PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Skeletal muscle dysfunction”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 379 records · Page 21Linked to original sources

Decreased myocardial nNOS, increased iNOS and abnormal ECGs in mouse models of Duchenne muscular dystrophy.

Duchenne muscular dystrophy is a devastating neuromuscular disease caused by lack of the protein, dystrophin, in skeletal muscle and heart, although the biochemical mechanism by which dystrophin loss causes muscle dysfunction is unknown. Here we show that the dystrophin-deficient mdx mouse and a mouse lacking both dystrophin and the dystrophin-related protein, utrophin (dko), have abnormal electrocardiograms (ECGs). In skeletal muscle, dystrophin is normally associated with neuronal nitric oxide synthase (nNOS) at the sarcolemma. Consequently, we have measured NOS isoform activities in hearts from control, mdx and dko mice. In control mouse hearts, eNOS and nNOS activities increased by 120% and 47%, respectively, between 2 and 6 months of age. In mdx mice, myocardial nNOS activity was decreased by 60%, 84% and 80% at 2, 6 and 12 months of age, respectively. Similarly, hearts from dko mice showed a 65% decrease in nNOS activity compared to controls at 2 months of age. Endothelial NOS (eNOS) activity was not affected by dystrophin loss, but inducible NOS (iNOS) activity was seven-fold higher than control in the mdx mouse heart by 12 months of age. We conclude that lack of dystrophin in the mdx mouse results in abnormal ECGs that are associated with decreased myocardial nNOS and increased iNOS activities.

Aging↗

Biogenesis of acetylcholinesterase is impaired, although its mRNA level remains normal, in the glucocorticoid-treated rat skeletal muscle.

Acetylcholinesterase (AChE) is responsible for the hydrolysis of acetylcholine in the neuromuscular junction and other cholinergic synapses. Insight into the mechanisms controlling AChE expression in skeletal muscle is important for understanding formation, plasticity, and various dysfunctions of the neuromuscular junction. We have investigated the mechanisms responsible for the decreased AChE activity in the fast rat sternomastoideus muscle after chronic glucocorticoid treatment. Under such conditions fast skeletal muscles become atrophic and loose 30-40% of their AChE activity. In order to establish at which level synthesis of AChE is affected by glucocorticoids, we studied the effects of chronic dexamethasone treatment at both AChE mRNA and mature enzyme levels. Reduced rate of AChE recovery after subtotal irreversible AChE inhibition was observed during the first week of dexamethasone treatment, but not later. Statistical analyses of four independent northern blots revealed unchanged AChE mRNA levels. At the same time, we observed more than 60% decrease in the (G1+G2)/A12 ratio of molecular forms at the expense of G forms. It has been generally accepted that globular G1 and G2 molecular forms are synthesized in the rough endoplasmic reticulum as precursors of asymmetric (A) AChE forms, assembled in the Golgi apparatus. Reduced levels of G1 and G2 AChE forms, in combination with unchanged AChE mRNA, are therefore consistent with the reports demonstrating that glucocorticoids downregulate muscle protein synthesis at the translational level. Our findings support but not entirely prove the concept that impaired translation and/or posttranslational control are the primary cause of decreased AChE activity in the glucocorticoid-treated muscle.

Acetylcholinesterase↗

Effective organ blood flow and bioenergy status in murine peritonitis.

Whether organ dysfunction frequently encountered in overwhelming bacterial sepsis is a result of a direct cellular "toxic" effect or diminished cellular perfusion remains controversial. To assess the effects of peritonitis on cellular energy status and visceral blood flow, peritonitis was induced in rats by means of cecal ligation and perforation. Five, 10, or 20 hours after cecal ligation and perforation, cardiac outputs were determined by thermodilution, effective hepatic blood flow was determined by low-dose galactose clearance, and effective renal plasma flow was determined by paraminohippuric acid clearance. In similar groups of rats with peritonitis or sham controls, tissue samples of liver, kidney, and skeletal muscle were obtained by freeze-clamp technique for analysis of adenine nucleotides, energy charge, pyruvate, lactate, and pyruvate/lactate ratios (P/L). Despite an increase in cardiac output (p less than 0.05), results indicated in this model that effective hepatic blood flow and effective renal plasma flow were significantly reduced (p less than 0.05). The energy charge and P/L ratios of hepatic (p less than 0.01) and renal (p less than 0.05) tissues were also decreased. In contrast, skeletal muscle energy charge and P/L ratio were unchanged by 20 hours duration. These data support the hypothesis of diminished visceral perfusion as contributory to the cellular dysfunction observed in sepsis. Skeletal muscle appears either nonischemic or more tolerant of ischemia in sepsis.

Adenosine Triphosphate↗

Sympathetic vasoconstrictor reflexes in Parkinson's disease with autonomic dysfunction.

Centrally and locally elicited sympathetic vasoconstrictor responses were examined in 12 patients with symptoms and signs of cardiovascular autonomic dysfunction due to Parkinson's disease. The sympathetic reflex mechanisms were measured in skeletal muscle and subcutaneous tissue of the arm and leg using the 133-Xenon washout technique. This method allows differentiation between local and central sympathetic reflexes in different tissues. The results indicate an abolished centrally mediated vasoconstrictor response in skeletal muscle in the arm and a decreased response in skeletal muscle in the leg and in subcutaneous tissue. This is in agreement with an autonomic dysfunction located in the central nervous system. A possible spinal sympathetic reflex controlling blood flow in subcutaneous tissue and leg muscles is considered. The sympathetic vasoconstrictor responses in parkinsonian patients without autonomic failure were of normal magnitude and the responses were not affected by long-term levodopa treatment.

Adult↗

Evidence for a spontaneous C1840-T mutation in the RYR1 gene after DNA fingerprinting in a malignant hyperthermia susceptible family.

Malignant hyperthermia (MH) is a potentially lethal inherited pharmacogenetic syndrome due to a dysfunction of the intracellular calcium regulation of skeletal muscle following administration of volatile anaesthetics and depolarizing muscle relaxants. The ryanodine receptor of skeletal muscle (RYR1), which is an intracellular calcium release channel, has been proposed to be a candidate structure for the MH defect. In some families with a history of MH a C1840-T nucleotide exchange has been found in the RYR1 gene which cosegregates with the MH susceptible phenotype. Sixteen individuals (5 males and 11 females; age 8-68 years, 7 MH susceptible, 9 MH non-susceptible) of a family with a history of MH were screened for the C1840-T mutation in the RYR1 gene using standard methods. DNA fingerprinting was performed in order to verify the kinship. MH susceptibility was determined using the standard in vitro contracture test with halothane and caffeine. The present article describes a German MH pedigree carrying a spontaneous C1840-T mutation. The mutation was detected in one individual of the third generation. This person was classified as MH susceptible according to the in vitro contracture test protocol. None of the other family members (6 MH susceptible and 9 MH non-susceptible persons), including the parents of the child carrying the mutation, presented the C to T nucleotide exchange at position 1840.This novel observation clearly demonstrates that only the detection of the C1840-T mutation may lead to the diagnosis of MH susceptibility, but missing the mutation does not justify diagnosing a patient as non-susceptible within a single pedigree.

Adolescent↗

Mitochondrial myopathy diagnosis.

Oxidative phosphorylation (OXPHOS) accounts for approximately 95% of the adenosine triphosphate (ATP) produced by the cell. The central nervous system, peripheral nervous system, cardiac muscle, skeletal muscle, and smooth muscle are highly susceptible to dysfunction of this complex enzyme system. Although most OXPHOS diseases are multisystem disorders, the neuromuscular manifestations are often prominent and play an important role in patient diagnosis. To assist the neurologist in evaluating these complex patients, this article focuses on selected samples of OXPHOS diseases with identifiable neuromuscular abnormalities and presents an evaluation algorithm to facilitate patient diagnosis.

Algorithms↗

Risperidone-induced neuroleptic malignant syndrome.

OBJECTIVE: To describe a patient with neuroleptic malignant syndrome (NMS) induced by risperidone, an atypical antipsychotic, and to review the available literature related to risperidone-associated NMS. DATA SOURCE: Case report information was obtained from the resident physician and medical records. MEDLINE and Index Medicus were searched to obtain literature published between 1960 and 1995. DATA SYNTHESIS: We report an adolescent boy who developed NMS after treatment with risperidone. Risperidone therapy was started after unsuccessful treatment and development of extrapyramidal adverse effects with haloperidol. The patient demonstrated the classic tetrad of fever, generalized skeletal muscle rigidity, altered mental status, and autonomic dysfunction. Risperidone was discontinued and the patient recovered after a prolonged hospital course with supportive management. CONCLUSIONS: Clinicians are cautioned about the possibility of NMS with risperidone.

Adolescent↗

Central and peripheral adaptations to physical training in patients with end-stage renal disease.

Renal replacement treatment options are life-saving treatments for patients with end-stage renal disease (ESRD). However, prolonged survival in patients with ESRD is associated with various functional and morphological disorders from almost all systems. Anaemia, deconditioning, cardiac dysfunction. impairment of cardiac autonomic control and skeletal muscle weakness and fatigue, primarily because of 'uraemic' myopathy and neuropathy, are the main predisposing factors for their poor functional ability. Physical training is being recommended as a complementary therapeutic modality. There are generally 3 methods of exercise training applied in patients with ESRD: (i) the supervised outpatient programme that is held in a rehabilitation centre; (ii) a home exercise rehabilitation programme; and (iii) exercise rehabilitation programme during the first hours of the haemodialysis treatment in the renal unit. All the available training data show that the application of an exercise training programme in patients with ESRD enhances their physical fitness. This improvement is due to central and mainly peripheral adaptations. Exercise training in these patients increases aerobic capacity, causes favourable left ventricular functional adaptations, reduces blood pressure in patients with hypertension, modifies other coronary risk factors, increases the cardiac vagal activity and suppresses the incidence of cardiac arrhythmias. Moreover, exercise training has beneficial effects on muscle structural and functional abnormalities. These central and peripheral adaptations to exercise training cause an increase in their functional capacity and offer them achance of a better quality of life. Moreover, exercise training improves exercisee tolerance of renal post-transplant patients.

Adaptation, Physiological↗

[Acute gastric dilatation in Duchenne's muscular dystrophy].

A 15 year old boy with Duchenne muscular dystrophy had severe pain in the lower abdomen and complained of nausea and bilious vomiting. A physical examination and an abdominal X-ray indicated an acute gastric dilation. With a treatment policy of administering nothing orally, a downward-hanging stomach tube and the intravenous administration of fluid the symptoms subsided. In Duchenne muscular dystrophy there may also be atrophy of the smooth muscle layers, in addition to the known progressive atrophy of striated skeletal and cardiac muscle. This may cause clinical dysfunctioning of the gastro-intestinal tract in the second decade of life.

Abdominal Pain↗

[Impairments of insulin receptor function in insulin resistant states].

Type 2 diabetes is characterized by insulin resistance in skeletal muscle. Since the molecular mechanism of insulin resistance is still unknown, insulin receptor dysfunction including abnormal IRS-1 phosphorylation is considered to be responsible for insulin resistance in some pathological states. Obesity is one of major factors to induce insulin receptor dysfunction. Regarding the mechanism of insulin resistance related obesity, the increased expression of Tumor necrosis factor alpha and abnormality in PTPase in skeletal muscle are postulated. As well as obesity, prolonged hyperglycemia, dyslipidemia and hypertension also induce the impairment of insulin receptor function. Therefore, the enhancement of insulin sensitivity by modulating these factors is a possible treatment modality in insulin resistant states.

Diabetes Mellitus, Type 2↗

Inhibition of apoptosis improves outcome in a model of congenital muscular dystrophy.

The most common form of human congenital muscular dystrophy (CMD) is caused by mutations in the laminin-alpha2 gene. Loss of laminin-alpha2 function in this autosomal recessive type 1A form of CMD results in neuromuscular dysfunction and, often, early death. Laminin-alpha2-deficient skeletal muscles in both humans and mice show signs of muscle cell death by apoptosis. To examine the significance of apoptosis in CMD1A pathogenesis, we determined whether pathogenesis in laminin-alpha2-deficient (Lama2(-/-)) mice could be ameliorated by inhibiting apoptosis through either (a) inactivation of the proapoptosis protein Bax or (b) overexpression of the antiapoptosis protein Bcl-2 from a muscle-specific transgene. We found that both of these genetic interventions produced a several-fold increase in the lifespan of Lama2(-/-) mice. Bax inactivation also improved postnatal growth rate and myofiber histology and decreased fixed contractures of Lama2(-/-) mice. Thus, Bcl-2 family-mediated apoptosis contributes significantly to pathogenesis in the mouse model of CMD1A, and antiapoptosis therapy may be a possible route to amelioration of neuromuscular dysfunction due to laminin-alpha2 deficiency in humans.

Animals↗

Tissue oximetry for the diagnosis of neurally mediated syncope.

This study examined the potential clinical contribution of noninvasive brain and skeletal muscle oximetry as a diagnostic aid in neurally mediated syncope. Tilt table testing was performed in 15 patients with a history of syncope and 9 healthy volunteers. Spatially resolved reflectance near-infrared spectroscopy was used to examine regional oxyhemoglobin saturation in the frontal cerebral cortex and pectoral muscle. During upright tilt, syncope occurred in four patients. Each episode was associated with bradycardia, hypotension, and brain oxygen desaturation of > 20% from the supine reference baseline, while the largest desaturation in nonsyncopal patients was 13%. In two syncopal patients, a sudden increase in pectoral oxygen saturation preceded cerebral oxygen desaturation and unconsciousness, suggesting a sudden loss of peripheral sympathetic tone. Simultaneous desaturation in both tissues in the other two patients appeared to be in response to a diminished cardiac output. The muscle and brain oxygen saturation ratio increased by 75% with apparent sympathetic dysfunction, but never changed by > 25% in the other patients, and varied by < 15% in the volunteers. These results suggest that during tilt table testing, simultaneous assessment of brain and skeletal muscle oxygenation may provide a simple, objective aid for the identification of contributory sympathetic dysfunction.

Adolescent↗

Skeletal muscle ouabain binding sites are reduced in rats with chronic heart failure.

Intrinsic skeletal muscle abnormalities decrease muscular endurance in chronic heart failure (CHF). In CHF patients, the number of skeletal muscle Na(+)-K(+) pumps that have a high affinity for ouabain (i.e., the concentration of [(3)H]ouabain binding sites) is reduced, and this reduction is correlated with peak oxygen uptake. The present investigation determined whether the concentration of skeletal muscle [(3)H]ouabain binding sites found during CHF is related to 1) severity of the disease state, 2) muscle fiber type composition, and/or 3) endurance capacity. Four muscles were chosen that represented slow-twitch oxidative (SO), fast-twitch oxidative glycolytic (FOG), fast-twitch glycolytic (FG), and mixed fiber types. Measurements were obtained 8-10 wk postsurgery in 23 myocardial infarcted (MI) and 18 sham-operated control (sham) rats. Eighteen rats had moderate left ventricular (LV) dysfunction [LV end-diastolic pressure (LVEDP) < 20 mmHg], and five had severe LV dysfunction (LVEDP > 20 mmHg). Rats with severe LV dysfunction had significant pulmonary congestion and were likely in a chronic state of compensated congestive failure as indicated by an approximately twofold increase in both lung and right ventricle weight. Run time to fatigue and maximal oxygen uptake (VO(2 max)) were significantly reduced ( downward arrow39 and downward arrow28%, respectively) in the rats with severe LV dysfunction and correlated with the magnitude of LV dysfunction as indicated by LVEDP (run time: r = 0.60, n = 21, P < 0.01 and VO(2 max): r = 0.93, n = 13, P < 0.01). In addition, run time to fatigue was significantly correlated with VO(2 max) (r = 0.87, n = 15, P < 0.01). The concentration of [(3)H]ouabain binding sites (B(max)) was significantly reduced (21-28%) in the three muscles comprised primarily of oxidative fibers [soleus: 259 +/- 14 vs. 188 +/- 17; plantaris: 295 +/- 17 vs. 229 +/- 18; red portion of gastrocnemius: 326 +/- 17 vs. 260 +/- 14 pmol/g wet tissue wt]. In addition, B(max) was significantly correlated with VO(2 max) (soleus: r = 0.54, n = 15, P < 0.05; plantaris: r = 0.59, n = 15, P < 0.05; red portion of gastrocnemius: r = 0.65, n = 15, P < 0.01). These results suggest that downregulation of Na(+)-K(+) pumps that possess a high affinity for ouabain in oxidative skeletal muscle may play an important role in the exercise intolerance that attends severe LV dysfunction in CHF.

Animals↗

Unaltered respiratory chain enzyme activity and mitochondrial DNA in skeletal muscle from patients with idiopathic Parkinson's syndrome.

There is good evidence that patients with Parkinson's disease have respiratory chain dysfunction in their substantia nigra. Since mitochondrial cytopathies due to enzyme defects in the respiratory chain are predominantly manifested in tissues with a high oxidative metabolism we analyzed oxidative energy metabolism in skeletal muscle from 6 patients with Parkinson's disease. Control muscles were from subjects of the same age group. Histological and histochemical analyses showed no morphological abnormalities found in mitochondrial myopathies. Biochemical analyses of the various complexes of the respiratory chain were normal. Since 13 subunits of complexes I, III, IV and V of the respiratory chain are encoded by the mitochondrial genome we performed Southern blot and PCR analyses in skeletal muscle from patients and controls and found no disease-specific increase in deletions or insertions of the mitochondrial genome. Therefore, we do not think that skeletal muscle reflects the mitochondrial disturbance in Parkinson's disease found in the substantia nigra.

Aged↗

Cardiac involvement in adults with m.3243A>G MELAS gene mutation.

Cardiac data in adults with mitochondrial encephalomyopathy, lactic acidosis, and strokelike episodes (MELAS syndrome) or asymptomatic gene carriers with the mitochondrial deoxyribonucleic acid adenine-to-guanine point mutation at nucleotide pair 3243 are scarce. Twelve subjects (mean age 35 +/- 13 years), 8 with MELAS syndrome (patients) and 4 asymptomatic gene carriers (carriers), were enrolled in the study. Each subject underwent electrocardiography, exercise testing, Holter monitoring, echocardiography, and genetic and biochemical analysis for respiratory chain enzyme activity (complex I rest activity) in skeletal muscle. On electrocardiography and Holter monitoring, none of the subjects had evidence of preexcitation, cardiac arrhythmias, or conduction abnormalities. Patients had significantly lower (42 +/- 17% from normal vs 103 +/- 14%, p <0.02) exercise tolerance. All but 1 of the patients and none of the gene carriers had ragged red fibers on muscle biopsy. The mean percentage of gene mutation in skeletal muscle tended to be higher in patients (53 +/- 19%, range 19% to 73%) compared with carriers (33 +/- 20%, range 15% to 62%). Mean complex I rest activity in patients (36 +/- 18%, range 10% to 58%) was significantly (p <0.01) lower compared with carriers (120 +/- 60%, range 72% to 205%). Left ventricular (LV) abnormalities were confined to patients with MELAS syndrome. Two patients had LV hypertrophy, 5 had LV systolic abnormalities, and 5 had LV diastolic dysfunction. Apart from 1 patient with an isolated LV diastolic abnormality, all patients with LV abnormalities had ragged red fibers. Patients with abnormal systolic LV function had a trend toward a higher percentage of mutated skeletal muscle (59.7 +/- 10.7% vs 35.8 +/- 21.3%, p <0.10) and significantly lower complex I rest activity (26.7 +/- 14.0% vs 97.8% +/- 57.9, p <0.01). In conclusion, none of the MELAS gene carriers had cardiac abnormalities, whereas most patients with the MELAS phenotype, particularly those with ragged red fibers, had LV involvement.

Adolescent↗

A non-invasive selective assessment of type I fibre mitochondrial function using 31P NMR spectroscopy. Evidence for impaired oxidative phosphorylation rate in skeletal muscle in patients with chronic heart failure.

BACKGROUND: Skeletal muscle abnormalities contribute considerably to the clinical expression of heart failure. Deconditioning, underperfusion and an increased number of type IIb glycolytical fibres lead to early lactate production and muscle fatigue at low exercise levels. Aerobic muscle metabolism may also be impaired, as suggested by biopsy studies. Thus far, no data are available from non-invasive studies to indicate the extent of aerobic muscle dysfunction during low-grade exercise which does not induce acidosis. METHODS AND RESULTS: Mitochondrial function of skeletal muscle during fibre type I activation was studied in 22 patients with chronic heart failure [NYHA class III, left ventricular ejection fraction 28 +/- 2%, (patients)] on ACE inhibitors, diuretics and digoxin, and in 20 normal subjects, using 31P NMR spectroscopy of a single right forearm flexor muscle during three mild intermittent exercise levels (0-40% of maximum voluntary contraction) and recovery time. At rest, the inorganic phosphate/phosphocreatine ratio was different [0.13 +/- 0.005 (patients) vs 0.09 +/- 0.002 (normal subjects), P = 0.0001]. However, intracellular pH was comparable. Local acidosis (tissue pH < 6.9) was avoided to prevent fibre type IIb activation. Calculated resting phosphate potential levels were comparable, but the slope and intercept of the linear relationship of phosphate potential and workload were significantly lower in patients than in normal subjects (11.7 +/- 0.7 vs 15.8 +/- 0.6 and 139 +/- 7 vs 196 +/- 7, patients vs normal subjects, indicating early exhaustion of intracellular energy at lower exercise levels. Also, maximum calculated workload at which tissue ADP stabilized was lower in patients than in normal subjects (88 +/- 7% vs 120 +/- 4% of maximum voluntary workload, patients vs normal subjects, P < 0.05). Time to recovery to pre-test phosphocreatine levels was prolonged by 46% in patients compared to normal subjects (P < 0.05). CONCLUSIONS: In heart failure, oxidative fibre mitochondrial function in skeletal muscle is impaired, as reflected by the reduced phosphate potential and oxidative phosphorylation rate, early exhaustion and slowed recovery of intracellular energy reserve at workloads, which do not affect intracellular pH.

Adenosine Triphosphate↗

Free fatty acids in obesity and type 2 diabetes: defining their role in the development of insulin resistance and beta-cell dysfunction.

Plasma free fatty acids (FFA) play important physiological roles in skeletal muscle, heart, liver and pancreas. However, chronically elevated plasma FFA appear to have pathophysiological consequences. Elevated FFA concentrations are linked with the onset of peripheral and hepatic insulin resistance and, while the precise action in the liver remains unclear, a model to explain the role of raised FFA in the development of skeletal muscle insulin resistance has recently been put forward. Over 30 years ago, Randle proposed that FFA compete with glucose as the major energy substrate in cardiac muscle, leading to decreased glucose oxidation when FFA are elevated. Recent data indicate that high plasma FFA also have a significant role in contributing to insulin resistance. Elevated FFA and intracellular lipid appear to inhibit insulin signalling, leading to a reduction in insulin-stimulated muscle glucose transport that may be mediated by a decrease in GLUT-4 translocation. The resulting suppression of muscle glucose transport leads to reduced muscle glycogen synthesis and glycolysis. In the liver, elevated FFA may contribute to hyperglycaemia by antagonizing the effects of insulin on endogenous glucose production. FFA also affect insulin secretion, although the nature of this relationship remains a subject for debate. Finally, evidence is discussed that FFA represent a crucial link between insulin resistance and beta-cell dysfunction and, as such, a reduction in elevated plasma FFA should be an important therapeutic target in obesity and type 2 diabetes.

Animals↗

The functional matrix concept and its relationship to temporomandibular joint dysfunction and treatment.

It is inappropriate for the nonclinician to qualitatively assess the several currently available therapies for treating TMJ dysfunction. However, it is pertinent to note that the matters reviewed in this article may assist the clinician by providing some deeper insights into the biomechanical bases of any successful therapy. TMJ dysfunction is a summary term for a broad spectrum of joint malfunctions, variously termed. These may be related to congenital, traumatic, pathologic, occupational, or psychologic factors. Similarly diverse are the symptoms of dysfunction at this joint, ranging from pain to structural disorder. The emphasis in this article on the role of mandibularly related muscles in the regulation of joint morphology and function may, with assurance, be extended to considerations of joint dysfunction. To the extent that TMJ dysfunction, in a specific patient, reflects dysfunction of the related functional matrix, then it would be correct to give consideration to directing therapeutic attention to these same muscles. Just as a skeletal unit can, and does, adapt both its structure and function to normal changes of its functional matrix, so a dysfunctional skeletal unit may confidently be adaptively return to normality following appropriate therapeutic alteration of the same matrix.

Biomechanical Phenomena↗