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The Na,K-ATPase alpha 2 isoform is expressed in neurons, and its absence disrupts neuronal activity in newborn mice.

Na,K-ATPase is an ion transporter that impacts neural and glial physiology by direct electrogenic activity and the modulation of ion gradients. Its three isoforms in brain have cell-type and development-specific expression patterns. Interestingly, our studies demonstrate that in late gestation, the alpha2 isoform is widely expressed in neurons, unlike in the adult brain, in which alpha2 has been shown to be expressed primarily in astrocytes. This unexpected distribution of alpha2 isoform expression in neurons is interesting in light of our examination of mice lacking the alpha2 isoform which fail to survive after birth. These animals showed no movement; however, defects in gross brain development, muscle contractility, neuromuscular transmission, and lung development were ruled out. Akinesia suggests a primary neuronal defect and electrophysiological recordings in the pre-Bötzinger complex, the brainstem breathing center, showed reduction of respiratory rhythm activity, with less regular and smaller population bursts. These data demonstrate that the Na,K-ATPase alpha2 isoform could be important in the modulation of neuronal activity in the neonate.

Animals↗

Requirement for the ryanodine receptor type 3 for efficient contraction in neonatal skeletal muscles.

The skeletal isoform of Ca2+ release channel, RyR1, plays a central role in activation of skeletal muscle contraction. Another isoform, RyR3, has been observed recently in some mammalian skeletal muscles, but whether it participates in regulating skeletal muscle contraction is not known. The expression of RyR3 in skeletal muscles was studied in mice from late fetal stages to adult life. RyR3 was found to be expressed widely in murine skeletal muscles during the post-natal phase of muscle development, but was not detectable in muscles of adult mice, with the exception of the diaphragm and soleus muscles. RyR3 knockout mice were generated, and it was shown that skeletal muscle contraction in these mice was impaired during the first weeks after birth. In skeletal muscles isolated from newborn RyR3(-/- )mice, but not in those from adult mice, the twitch elicited by electrical stimulation and the contracture induced by caffeine were strongly depressed. These results provide the first evidence that RyR3 has a physiological role in excitation-contraction coupling of neonatal skeletal muscles. The disproportion between the low amount of RyR3 and the large impact of the RyR3 knockout suggests that this isoform contributes to the amplification of Ca2+ released by the existing population of ryanodine receptors (RyR1).

Age Factors↗

Effect of denervation on the isoform transitions of tropomyosin, troponin T, and myosin isozyme in chicken breast muscle.

The effect of innervation on the transition of tropomyosin, troponin T, and myosin isozyme during chicken breast muscle development was examined by denervating the muscle at various ages after hatching. The types of proteins were characterized by 2-D electrophoresis for tropomyosin, immunoblotting for troponin T and pyro-phosphate acrylamide gel electrophoresis for myosin isozymes. As judged by the types of these three proteins, when neonatal muscle was denervated, the protein isoform transition from the neonatal to adult state was interrupted, whereas the denervation of mature muscle caused the reappearance of the neonatal forms of proteins. The present results indicate that differentiation from the neonatal state to the adult state and the maintenance of the adult state are controlled by some factors related to nerves.

Aging↗

Expression and regulation of protein inhibitor of neuronal nitric oxide synthase in ventilatory muscles.

In skeletal muscle fibers, nitric oxide (NO) is synthesized by neuronal NO synthase (nNOS) and regulates excitation-contraction coupling, glucose uptake, and mitochondrial respiration. Recently, a novel 89-amino acid protein, designated protein inhibitor of nNOS (PIN), has been shown to interact with and specifically inhibit nNOS activity. In this study, we investigated the distribution, localization, and regulation of PIN expression in ventilatory and limb muscles of various species. Amplified PIN cDNA from the rat diaphragm revealed an open reading frame identical to that of human PIN. Among muscles of adult rats, PIN mRNA was strongly expressed in muscles rich in type I fibers, whereas much weaker expression was evident in muscles rich in type II fibers. By comparison, PIN protein expression was not related to fiber-type distribution. Similarly, PIN protein was equally expressed among rat, mouse, and human diaphragms. Both PIN mRNA and PIN protein were expressed at much higher levels in the embryonic rat diaphragm than in adult muscle. Immunohistochemistry revealed that PIN protein was localized in close proximity to the sarcolemma and nuclei. PIN protein was also abundant in muscle spindles and axons of nerves supplying skeletal muscle fibers. We conclude that PIN is expressed in various skeletal muscle fibers and that its expression is regulated during muscle development. The localization of PIN in muscle regions containing abundant nNOS protein suggests that it plays a role in the regulation of NO synthesis in skeletal muscle fibers.

Amino Acid Sequence↗

[A case of inflammatory myopathy worsened by miscarriage with autoimmune disorder-associated disease].

The patient was 42-year-old woman who had exhibited elevated levels of serum creatine kinase(CK) and intermittent weakness of proximal muscles since her thirties. She had a history of palmoplantar pustulosis, Mondor's disease and recurrent miscarriages. Basedow's disease, which had been treated with antithyroid drugs since 37 years of age, recurred during the fourth pregnancy. After the pregnancy was terminated in the sixth week, weakness and grasp pain in the proximal muscles developed. The biopsy of biceps brachii muscle showed necrosis and reconstruction of muscle fibers with equivocal inflammatory cells, which was compatible with the findings for inflammatory myopathy such as polymyositis(PM). She was treated with prednisolone and the weakness and grasp pain in the proximal muscles were resolved. PM beginning during a woman's reproductive period is rare, and few studies have examined the association between PM and pregnancy. In this case, pregnancy and her past diseases were considered to be linked to an autoimmune abnormality that might have contributed to the inflammatory myopathy.

Abortion, Habitual↗

Isolation and partial characterization of high-buoyant-density proteoglycans synthesized in ovo by embryonic chick skeletal muscle and heart.

Proteoglycans, a major component of the extracellular matrix, are produced in many tissues. A report from this laboratory describes the proteoglycans synthesized in culture by chick embryonic skeletal muscle myotubes. To extend this study to in vivo conditions, chick embryos were radiolabeled in ovo and the newly synthesized high-buoyant-density proteoglycans from skeletal muscle analyzed. In both leg muscle and pectoral muscle, three major high-density proteoglycans are synthesized. One is small and is similar to the proteoglycans synthesized in culture by muscle fibroblasts. The other two proteoglycans are large. The larger of these shares structural features with the proteoglycan synthesized by skeletal muscle cells in culture. It has large chondroitin sulfate chains (estimated molecular weight of 70,000) with a high proportion of chondroitin 6-sulfate (approximately 90%). The smaller of the two large proteoglycans is distinct (chondroitin sulfate of estimated molecular weight 24,000 and approximately 60% 6-sulfated disaccharides) and is not detected in muscle cultures; evidence suggests it is not made by myoblasts. Whole hearts synthesize proteoglycans with some structural similarities, and also differences, to those made in skeletal muscle. These data indicate that the proteoglycans synthesized in muscle cultures are likewise made in developing muscle in ovo but that another distinct strictly in ovo proteoglycan is also produced.

Animals↗

Effect of two thermal regimes on the muscle growth dynamics of sea bass larvae, Dicentrarchus labrax L.

Muscle growth was studied in larvae of sea bass, Dicentrarchus labrax L., reared at two temperatures: real ambient temperature ( congruent with 15 degrees C during vitelline phase and increased gradually) and 19 degrees C from fertilization until the end of larval development. Muscle cellularity, body length and body weight were measured. Early temperature influenced larval development and so, pre-larval phase finished earlier at 19 degrees C than at ambient temperature (4 and 6 days, respectively). Temperature also affected muscle growth such that at hatching and at mouth opening hypertrophy of muscle fibres was greater at 19 degrees C (P < 0.05), whereas hyperplasia was similar in both groups. After 25 days, the cross-sectional area of the white muscle was greater at 19 degrees C (P < 0.05), which was mainly associated with a higher proliferation of new white muscle fibres. At this stage the body length was also higher at 19 degrees C. Metamorphosis finished earlier in fish reared at 19 degrees C (52 days) than at natural temperature (82 days). At this developmental stage body length and cross-sectional area of the myotome were similar in both groups. However, muscle cellularity differed between groups. Thus, hypertrophy of muscle fibres was higher in fish reared at ambient temperature (P < 0.05), whereas proliferation of new muscle fibres was higher at 19 degrees C (P > 0.05).

Animals↗

Why are fetal muscles slow?

Differentiating fast and slow mammalian muscles contract slowly at birth and increase their speed during the first few weeks of life. However, only small proportions of slow myosin light chains are found in early developing muscles and the fast type of light chains predominate. In addition, differentiating muscle contains unique, embryonic forms of myosin which may partially determine the early slow responses. The present study suggests additional reasons for these slow twitch times. Most skeletal muscles are initially formed from a small population of primary generation cells which are innervated by pioneering axons early in myogenesis. Subsequently, numerous secondary generation cells develop along the walls of primary myotubes, then separate and become independent units of contraction. Using affinity-purified antibodies to fast and slow myosin, it was found that most primary myotubes react with anti-slow myosin and are destined to become slow, Type I fibres. By contrast, secondary generation cells stain exclusively with anti-fast myosin and develop into Type II, fast fibres. We propose that primary myotubes constitute the fundamental motor units of the developing neuromuscular system and are responsible for early slow movements. Secondary generation cells become organized into large, fast motor units later in development, eclipsing the original slow response.

Animals↗

An improved muscle-reflex actuator for use in large-scale neuro-musculoskeletal models.

This paper extends the systematic approach described in Winters and Stark (62) for developing muscle models. The underlying motivation is our finding that for larger scale shoulder and head-neck postural systems to be mechanically stable, open-loop muscle properties are often not sufficient. There are three primary contributions. First, the previous muscle mechanical model structure and parameter estimation process of (62) is updated to reflect recent experimental findings. Second, an intrafusal (IF) muscle model is developed that includes a gamma static motoneuron (MN) drive, a Hill muscle model, and a muscle spindle sensor across the IF series element; this provides a more appropriate muscle spindle output signal, especially for studies of posture. Third, the conceptual cut between the neuro-control input and the actuator is raised from just below the MN summing junction to a higher location, allowing a "muscle-reflex actuator" to be defined that satisfies the formal theoretical requirement for possessing passive spring-like behavior when the neurocontrol input is constant, alpha-gamma MN coactivation is assumed, and three types of intrinsic autogenic reflex responses (spindle, Golgi tendon organ, Rhenshaw cell) are developed. Default feedback gains are set based on the criteria that inherent feedback should not sculpt the feedforward excitation drive by more than +/- 10% of maximum. This new actuator model only mildly affects voluntary goal-directed dynamic performance, but enhances spring-like performance around the postural equilibrium state, in line with available animal and human studies and with several theories on postural regulation.

Animals↗

Fetal development of the pyloric muscle.

The fetal development of the pyloric muscle was studied in five human embryos (crown-rump length 5 to 31 mm) and in ten fetuses aged 3 to 9 months. Samples of pyloric muscle were obtained during operation for pyloric stenosis in two infants aged six weeks. Anatomo-radiologic, morphologic and immunohistochemical studies were made on this material, from which it emerged that the pylorus is identifiable by means of specific markers from the 40th day. Its two-layered muscular structure is described in detail. The mechanism of sphincteric function is reviewed. This study assumes clinical importance in the context of the etiopathogenesis of hypertrophic stenosis of the pylorus.

Humans↗

Porcine malignant hyperthermia: false negatives in the halothane test.

Purebred Pietrain pigs presumed (on the basis of pedigree) to be homozygous for malignant hyperthermia (MH) susceptibility were subjected to a 3% halothane challenge test. A few (6%) pigs that should have been MH susceptible on the basis of parental genotype did not develop muscle rigidity in response to repeated halothane tests. Three of these animals were brought into the laboratory, and muscle biopsy specimens were obtained for in vitro analysis. Bundles of intact muscle cells dissected from biopsy specimens were electrically stimulated, and mechanical responses were monitored during exposure to halothane. In all instances, the muscle bundles from the halothane-negative (ie, not sensitive to halothane), but genetically susceptible, pigs gave in vitro responses that were similar of those of halothane-positive MH-susceptible pigs in that tetanic tension was depressed, tetanus relaxation was slowed, and small contractures were produced upon halothane exposure. Thus, the presence of a halothane-sensitive abnormality in the skeletal muscles, in and of itself, is not always sufficient for development of in vivo muscle rigidity during a brief halothane test. Furthermore, when the halothane testing of pigs is conducted by recommended techniques, false negatives still occur in a small percentage of the genetically MH-susceptible animals.

Animals↗

Acf7 (MACF) is an actin and microtubule linker protein whose expression predominates in neural, muscle, and lung development.

Several proteins belonging to the plakin family of cytoskeletal linker proteins have recently been identified, including dystonin/Bpag1 and plectin. These proteins are unique in their abilities to form bridges between different cytoskeletal elements through specialized modular domains. We have previously reported the cloning and partial characterization of Acf7, a novel member of the plakin family. More recently, the full-length cDNA for mouse Acf7 has been reported. Acf7 has a hybrid composition, with extended homology to dystonin/Bpag1 and plectin in the N-terminal half, and to dystrophin in the central and C-terminal half. Recent studies have demonstrated that Acf7 has functional actin and microtubule binding domains. Here, we describe the developmental expression profile for mouse Acf7. RNA in situ hybridization experiments revealed Acf7 transcripts in the dermomyotome and neural fold of day 8.5 mouse embryos. Later in development, Acf7 expression was predominant in neural and muscle tissues and was strongly up-regulated just before birth in type II alveolar cells of the lung. Altogether, our results suggest that Acf7 functions as a versatile cytoskeletal linker protein and plays an important role in neural, muscle, and lung development.

Aging↗

Effects of glypican-1 on turkey skeletal muscle cell proliferation, differentiation and fibroblast growth factor 2 responsiveness.

The heparan sulfate proteoglycan, glypican-1, is a low affinity receptor for fibroblast growth factor 2 (FGF2). Fibroblast growth factor 2 is a potent stimulator of skeletal muscle cell proliferation and an inhibitor of differentiation. Heparan sulfate proteoglycans like glypican-1 are required for FGF2 to transduce an intracellular signal. Understanding the role of glypican-1 in the regulation of FGF2-mediated signaling is important in furthering the understanding of the biological processes involved in muscle development and growth. In the current study, a turkey glypican-1 expression vector construct was transfected into turkey myogenic satellite cells resulting in the overexpression of glypican-1. The proliferation, differentiation, and responsiveness to FGF2 were measured in control and transfected cell cultures. The overexpression of glypican-1 in turkey myogenic satellite cells increased both satellite cell proliferation and FGF2 responsiveness, but decreased the rate of differentiation. The current data support glypican-1 modulation of both proliferation and differentiation through an FGF2-mediated pathway.

Animals↗

In situ localisation of single-stranded DNA breaks in nuclei of a subpopulation of cells within regenerating skeletal muscle of the dystrophic mdx mouse.

Degeneration of muscle fibres during the early stages of Duchenne Muscular Dystrophy (DMD) is accompanied by muscle fibre regeneration where cell division and myoblast fusion to form multinucleate myotubes within the lesions appear to recapitulate the events of normal muscle development. The mechanisms that govern the expression of genes regulating differentiation of myoblasts in regenerating skeletal muscle are of great interest for the development of future therapies designed to stimulate muscle regeneration. We show here that single-stranded breaks in DNA are localised in nuclei, using an exogenously applied medium containing labelled deoxynucleotides and the Klenow fragment of DNA polymerase I. The nuclei of a sub-population of cells lying in the inflammatory infiltrate of lesions in the skeletal muscle of the muscular dystrophic mouse (mdx), a genetic homologue of DMD, were labelled in this fashion. By contrast, labelled cells were completely absent from the muscles of normal non-myopathic animals (C57BL/10) and non-lesioned areas of mdx muscles. Cells expressing the muscle-specific regulatory gene, myogenin, were also found within mononucleate cells and myotubes within similar mdx muscle lesions. While we cannot yet say that the cells labelled by the DNA polymerase reaction are in fact differentiating, they were found only in significant numbers within mdx muscle lesions where new muscle fibres appear, providing strong circumstantial evidence that they are intimately associated with the regenerative process. Using a range of nucleases and different DNA polymerases, we show that the DNA polymerase-labelling reaction observed was DNA-dependent and most probably due to infilling of naturally occurring single-stranded gaps in DNA. Since the regenerative process in human Duchenne Muscular Dystrophy is apparently less effective than that seen in mdx mice, continued study of single-stranded DNA breaks may help to elucidate further the mechanisms controlling the expression of genes that characterise the myogenic process during skeletal muscle regeneration. Such findings might be applied in the development of future therapies designed to stimulate muscle regeneration in human dystrophies.

Animals↗

Experimental influenza B viral myositis.

To investigate the pathogenesis of influenza myositis in animals, juvenile BALB/c mice were inoculated with influenza B/Lee virus intramuscularly into the right quadriceps muscle. Chicken normal allantoic fluid (NAF) or phosphate-buffered saline (PBS) was injected into the left quadriceps of control mice and in some virus-infected mice. Serum creatinine phosphokinase (CPK) levels rose significantly on days 1 and 2 post-inoculation (PI) in only virus-inoculated mice. On days 2 and 3 PI, right quadriceps muscles developed scattered foci of a predominantly mononuclear inflammation in the perimysial connective tissue often adjacent to degenerating or necrotic muscle fibers. Immunofluorescent staining with specific anti-influenza B virus antisera showed muscle fibers that contained specific staining in nuclei and adjacent cytoplasm. Skip areas of staining within muscle fibers suggested that not all muscle nuclei within an individual muscle fiber were infected. A continuous fall in infectious virus titer in the right quadriceps muscles suggested the initial virus inoculum became inactivated and progeny virions were not produced. Left quadriceps muscle never had muscle necrosis or endomysial inflammation, specific staining of viral antigen, virus isolation, or viral RNA detected by the reverse transcriptase polymerase chain reaction assay. These findings support the hypothesis that a non-permissive influenza viral infection can develop in murine skeletal muscle that can damage specific nuclear domains of muscle fibers producing muscle degeneration or necrosis. A similar type of muscle infection may develop in humans that occasionally develop focal myositis during influenza.

Animals↗

Stages in the development of cat muscle spindles.

The structure of developing spindles has been examined in cat peroneal muscles by light and electron microscopy, beginning at the 34- to 38-day foetal stage. By this stage alpha motoneurons have formed end-plates on primary myotubes. Secondary extrafusal myotubes then develop beneath the basal lamina of primary myotubes, and are innervated by motor axons early in their assembly. First-series secondary myotubes separate from primary myotubes prior to the development of subsequent series. The assembly of extrafusal fibres is completed by birth. Intrafusal fibres assemble in a similar manner. At the 34- to 38-day foetal stage developing spindles consist of a single primary myotube containing a small accumulation of myonuclei beneath the terminals of the Ia afferent axon. Simple motor nerve terminals also innervate this myotube, which will ultimately become the bag2 fibre of the mature spindle. Secondary intrafusal myotubes then assemble beneath the basal lamina of the primary bag2 myotube, in the order presumptive bag1, long-chain, intermediate-chain and typical-chain fibres. Their assembly begins at the equator, beneath the sensory terminals, and spreads to the poles. The bag1 and long-chain myotubes separate from the bag2 in the spindle pole prior to the development of the other chain fibres. The assembly of intrafusal fibres is completed by birth. The periaxial space begins to develop in the first postnatal week. The development of tandem spindles containing b2c units is described. The role of sensory and motor innervation in the assembly and differentiation of mammalian intrafusal fibres is discussed.

Animals↗

[A study of absolute and relative growth on rat skeletal muscle].

Standard development of plantaris muscle in Wistar rats in relation to growth (2-86 weeks) was studied to define more reliable criteria of muscle hypertrophy and hyperplasia. The following variables were measured as indicators of respective factors; body weight and lower hind-limb length as physical factors, whole muscle weight and length as whole-muscle factors, and muscle fiber cross-sectional area, total fiber number and number of proliferating cell as intramuscular factors. When absolute growths were plotted against age, two stages were clearly observed for all factors. The transitional point for the two stage was observed at 10 weeks of age (about 300g in body weight). The first stage was a "growing phase" and the second was a "steady phase". When the relative growth was considered in relation to body weight, most factors increased in logarithmic functions, while muscle weight and muscle fiber cross-sectional area showed a linear relation. It was suggested, therefore, factors concerned with muscle mass and transverse growth developed more with increase in body weight than age. Furthermore, the increase in total fiber number and the decrease in number of proliferating cell in the "growing phase" showed mirror images, suggesting that most proliferating cells detected in the muscles in the "growing phase" may be myoblasts. These results assure the validity of muscle weight/body weight ratio in the evaluation of muscle hypertrophy or atrophy. However, it is remember that animals over 10 weeks of age (300g in body weight) should be used for correct evaluation of muscle hyperplasia for comparative or developmental studies of Wistar rats.

Age Factors↗