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Desmin in muscle formation and maintenance: knockouts and consequences.

Desmin, the muscle-specific member of the intermediate filament (IF) family, is one of the earliest known myogenic markers in both skeletal muscle and heart. Its expression precedes that of all known muscle proteins including the members of the MyoD family of myogenic helix-loop-helix (mHLH) regulators with the exception of myf5. In mature striated muscle, desmin IFs surround the Z-discs, interlink them together and integrate the contractile apparatus with the sarcolemma and the nucleus. In vitro studies using both antisense RNA and homologous recombination techniques in embryonic stem (ES) cells demonstrated that desmin plays a crucial role during myogenesis, as inhibition of desmin expression blocked myoblast fusion and myotube formation. Both in C2C12 cells and differentiating embryoid bodies, the absence of desmin interferes with the normal myogenic program, as manifested by the inhibition of the mHLH transcription regulators. To investigate the function of desmin in all muscle types in vivo, we generated desmin null mice through homologous recombination. Surprisingly, a considerable number of these mice are viable and fertile, potentially due to compensation by vimentin, nestin or synemin. However, desmin null mice demonstrate a multisystem disorder involving cardiac, skeletal and smooth muscle, beginning early in their postnatal life. Histological and electron microscopic analysis in both heart and skeletal muscle tissues reveals severe disruption of muscle architecture and degeneration. Structural abnormalities include loss of lateral alignment of myofibrils, perturbation of myofibril anchorage to the sarcolemma, abnormal mitochondrial number and organization, and loss of nuclear shape and positioning. Loose cell adhesion and increased intercellular space are prominent defects. The consequences of these abnormalities are most severe in the heart, which exhibits progressive degeneration and necrosis of the myocardium accompanied by extensive calcification. Abnormalities of smooth muscle included hypoplasia and degeneration. There is a direct correlation between severity of damage and muscle usage, possibly due to increased susceptibility to normal mechanical damage and/or to repair deficiency in the absence of desmin. In conclusion, the studies so far have demonstrated that though desmin is absolutely necessary for muscle differentiation in vitro, muscle development can take place in vivo in the absence of this intermediate filament protein. However, desmin seems to play an essential role in the maintenance of myofibril, myofiber and whole muscle tissue structural and functional integrity.

Animals↗

Deterioration of connectin/titin and nebulin filaments by an excess of protease inhibitors.

We studied the effect of protease inhibitors at a high concentration on connectin and nebulin filaments in myofibrils. Calpastatin domain I at 0.1 mM bound to connectin and nebulin filaments, and deteriorated their physico-chemical properties; the calcium-binding ability of connectin and nebulin filaments was suppressed, the susceptibility of both filaments to trypsin was markedly decreased, and the resting tension of mechanically skinned fibers was increased by 2.5 times that of the control at a sarcomere length of 3.6 microns. This indicates that the connectin filaments were made more rigid. The same phenomenon was observed from the treatment of skinned fibers with 1 mM leupeptin whose resting tension was increased to 2 times the control value. Microscopically, both protease inhibitors induced dense aggregation and disappearance of the regular striation of myofibrils due to their non-specific binding to many myofibrillar proteins. The use of excess calpastatin domain I and leupeptin should therefore be avoided in physiological and biochemical studies on connectin and nebulin filaments, as well as on myofibrils.

Animals↗

Immunocytochemical localization of desmin in skeletal muscle of swine.

A porcine antibody was used to clarify the localization of desmin filaments in the swine longissimus muscle by post-embedding immuno-electron microscopy. The major site of desmin localization was the bundle of filaments connecting Z-discs of adjacent myofibrils. These desmin filaments were localized not only between but also within myofibrils. This indicates that there exist more complicated networks rather than simple bundles of desmin filaments running parallel to the Z-discs. Clarification of desmin distribution within the myofibrils surrounding Z-discs provides a basic concept for consideration of the combination and transformation of vimentin to desmin in developing human embryonic muscles.

Animals↗

Passive stiffness in Drosophila indirect flight muscle reduced by disrupting paramyosin phosphorylation, but not by embryonic myosin S2 hinge substitution.

High passive stiffness is one of the characteristic properties of the asynchronous indirect flight muscle (IFM) found in many insects like Drosophila. To evaluate the effects of two thick filament protein domains on passive sarcomeric stiffness, and to investigate their correlation with IFM function, we used microfabricated cantilevers and a high resolution imaging system to study the passive IFM myofibril stiffness of two groups of transgenic Drosophila lines. One group (hinge-switch mutants) had a portion of the endogenous S2 hinge region replaced by an embryonic version; the other group (paramyosin mutants) had one or more putative phosphorylation sites near the N-terminus of paramyosin disabled. Both transgenic groups showed severely compromised flight ability. In this study, we found no difference (compared to the control) in passive elastic modulus in the hinge-switch group, but a 15% reduction in the paramyosin mutants. All results were corroborated by muscle fiber mechanics experiments performed on the same lines. The fact that myofibril elasticity is unaffected by hinge switching implies alternative S2 hinges do not critically affect passive sarcomere stiffness. In contrast, the mechanical defects observed upon disrupting paramyosin phosphorylation sites in Drosophila suggests that paramyosin phosphorylation is important for maintaining high passive stiffness in IFM myofibrils, probably by affecting paramyosin's interaction with other sarcomeric proteins.

Animals↗

Ultrastructural pathological study of left ventricular myocardium in patients with isolated rheumatic mitral stenosis with normal or abnormal left ventricular function.

An electron microscopic study of left ventricular myocardium was carried out in 15 patients who had isolated rheumatic mitral stenosis, with particular reference to the relation among ultrastructural pathological findings, the severity of mitral stenosis and left ventricular function. They were divided into 2 groups based on left ventricular performance evaluated by 2-dimensional echocardiography and angiocardiography. The severity of mitral stenosis was determined by hemodynamic data and mitral valve areas measured by 2-dimensional echocardiography. Regardless of the level of left ventricular contractile function we consistently demonstrated varying degrees of ultrastructural pathological alterations of left ventricular muscle cells, involving the myofibrils, mitochondria, nuclei and other elements of the sarcoplasm and membranes surrounding the myocardial cells in all specimens examined. The ultrastructural pathological findings did not correlate with the severity of mitral stenosis reflected in the echocardiographic and hemodynamic data. However, those patients with abnormal left ventricular function always exhibited more extensive loss of myofibrils resulting from either disproportion of the mitochondria-to-myofibril ratio or myofibrillar degeneration. The present investigation provides the morphological data at the ultrastructural level to support the widely held concept of a myocardial factor i.e., the extent of myocardial involvement by the rheumatic process as the basic pathogenetic mechanism responsible for left ventricular dysfunction in patients with isolated rheumatic mitral stenosis. Furthermore, it is suggested that pathological alterations of myocardial ultrastructure were related to the extent of myocardial involvement by the rheumatic process rather than being structural adaptations in response to the hemodynamic derangement.

Adult↗

Use of tetanus to investigate myofibrillar responsiveness to Ca(2+) in isolated mouse ventricular myocytes.

We used the relation between intracellular Ca(2+) concentration ([Ca(2+)](i)) and cell shortening during tetanus to evaluate the endogenous characteristics of Ca(2+) responsiveness of myofibrils in mouse ventricular myocytes. Enzymatically isolated myocytes were loaded with fura-2 AM (4 microM for 10 min), and the fura-2 fluorescence ratio at 340 and 380 nm excitation wave length [F(340)/F(380)] and cell length were measured simultaneously. Following treatment with thapsigargin (0.2 microM) (an inhibitor of the Ca(2+) pump of sarcoplasmic reticulum), myocytes were stimulated at 10 Hz for 10 s to produce a tetanic contraction and an instantaneous plot of the fluorescence ratio signal versus cell length (R-L trajectory) was constructed. An increase in the extracellular Ca(2+) concentration ([Ca(2+)](o)) from 0.5 to 2 mM extended the R-L trajectory without a substantial shift of the relation. The R-L trajectory was shifted rightward by the nonselective phosphodiesterase inhibitor, 3-isobutyl-1-methyl-xantine (IBMX, 200 microM) (desensitization of the myofibrils to Ca(2+)), and shifted leftward by the Ca(2+) sensitizing thiadiazinone derivative, EMD-57033 (0.5 microM) (sensitization of the myofibrils to Ca(2+)). Beta-adrenergic stimulant, isoproterenol (5 nM), also shifted the R-L trajectory to the right, suggesting that the membrane receptor could be preserved. These results suggest that the R-L trajectory is a useful method to estimate the myofibrillar responsiveness to Ca(2+) in isolated mouse myocytes and can be applied to various mouse models of heart disease.

1-Methyl-3-isobutylxanthine↗

[Dynamics of necrotic changes in skeletal muscle in the prolonged crush syndrome].

Forms, dynamics of and relationships between necrotic changes in the skeletal muscles in the early period of the crush syndrome, following 9-hour compression of the soft tissue of the dog's thigh and 2 -- 7 hours after removal of the press are considered. Two interdependent forms of necrosis of muscles have been established -- diskoid and coagulative. Electron-microscopy studies showed that discoid necrosis of muscular fibres began with the lysis of the myofilaments of isotropic disks and Z-strips with subsequent destruction of myofibrils and outcome into myolosis. The peculiar feature of this form of necrosis was nearly complete absence of lysosomes. In a light microscope discoid necrosis was revealed as clear-cut transversed streaky fibres. Morphologically, coagulation necrosis was manifested on the ultrastructural level by formation of myofilic conglomerates consisting of overcontracted myofibrils, these being subjected to gradual fragmentation and splitting by hydrolases of leukocytes and macrophages. Discoid necrosis predominated in the muscles prior to the removal of the press and apparently developed because of ischemia. Coagulation necrosis of myofibrils was observed mostly following re-vascularization and might be one of outcomes of discoid necrosis.

Acute Kidney Injury↗

[Distribution of creatine phosphokinase isoenzymes (EC 2.7.3.2) in cardiac cells].

The distribution of the creatinephosphokinase isoenzymes in the cardiac cells was studied by way of fractional extraction combined with an electrophoretic analysis of each of the received fractions. At the same time, the content of the creatinephosphokinase isoenzymes was studied in carefully purified preparations of myofibrils and mitochondria. The results of the conducted analysis indicate a heterogenic distribution of the creatinephosphokinase isoenzymes within the cells: about 30% of the cellular activity of the enzyme is contained in the mitochondria (the mitochondrial isoenzyme) 50% is comprised by the fraction dissolved in the cytoplasm (isoenzymes MM, MB and BB), and about 20%--in the myofibrils (isoenzyme MM), 5% of them being extracted only by a 0.9 M KCl solution. The myofibril preparation freed of the mitochondria also contains some important creatinephosphokinase activity (isoenzyme MM) comparable with their ATP-ase activity. The mitochondrial isoenzymes is found only in these structures of the cell.

Animals↗

[1 of the molecular factors of development of compensatory myocardial hypertrophy].

Using the method of tryptic digestion, the authors have found that myosin of a hypertrophied myocardium is characterized by a high resistance to proteolysis. At the final stage of compensatory hypertrophy of the myocardium an increased activity of the myofibril catherpsins is discovered. According to the authors, one of the important factors of the compensatory growth of myofibrils consists in the high resistance of the newly synthesized proteins to decay. In characterizing the subunit composition and kinetics of the tryptic decay the possibility of the synthesis of a new population of myosin in the process of compensatory hypertrophy has been postulated. This demonstrates the heterogeneity of the activation of the genetic segments that control the synthesis of protein myofibril subunites with due regard to the regimen ot the myocardium work.

Actins↗

The relationship of a decline in myofibrillar ATP-ase activity to the development of severe left ventricular hypertrophy in the rat.

Abdominal aortic coarctation in the rat led to a modest degree of cardiac hypertrophy associated with normal ATPase activity of myofibrills. The addition of aortic incompetence was accompanied by the development of severe hypertrophy (approx. 75 %). During the course of this latter increase in heart weight, the Ca++ ATPase of myofibrils progressively declined to a level 36% below controls. This occurred at a time when protein synthesis was stimulated as evidenced by increased incorporation of H3 lysine into myofibrils. Results are compatible with the hypothesis that the abnormal ATPase activity reflects the synthesis of an abnormal myosin molecule.

Animals↗

Potent stimulation of myofilament force and adenosine triphosphatase activity of canine cardiac muscle through a direct enhancement of troponin C Ca++ binding by MCI-154, a novel cardiotonic agent.

In the present study we have analyzed a likely biochemical mechanism underlying the Ca++-sensitizing action of MCI-154 (6-[4-(4'-pyridyl)aminophenyl)-4,5-dihydro-3(2H)-pyridazinone hydrochloride), a novel cardiotonic agent, on the contractile protein system. MCI-154 (10(-7) to 10(-4) M) enhanced the tension development induced by -log molar-free Ca++ concentration (pCa) 5.8 in chemically skinned fiber from the canine right ventricular muscle in a concentration-dependent manner. At pCa 7.0, MCI-154 (10(-7) to 10(-4) M) markedly increased adenosine triphosphatase (ATPase) activities of canine myofibrils and reconstituted actomyosin. In myofibrils and reconstituted actomyosin, MCI-154 (10(-7) to 10(-4) M) caused a parallel shift of the pCa-ATPase activity relation curve to the left without affecting the maximum activity, suggesting an increase in Ca++ sensitivity. MCI-154 (10(-8) to 10(-4) M) had little effect on actin-activated, Mg++, Ca++ and (K+, EDTA)-ATPase activities of myosin. Ca++ binding to cardiac myofibrils or purified cardiac troponin was increased by 10(-4) M MCI-154. These results suggest that MCI-154 enhances Ca++ binding to cardiac troponin C to elevate the Ca++ sensitivity of myofilaments and thus may cause a positive inotropic action in cardiac muscle. MCI-154 may provide a valuable tool for studying the molecular mechanism by which Ca++ regulates the contractile system.

Actin Cytoskeleton↗

[Myofibrillar creatine kinase: reversible binding to contractile proteins, stoichiometric ratio to myosin and its functional role].

Rat heart myofibrils were isolated and purified in three different media: sucrose medium; EGTA medium; EGTA+ATP medium. All preparations were characterized by similar Ca2+-sensitive ATPase activities and were practically free of mitochondrial and sarcolemmal contaminations. However, they contained different amounts of creatine kinase. In preparations which showed the most intact ultrastructure, the activity of creatine kinase was 0.99 +/- 0.12 IU/mg. It was found that creatine kinase can be bound to myofibrils in a reversible manner with Kd = 0.16 mg/ml = 1.8 X 10(-6) M; the creatine kinase/myosin ratio was estimated to be approximately 1:10. The localization of creatine kinase was found to be a basis for the high turnover rate of ATP in the coupled creatine kinase and ATPase reactions occurring in cardiac myofibrils.

Adenosine Triphosphatases↗

Phosphofructokinase: a component of the thick filament?

F-protein, a consistent contaminant of myosin preparations, has been shown to be phosphofructokinase, the key regulatory enzyme of glycolysis. In homogenates of rigor muscle most of the phosphofructokinase sediments with the myofibrils, suggesting that in the living muscle cell phosphofructokinase is not in the soluble fraction as was formerly thought, but bound to the myofibrils. Fluorescent antibody to F-protein labels myofibrils in a zone in each half of the A-band. The increase in separation of the zones across the A-band with increase in sarcomere length suggests that the antibody binds to the parts of the cross-bridge regions of the thick filament within the H-zone. It therefore seems likely that phosphofructokinase is located in the cross-bridge region of the thick filament, but that access of antibody is restricted by overlapping thin filaments.

Animals↗

Influence of explantation procedure on the electrical and morphological properties of cultured neonatal rat ventricle cells.

The ultrastructure and electrophysiological properties of ventricle cells from newborn rats were studied before and after explantation. The cultured cells were dissociated either with trypsin or with collagenase, the latter enzyme being used with and without stirring with a magnetic bar. The explanted cells were studied 10 hr and 48 hr or more after explantation. At 10 hr after explantation, the cells exhibited fast-rising action potentials, but their myofibrils were disorganized, except for stirred collagenase-dispersed cells, which were also depolarized and inexcitable. At 2 days and later after explantation, all preparations had well-defined sarcomeres and myofibrils oriented in parallel similar to the ventricle before explantation, but the cells showed slow-response action potentials together with spontaneous activity. These findings suggest that the disorganization of myofibrils does not reflect damage to the surface membrane. Moreover, collagenase seems more damaging to the cells than trypsin under similar conditions (comparable periods of mechanical stirring), especially 10 hr after explantation.

Animals↗

The influence of aging on the myosin type of the rabbit soleus and longissimus dorsi muscles.

The influence of aging on the myosin type, and on the fibre composition of both the slowly contracting ("red") M. soleus and the fast ("white") M. longissimus dorsi was examined in the rabbit. For myosin characterization isolated myofibrils were electrophoresed on SDS-polyacrylamide gels, and the fibre pattern within the respective muscles was analyzed with an immunocytochemical method. Antisera against either fast or slow rabbit myosin were collected from guinea pigs after longterm immunization. After incubation of the paraformaldehyde-fixed muscle thin sections the fibres containing either fast or slow myosin could be distinguished from each other by indirect immunofluorescence. The soleus muscles of 1 day old rabbits were composed of 25% slow and 75% fast fibres. In young-adult (5--8 mo.) rabbits the fibres were mostly slow (over 90%), while in old age (4--7 y.) again up to 50% of the soleus fibres contained fast myosin. In contrast, in the longissimus dorsi muscle constantly around 95% of the fibres contained fast myosin. In accordance with the immunocytochemical finding of an increase of fast fibres in the aging soleus muscle, the presence of fast myosin could also be demonstrated electrophoretically. With this method, soleus myofibrils from young-adult animals were observed to contain virtually slow myosin only. No slow, but only fast myosin was identified in SDS-gels of longissimus dorsi myofibrils at all ages. These results are discussed in relation to the well known metabolic alterations occurring in the mammalian skeletal muscle during aging.

Aging↗

[Reactions of the myocardium of the adult pigeon to local injury].

As demonstrates the light optic and electron microscopic investigation of the myocardium, after a local lesion of the cardiac atrium and ventricle in mature pigeons, restoration of the myocardial wall continuity occurs at the expense of the connective tissue scar. In cardiomyocytes of the zone adjoining the traumatized area, where the lesion is minimal, recovery of the myofibrillar apparatus takes place by means of restoration of the partly injured myofibrils. It is not impossible that a part of myofibrils are formed anew. These myofibrils, however, are observed to destroy with time.

Animals↗

Ultrastructure of the heart muscle cells of the cuttlefish Rossia macrosoma (Delle Chiaje) (Mollusca: Cephalopoda).

The muscle cells of the ventricle, the branchial heart and the branchial heart appendages of Rossia macrosoma (Delle Chiaje) are studied. The ventricle myocardium has three muscle layers, while the other two organs exhibited a loose arrangement of muscle cells. The muscle cells of the ventricle, the branchial heart and the branchial heart appendages are similar in structure. The nuclei are surrounded by myofibrils. In the myofibrils A-, I- and discontinuous Z-bands are seen. The diameters of the thick filaments are 300--400A, their length varies from 1.7 to 3.9 mu. Thin filaments have a diameter of approximately 85A. The ratio between thick and thin filaments is roughly 1 to 11. The SR runs mostly as a longitudinal network within the myofibrils. A few short T-tubules are observed in the Z-regions. Peripheral and internal couplings exist. The latter are few in number. Intercalated discs are small and rarely observed. They have been found in all three organs. A difference in the function of these organs is not reflected in the ultrastructure of the intercalated discs. These discs are often of the interdigitating type with interfibrillar junctions and unspecialized regions. Peripheral couplings are seen at the unspecialized regions. The intercalar surfaces of the muscle cells "shoulder off" into the lateral surface, and the transition between the two surfaces is not a sharp one. Attachment plaques are found scattered over the whole sarcolemma.

Intercellular Junctions↗

Ultrastructure of the myocardium during development from early fetal life to adult life in sheep.

The ultrastructure of the developing fetal lamb myocardium was studied in a series of animals spanning 29 days of gestation to term, and compared with newborn and adult animals. All major ultrastructural features which characterise the adult myocyte were found in early fetal life, although with considerably different degrees of development of specific features. Notably, myofibrils at 29 days of gestation are sparse and show little organisation. With advancing gestation there is an increasing number of myofibrils and the development of well defined striations. Thus, at term, the fetal tissue is not substantially different from the adult myofibril in the appearance of sarcomere structure. The observation of contractile tissue paucity and disorder in early fetal lamb myocardium is difficult to reconcile with available physiological data, which show an extraordinary pumping performance of the heart in vivo, and requires further investigation.

Animals↗