may provide insights into skeletal muscle wasting in critical illness.


Subject(s)
Critical Illness , Multiple Organ Failure/complications , Protein Biosynthesis , Quadriceps Muscle/pathology , APACHE , DNA/analysis , Female , Humans , Intensive Care Units , Male , Middle Aged , Multiple Organ Failure/physiopathology , Necrosis , Prospective Studies , Proteins/metabolism , Quadriceps Muscle/diagnostic imaging , Time Factors , Ultrasonography , Wasting Syndrome
7.
J Cell Sci ; 126(Pt 24): 5610-25, 2013 Dec 15.
Article in English | MEDLINE | ID: mdl-24101731

ABSTRACT

We characterised the adherent cell types isolated from human skeletal muscle by enzymatic digestion, and demonstrated that even at 72 hours after isolation these cultures consisted predominantly of myogenic cells (CD56(+), desmin(+)) and fibroblasts (TE-7(+), collagen VI(+), PDGFRα(+), vimentin(+), fibronectin(+)). To evaluate the behaviour of the cell types obtained, we optimised a double immuno-magnetic cell-sorting method for the separation of myogenic cells from fibroblasts. This procedure gave purities of >96% for myogenic (CD56(+), desmin(+)) cells. The CD56(-) fraction obtained from the first sort was highly enriched in TE-7(+) fibroblasts. Using quantitative analysis of immunofluorescent staining for lipid content, lineage markers and transcription factors, we tested if the purified cell populations could differentiate into adipocytes in response to treatment with either fatty acids or adipocyte-inducing medium. Both treatments caused the fibroblasts to differentiate into adipocytes, as shown by loss of intracellular TE-7, upregulation of the adipogenic transcription factors PPARγ and C/EBPα, and adoption of a lipid-laden adipocyte morphology. By contrast, myogenic cells did not undergo adipogenesis and showed differential regulation of PPARγ and C/EBPα in response to these adipogenic treatments. Our results show that human skeletal muscle fibroblasts are at least bipotent progenitors that can remain as extracellular-matrix-producing cells or differentiate into adipocytes.


Subject(s)
Adipogenesis , Myofibroblasts/physiology , Satellite Cells, Skeletal Muscle/physiology , CCAAT-Enhancer-Binding Proteins/genetics , CCAAT-Enhancer-Binding Proteins/metabolism , CD56 Antigen/metabolism , Cell Transdifferentiation , Cells, Cultured , Fatty Acids/physiology , Flow Cytometry , Fucosyltransferases/metabolism , Gene Expression , Humans , Immunomagnetic Separation , Lewis X Antigen/metabolism , Lipid Metabolism , Muscle, Skeletal/cytology , PPAR gamma/genetics , PPAR gamma/metabolism , Up-Regulation
8.
Am J Orthod Dentofacial Orthop ; 144(4): 568-76, 2013 Oct.
Article in English | MEDLINE | ID: mdl-24075665

ABSTRACT

INTRODUCTION: Genetic influences on the development of malocclusion include heritable effects on both masticatory muscles and jaw skeletal morphology. Beyond genetic variations, however, the characteristics of muscle and bone are also influenced by epigenetic mechanisms that produce differences in gene expression. We studied 2 enzymes known to change gene expressions through histone modifications, chromatin-modifying histone acetyltransferase KAT6B and deacetylase HDAC4, to determine their associations with musculoskeletal variations in jaw deformation malocclusions. METHODS: Samples of masseter muscle were obtained from subjects undergoing orthognathic surgery from 6 malocclusion classes based on skeletal sagittal and vertical dysplasia. The muscles were characterized for fiber type properties by immunohistochemistry, and their total RNA was isolated for gene expression studies by microarray analysis and quantitative real-time polymerase chain reaction. RESULTS: Gene expressions for fast isoforms of myosins and contractile regulatory proteins and for KAT6B and HDAC4 were severalfold greater in masseter muscles from a patient with a deepbite compared with one with an open bite, and genes related to exercise and activity did not differ substantially. In the total population, expressions of HDAC4 (P = 0.03) and KAT6B (P = 0.004) were significantly greater in subjects with sagittal Class III than in Class II malocclusion, whereas HDAC4 tended to correlate negatively with slow myosin type I and positively with fast myosin gene, especially type IIX. CONCLUSIONS: These data support other published reports of epigenetic regulation in the determination of skeletal muscle fiber phenotypes and bone growth. Further investigations are needed to elucidate how this regulatory model might apply to musculoskeletal development and malocclusion.


Subject(s)
Epigenomics , Histone Acetyltransferases/genetics , Histone Deacetylases/genetics , Masseter Muscle/drug effects , Open Bite/genetics , Overbite/genetics , Repressor Proteins/genetics , Female , Histone Acetyltransferases/pharmacology , Histone Deacetylases/pharmacology , Humans , Male , Malocclusion, Angle Class II/genetics , Malocclusion, Angle Class III/genetics , Myosins/genetics , Oligonucleotide Array Sequence Analysis , Repressor Proteins/pharmacology , Young Adult
9.
J Exp Biol ; 216(Pt 15): 2974-82, 2013 Aug 01.
Article in English | MEDLINE | ID: mdl-23580727

ABSTRACT

Muscle samples were taken from the gluteus, semitendinosus and longissimus muscles of a captive cheetah immediately after euthanasia. Fibres were 'skinned' to remove all membranes, leaving the contractile filament array intact and functional. Segments of skinned fibres from these cheetah muscles and from rabbit psoas muscle were activated at 20°C by a temperature-jump protocol. Step and ramp length changes were imposed after active stress had developed. The stiffness of the non-contractile ends of the fibres (series elastic component) was measured at two different stress values in each fibre; stiffness was strongly dependent on stress. Using these stiffness values, the speed of shortening of the contractile component was evaluated, and hence the power it was producing. Fibres were analysed for myosin heavy chain content using gel electrophoresis, and identified as either slow (type I) or fast (type II). The power output of cheetah type II fibre segments was 92.5±4.3 W kg(-1) (mean ± s.e., 14 fibres) during shortening at relative stress 0.15 (the stress during shortening/isometric stress). For rabbit psoas fibre segments (presumably type IIX) the corresponding value was significantly higher (P<0.001), 119.7±6.2 W kg(-1) (mean ± s.e., 7 fibres). These values are our best estimates of the maximum power output under the conditions used here. Thus, the contractile filament power from cheetah was less than that of rabbit when maximally activated at 20°C, and does not account for the superior locomotor performance of the cheetah.


Subject(s)
Acinonyx/physiology , Muscle Fibers, Skeletal/physiology , Animals , Biomechanical Phenomena , Elasticity , Female , In Vitro Techniques , Linear Models , Male , Muscle Contraction/physiology , Rabbits , Stress, Mechanical
10.
J Oral Maxillofac Surg ; 70(2): 440-8, 2012 Feb.
Article in English | MEDLINE | ID: mdl-21821327

ABSTRACT

PURPOSE: We identified masseter muscle fiber type property differences in subjects with dentofacial deformities. PATIENTS AND METHODS: Samples of masseter muscle were collected from 139 young adults during mandibular osteotomy procedures to assess mean fiber areas and percent tissue occupancies for the 4 fiber types that comprise the muscle. Subjects were classified into 1 of 6 malocclusion groups based on the presence of a skeletal Class II or III sagittal dimension malocclusion and either a skeletal open, deep, or normal bite vertical dimension malocclusion. In a subpopulation, relative quantities of the muscle growth factors IGF-I and GDF-8 gene expression were quantified by real-time polymerase chain reaction. RESULTS: Fiber properties were not different in the sagittal malocclusion groups, but were very different in the vertical malocclusion groups (P ≤ .0004). There were significant mean fiber area differences for type II (P ≤ .0004) and type neonatal-atrial (P = .001) fiber types and for fiber percent occupancy differences for both type I-II hybrid fibers and type II fibers (P ≤ .0004). Growth factor expression differed by gender for IGF-I (P = .02) and GDF-8 (P < .01). The ratio of IGF-I:GDF-8 expression associates with type I and II mean fiber areas. CONCLUSION: Fiber type properties are very closely associated with variations in vertical growth of the face, with statistical significance for overall comparisons at P ≤ .0004. An increase in masseter muscle type II fiber mean fiber areas and percent tissue occupancies is inversely related to increases in vertical facial dimension.


Subject(s)
Insulin-Like Growth Factor I/analysis , Malocclusion, Angle Class III/pathology , Malocclusion, Angle Class II/pathology , Masseter Muscle/ultrastructure , Muscle Fibers, Skeletal/ultrastructure , Myostatin/analysis , Adolescent , Adult , Cardiac Myosins/analysis , Female , Humans , Insulin-Like Growth Factor I/genetics , Male , Maxillofacial Development/physiology , Muscle Fibers, Fast-Twitch/ultrastructure , Muscle Fibers, Slow-Twitch/ultrastructure , Myosin Type I/analysis , Myosin Type II/analysis , Myostatin/genetics , Open Bite/pathology , Overbite/pathology , Polymerase Chain Reaction , RNA/analysis , Sex Factors , Vertical Dimension , Young Adult
11.
J Craniofac Surg ; 22(3): 1093-8, 2011 May.
Article in English | MEDLINE | ID: mdl-21586952

ABSTRACT

Human jaw dysmorphologies are frequent and often affect young patients, resulting in malocclusion of teeth and inappropriate jaw relationships. Treatment is performed by means of orthodontics with orthognathic surgery as required. Mandibular asymmetry is one of the most frequent dysmorphologies, but in many cases, the specific cause is unknown.In healthy patients who were undergoing orthognathic surgery for correction of malocclusion, we tested the hypothesis that masseter muscle phenotype composition, which determines contractile properties, was different between sides in patients with mandibular asymmetry but not in those without mandibular asymmetry. After cephalometric analysis, 50 patients from whom we obtained samples of both right and left masseter muscles were separated into 2 groups: with or without mandibular lateral deviation. Samples were immunostained with myosin-isoform-specific antibodies to identify 4 skeletal muscle fiber types, and their fiber areas and proportions were measured. Two-tailed Wilcoxon test for paired samples was used to compare the 4 fiber-type compositions by means of percent occupancy and mean fiber area on both sides. Patients with mandibular asymmetry were associated with a significant increase of type II fiber occupancy (P = 0.0035) on the same side as the deviation. This finding that masseter muscle phenotype is significantly linked to mandibular asymmetry is of relevance to physiotherapeutic and surgical managements of jaw discrepancies and merits further investigation in the light of its possible role in the etiology of this condition.


Subject(s)
Facial Asymmetry/pathology , Facial Asymmetry/surgery , Malocclusion/pathology , Malocclusion/surgery , Masseter Muscle/chemistry , Muscle Fibers, Skeletal/chemistry , Myosin Heavy Chains/analysis , Adult , Cephalometry , Facial Asymmetry/diagnostic imaging , Female , Humans , Male , Malocclusion/diagnostic imaging , Masseter Muscle/diagnostic imaging , Masseter Muscle/surgery , Orthognathic Surgical Procedures , Phenotype , Radiography , Staining and Labeling , Statistics, Nonparametric , Vertical Dimension
12.
Muscle Nerve ; 42(5): 756-63, 2010 Nov.
Article in English | MEDLINE | ID: mdl-20976779

ABSTRACT

Electrical stimulation (ES) improves muscle properties after spinal cord injury (SCI), but cycling power output (PO) remains low. We investigated the effect of endurance and strength ES training on these parameters. Assessments of quadriceps strength and fatigue resistance, cycling PO, and muscle biopsies were made in four well-trained SCI subjects (three cyclists and one rower) before and after additional weight training in the cyclists and once in the rower. Weight training improved muscle strength, but cycling PO was low in all subjects. There was no effect of training type on biopsy data. Biopsies showed non-specific signs of pathology, predominance of type IIa fibers, and uniform metabolic activity. Oxidative activity was low, as were capillary:fiber ratios in the cyclists. Cycling PO is limited by factors other than muscle strength. Future ES training studies should attempt to improve muscle oxidative capacity to optimize the potential benefits of ES exercise.


Subject(s)
Muscle Strength/physiology , Muscle, Skeletal/pathology , Muscle, Skeletal/physiopathology , Paralysis/pathology , Paralysis/physiopathology , Physical Endurance/physiology , Physical Fitness/physiology , Bicycling/physiology , Biopsy , Cell Count , Electric Stimulation , Ergometry , Female , Humans , Isometric Contraction/physiology , Leg/physiology , Male , Middle Aged , Muscle Fatigue/physiology , Muscle Fibers, Fast-Twitch/pathology , Muscle Fibers, Fast-Twitch/physiology , Oxidation-Reduction , Pilot Projects , Spinal Cord Injuries/pathology , Spinal Cord Injuries/physiopathology , Weight Lifting/physiology
13.
Am J Physiol Regul Integr Comp Physiol ; 297(3): R675-81, 2009 Sep.
Article in English | MEDLINE | ID: mdl-19535678

ABSTRACT

We recently reported insulin resistance in adult offspring of obese C57BL/6J mice. We have now evaluated whether parameters of skeletal muscle structure and function may play a role in insulin resistance in this model of developmental programming. Obesity was induced in female mice by feeding a highly palatable sugar and fat-rich diet for 6 wk prior to pregnancy, and during pregnancy and lactation. Offspring of obese dams were weaned onto standard laboratory chow. At 3 mo of age, skeletal muscle insulin signaling protein expression, mitochondrial electron transport chain activity (ETC), muscle fiber type, fiber density, and fiber cross-sectional area were compared with that of offspring of control dams weaned onto the chow diet. Female offspring of obese dams demonstrated decreased skeletal muscle expression of p110beta, the catalytic subunit of PI3K (P < 0.01), as well as reduced Akt phosphorylation at Serine residue 473 compared with control offspring. Male offspring of obese dams demonstrated increased skeletal muscle Akt2 and PKCzeta expression (P < 0.01; P < 0.001, respectively). A decrease in mitochondrial-linked complex II-III was observed in male offspring of obese dams (P < 0.01), which was unrelated to CoQ deficiency. This was not observed in females. There were no differences in muscle fiber density between offspring of obese dams and control offspring in either sex. Sex-related alterations in key insulin-signaling proteins and in mitochondrial ETC may contribute to a state of insulin resistance in offspring of obese mice.


Subject(s)
Electron Transport Complex III/metabolism , Electron Transport Complex II/metabolism , Insulin Resistance , Insulin/metabolism , Mitochondria, Muscle/metabolism , Obesity/metabolism , Quadriceps Muscle/metabolism , Signal Transduction , Animal Nutritional Physiological Phenomena , Animals , Body Weight , Class I Phosphatidylinositol 3-Kinases , Disease Models, Animal , Female , Glucose Transporter Type 4/metabolism , Insulin Receptor Substrate Proteins/metabolism , Male , Maternal Nutritional Physiological Phenomena , Mice , Mice, Inbred C57BL , Mitochondria, Muscle/enzymology , Muscle Fibers, Skeletal/metabolism , Obesity/pathology , Obesity/physiopathology , Phosphatidylinositol 3-Kinases/metabolism , Phosphorylation , Pregnancy , Prenatal Exposure Delayed Effects , Protein Kinase C/metabolism , Proto-Oncogene Proteins c-akt/metabolism , Quadriceps Muscle/enzymology , Quadriceps Muscle/pathology , Receptor, Insulin/metabolism , Sex Factors , Ubiquinone/metabolism
14.
J Physiol ; 586(9): 2371-9, 2008 May 01.
Article in English | MEDLINE | ID: mdl-18339691

ABSTRACT

Poor prenatal nutrition is associated with a greater risk of adult glucose intolerance and insulin insensitivity in the offspring. Skeletal muscle is the primary tissue for glucose utilization, and insulin resistance in muscle is the earliest identifiable abnormality in the pre-diabetic patient. We investigated the effect of early and late gestation undernutrition on structure and markers of growth and glucose metabolism regulation in the fetal triceps brachii (TB, slow- and fast-twitch myofibres) and soleus (slow-twitch myofibres) muscles. Pregnant sheep were fed 100% nutrient requirements (C, n = 8) or a restricted diet peri-implantation (PI, n = 9; 40%, 1-31 days gestation (dGA) (term approximately 147)) or in late gestation (L, n = 6; 50%, 104-127 dGA). At 127 +/- 1 dGA we measured myofibre and capillary density in the fetal TB and soleus muscles, and mRNA levels in the TB of insulin receptor (InsR), glucose transporter-4 (GLUT-4) and type 1 insulin-like growth factor receptor (IGF-1R). Total myofibre and capillary densities were lower in the TB, but not the soleus, of PI and L fetuses. The predominant effect in the L group was on slow-twitch myofibres. In TB, InsR, GLUT-4 and IGF-1R mRNA levels were greater in L group fetuses. Our finding of reduced myofibre density is consistent with a redistribution of resources at the expense of specific peripheral tissues by early and late gestation undernutrition which may be mediated by a decrease in capillary density. The increase in key regulatory components of glucose uptake following late gestation undernutrition may constitute a short-term compensation to maintain glucose homeostasis in the face of fewer type I (insulin-sensitive) myofibres. However, together these adaptations may influence the risk of later metabolic disease and thus our findings have implications for future strategies aimed at improving maternal diet.


Subject(s)
Embryo Implantation , Fetal Nutrition Disorders/physiopathology , Maternal Nutritional Physiological Phenomena , Muscle, Skeletal/embryology , Muscle, Skeletal/physiopathology , Pregnancy Complications/physiopathology , Animals , Female , Gestational Age , Pregnancy , Pregnancy, Animal , Sheep
15.
Hypertension ; 51(2): 383-92, 2008 Feb.
Article in English | MEDLINE | ID: mdl-18086952

ABSTRACT

Maternal obesity is increasingly prevalent and may affect the long-term health of the child. We investigated the effects of maternal diet-induced obesity in mice on offspring metabolic and cardiovascular function. Female C57BL/6J mice were fed either a standard chow (3% fat, 7% sugar) or a palatable obesogenic diet (16% fat, 33% sugar) for 6 weeks before mating and throughout pregnancy and lactation. Offspring of control (OC) and obese dams (OO) were weaned onto standard chow and studied at 3 and 6 months of age. OO were hyperphagic from 4 to 6 weeks of age compared with OC and at 3 months locomotor activity was reduced and adiposity increased (abdominal fat pad mass; P<0.01). OO were heavier than OC at 6 months (body weight, P<0.05). OO abdominal obesity was associated with adipocyte hypertrophy and altered mRNA expression of beta-adrenoceptor 2 and 3, 11 beta HSD-1, and PPAR-gamma 2. OO showed resistance artery endothelial dysfunction at 3 months, and were hypertensive, as assessed by radiotelemetry (nighttime systolic blood pressure at 6 months [mm Hg] mean+/-SEM, male OO, 134+/-1 versus OC, 124+/-2, n=8, P<0.05; female OO, 137+/-2 versus OC, 122+/-4, n=8, P<0.01). OO skeletal muscle mass (tibialis anterior) was significantly reduced (P<0.01) OO fasting insulin was raised at 3 months and by 6 months fasting plasma glucose was elevated. Exposure to the influences of maternal obesity in the developing mouse led to adult offspring adiposity and cardiovascular and metabolic dysfunction. Developmentally programmed hyperphagia, physical inactivity, and altered adipocyte metabolism may play a mechanistic role.


Subject(s)
Adiposity , Diet , Hyperphagia/etiology , Hypertension/etiology , Insulin Resistance , Obesity/etiology , Pregnancy Complications , Prenatal Exposure Delayed Effects , Adipocytes/pathology , Adiposity/genetics , Animals , Arteries/physiopathology , Blood Pressure , Capillaries/pathology , Cell Size , Female , Gene Expression , Glucose Tolerance Test , Heart Rate , Insulin/metabolism , Male , Mice , Mice, Inbred C57BL , Obesity/complications , Obesity/pathology , Obesity/physiopathology , Pancreas/metabolism , Pregnancy , Vascular Resistance
16.
Cell Metab ; 6(3): 236-45, 2007 Sep.
Article in English | MEDLINE | ID: mdl-17767910

ABSTRACT

Nuclear receptor signaling plays an important role in energy metabolism. In this study we demonstrate that the nuclear receptor corepressor RIP140 is a key regulator of metabolism in skeletal muscle. RIP140 is expressed in a fiber type-specific manner, and manipulation of its levels in null, heterozygous, and transgenic mice demonstrate that low levels promote while increased expression suppresses the formation of oxidative fibers. Expression profiling reveals global changes in the expression of genes implicated in both myofiber phenotype and metabolic functions. Genes involved in fatty-acid oxidation, oxidative phosphorylation, and mitochondrial biogenesis are upregulated in the absence of RIP140. Analysis of cultured myofibers demonstrates that the changes in expression are intrinsic to muscle cells and that nuclear receptor-regulated genes are direct targets for repression by RIP140. Therefore RIP140 is an important signaling factor in the regulation of skeletal muscle function and physiology.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Energy Metabolism , Gene Expression Regulation , Muscle, Skeletal/metabolism , Nuclear Proteins/metabolism , Oxygen Consumption , Adaptor Proteins, Signal Transducing/genetics , Animals , Cadherins/genetics , Cadherins/metabolism , Cells, Cultured , Fatty Acid Binding Protein 3 , Fatty Acid-Binding Proteins/genetics , Fatty Acid-Binding Proteins/metabolism , Gene Expression Profiling , Mice , Mice, Knockout , Muscle, Skeletal/cytology , Myoblasts/cytology , Myoblasts/metabolism , Myosins/metabolism , Nuclear Proteins/genetics , Nuclear Receptor Interacting Protein 1 , Oligonucleotide Array Sequence Analysis , Oxidation-Reduction , PPAR delta/metabolism , Protein Isoforms/metabolism , Receptors, Estrogen/metabolism , ERRalpha Estrogen-Related Receptor
17.
Am J Orthod Dentofacial Orthop ; 127(1): 37-46, 2005 Jan.
Article in English | MEDLINE | ID: mdl-15643413

ABSTRACT

BACKGROUND: The influence of muscle forces and associated physiologic behaviors on dental and skeletal development is well recognized but difficult to quantify because of the limited understanding of the interrelationships between physiologic and other mechanisms during growth. METHODS: The purpose of this study was to characterize fiber-type composition of masseter muscle in 44 subjects during surgical correction of malocclusion. Four fiber types were identified after immunostaining of biopsy sections with myosin heavy chain-specific antibodies, and the average fiber diameter and percentage of muscle occupancy of the fiber types were determined in each of 6 subject groups (Class II or Class III and open bite, normal bite, or deepbite). A 2 x 3 x 4 analysis of variance was used to determine significant differences between mean areas for fiber types, vertical relationships, and sagittal relationships. RESULTS: There were significant differences in percentage of occupancy of fiber types in masseter muscle in bite groups with different vertical dimensions. Type I fiber occupancy increased in open bites, and conversely, type II fiber occupancy increased in deepbites. The association between sagittal jaw relationships and mean fiber area was less strong, but, in the Class III group, the average fiber area was significantly different between the open bite, normal bite, and deepbite subjects. In the Class III subjects, type I and I/II hybrid fiber areas were greatly increased in subjects with deepbite. CONCLUSIONS: Given the variation between subjects in fiber areas and fiber numbers, larger subject populations will be needed to demonstrate more significant associations between sagittal relationships and muscle composition. However, the robust influence of jaw-closing muscles on vertical dimension allowed us to conclude that vertical bite characteristics vary according to the fiber type composition of masseter muscle.


Subject(s)
Face/anatomy & histology , Malocclusion/pathology , Masseter Muscle/cytology , Muscle Fibers, Skeletal/cytology , Adult , Analysis of Variance , Bite Force , Cephalometry , Humans , Malocclusion/physiopathology , Malocclusion/surgery , Masseter Muscle/physiology , Masseter Muscle/physiopathology , Muscle Fibers, Skeletal/classification , Vertical Dimension
18.
Cell Tissue Res ; 319(1): 121-31, 2005 Jan.
Article in English | MEDLINE | ID: mdl-15517400

ABSTRACT

The spatial localisation of insulin-like growth-factor-binding protein-2 (IGFBP-2) and its mRNA was investigated during larval and post-larval developmental stages of the gilthead seabream ( Sparus aurata) by immunohistochemistry and in situ hybridisation with specific antisera and riboprobes. During larval development, immunoreactivity was found in skin, muscle, gills, pharynx, intestine, liver and olfactory epithelium. After metamorphosis, immunoreactivity was found in the oesophageal epithelium (the strongest reaction) and in red skeletal muscle, heart muscle, the thymus and the epithelium of renal tubules. In the adult, immunostaining with IGFBP-2 antibody was also found in the saccus vasculosus, ovary and testis. IGFBP-2 mRNA was detected by in situ hybridisation mainly in the intestine, skeletal musculature and ovary. These results show that IGFBP-2 protein and mRNA are expressed in a variety of seabream tissues, suggesting that IGFBP-2 regulates the actions of IGFs on these tissues during development and growth.


Subject(s)
Insulin-Like Growth Factor Binding Protein 2/metabolism , Sea Bream/growth & development , Animals , Female , Gonads/cytology , Gonads/growth & development , Gonads/metabolism , Immunohistochemistry , In Situ Hybridization , Intestinal Mucosa/metabolism , Intestines/cytology , Intestines/growth & development , Male , Muscle, Skeletal/cytology , Muscle, Skeletal/growth & development , Muscle, Skeletal/metabolism , Organ Specificity , RNA, Messenger/metabolism , Sea Bream/anatomy & histology , Sea Bream/metabolism
19.
Cells Tissues Organs ; 174(1-2): 73-86, 2003.
Article in English | MEDLINE | ID: mdl-12784043

ABSTRACT

Mammalian skeletal muscle fibers can be classified into functional types by the heavy chain (MyHC) and light chain (MyLC) isoforms of myosin (the primary motor protein) that they contain. Most human skeletal muscle contains fiber types and myosin isoforms I, IIA and IIX. Some highly specialized muscle fibers in human extraocular and jaw-closing muscles express either novel myosins or unusual combinations of isoforms of unknown functional significance. Extrinsic laryngeal muscles may express the extraocular MyHC isoform for rapid contraction and a tonic MyHC isoform for slow tonic contractions. In jaw-closing muscles, fiber phenotypes and myosin expression have been characterized as highly unusual. The jaw-closing muscles of most carnivores and primates have tissue-specific expression of the type IIM or 'type II masticatory' MyHC. Human jaw-closing muscles, however, do not contain IIM myosin. Rather, they express myosins typical of developing or cardiac muscle in addition to type I, IIA and IIX myosins, and many of their fibers are hybrids, expressing two or more isoforms. Fiber morphology is also unusual in that the type II fibers are mostly of smaller diameter than type I. By combining physiological and biochemical techniques it is possible to determine the maximum velocity of unloaded shortening (V(o)) of an individual skeletal muscle fiber and subsequently determine the type and amount of myosin isoform. When analyzed, some laryngeal fibers shorten at much faster rates than type II fibers from limb and abdominal muscle. Yet some type I fibers in masseter show an opposite trend towards speeds 10-fold slower than type I fibers of limb muscle. These unusual shortening velocities are most probably regulated by MyHC isoforms in laryngeal fibers and by MyLC isoforms in masseter. For the jaw-closing muscles, this finding represents the first case in human muscle of physiological regulation of kinetics by light chains. Together, these results demonstrate that, compared to other skeletal muscles, cranial muscles have a wider repertoire of contractile protein expression and function. Molecular techniques for reverse transcription of mRNA and amplification by polymerase chain reaction have been applied to typing of single fibers isolated from limb muscles, successfully identifying pure type I, IIA and IIX and hybrid type I/IIA and IIA/IIX fibers. This demonstrates the potential for future studies of the regulation of gene expression in jaw-closing and laryngeal muscles, which have such a variety of complex fiber types fitting them for their roles in vivo.


Subject(s)
Laryngeal Muscles/physiology , Masseter Muscle/physiology , Rectus Abdominis/physiology , Animals , Humans , Laryngeal Muscles/cytology , Masseter Muscle/cytology , Rectus Abdominis/cytology
20.
Cell Tissue Res ; 311(2): 239-50, 2003 Feb.
Article in English | MEDLINE | ID: mdl-12596043

ABSTRACT

In this study, the distribution of myostatin was investigated during larval and postlarval developmental stages of Sparus aurata(sea bream), Solea solea(sole) and Brachydanio rerio(zebrafish) by immunohistochemistry using antisera raised against a synthetic peptide located within the precursor region of sea bream myostatin. All the three species examined showed the strongest immunoreactivity in red skeletal muscle in juveniles and adults. During larval development of sea bream, strong staining was detected in skin and brain. Immunoreactivity was also found in muscle, pharynx, gills, pancreas and liver. From metamorphosis, immunoreactivity was identifiable in the oesophagus, in the apical portion of the stomach epithelium, in the intestinal epithelium and in renal tubules. In larval zebrafish at hatching, the most intense myostatin immunoreactivity was evident in the skin epithelium. Immunoreactivity was also found in the retina and brain. In the adult, an intense immunostaining occurred in the gastrointestinal tract as well as in the ovary. In sole larvae, immunoreactivity was found in liver and intestine. Our results support the hypothesis suggested earlier that myostatins in fish have retained a different partition (compared with mammals) of the expression patterns and functions which characterized the ancestral gene before the duplication event that gave rise to growth differentiation factor-11 (GDF-11) and GDF-8 (myostatin).


Subject(s)
Aging/physiology , Protein Precursors/metabolism , Transforming Growth Factor beta/metabolism , Animals , Immunohistochemistry , Larva/cytology , Larva/metabolism , Myostatin , Organ Specificity , Sea Bream/growth & development , Species Specificity , Zebrafish/growth & development , Zebrafish Proteins
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