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At least 19 recordsLinked to original sources

Skeletal muscle-smooth muscle interaction: an unusual myoelastic system.

The serratus superficialis metapatagialis (SSM) of pigeons is a skeletal muscle with unusual properties. It lies between the ribs and the trailing edge of the wing, where it is attached to the skin by a system of smooth muscles having elastic tendons. Wing movements during flight induce marked changes in this muscle's length. The SSM inserts onto the deep fascia, and at its termination the skeletal muscle contains large numbers of microtubules. Many myofibrils attach to leptomeric organelles, which then attach to the terminal end of the skeletal muscle fiber. The deep fascia next connects to the dermis of the skin by bundles of smooth muscles that have elastic tendons at both ends. This system allows large movements of the muscle while preventing its fibers from overstretching. The movements and presumed forces acting at this muscle make the presence of sensory receptors such as muscle spindles unlikely. Spindles are absent in this muscle.

Animals↗

Differential expression of smooth muscle myosin, smooth muscle actin, h-caldesmon, and calponin in the diagnosis of myofibroblastic and smooth muscle lesions of skin and soft tissue.

The diagnosis of low-grade and pseudosarcomatous spindle cell lesions of skin and soft tissue can sometimes be problematic; in particular, distinction between fibroblastic, myofibroblastic, and smooth muscle proliferations can occasionally pose difficulties on routine histologic examination. We have applied a panel of immunohistochemical markers to a series of spindle cell lesions of skin and soft tissue to assess the utility of the differential expression of smooth muscle and myofibroblastic-associated markers. Twenty-eight cases of nodular fasciitis, 42 cases of fibromatosis, and 3 cases of myofibroblastic sarcoma were stained with antibodies against smooth muscle actin (SMA), smooth muscle myosin (SMMS), calponin, and high-molecular weight caldesmon (h-caldesmon). For comparison, 12 cases of cutaneous leiomyoma and 8 cases of leiomyosarcomas involving superficial soft tissues and fascia were studied with the same panel of antibodies. Thirty-eight of 42 cases of fibromatosis were positive for SMA, 42/42 cases were positive for calponin, 39/42 cases were negative for SMMS, and all cases were negative for h-caldesmon. All cases of nodular fasciitis were positive for SMA and calponin, and all were negative for h-caldesmon and SMMS. All cases of myofibroblastic sarcoma were positive for SMA and 2/3 cases for calponin, and were negative for SMMS and h-caldesmon. All cases of cutaneous leiomyoma and leiomyosarcoma were positive for all 4 markers tested. Our results demonstrate a remarkably consistent pattern of reactivity of muscle and myofibroblastic-associated markers in lesions predominantly composed of myofibroblastic spindle cells, characterized by positive staining for SMA and calponin and absence of reactivity for SMMS and h-caldesmon. Application of this panel of stains may be of aid in the differential diagnosis of low-grade myofibroblastic lesions such as nodular fasciitis and fibromatosis from smooth muscle tumors of skin and soft tissue. This panel may additionally be of assistance in the diagnosis of myofibroblastic sarcoma.

Actins↗

Regulation of phosphorylase A formation and calcium content in aortic smooth muscle and smooth muscle cells: effects of atrial natriuretic peptide II.

Atrial natriuretic peptide II (ANP II) raises cyclic GMP and relaxes vascular smooth muscle in vitro. The manner in which ANP II relaxes vascular smooth muscle is unknown but may involve alterations in the concentration of free intracellular Ca++. To examine this possibility, changes in intracellular Ca++ were monitored in rat aortic strips using the Ca++-dependent conversion of phosphorylase b to a, while Ca++ levels and phosphorylase were measured in cultured rat aortic smooth muscle cells. ANP II produced time- and concentration-dependent decreases in phosphorylase a and tension in norepinephrine-contracted aortic strips. The decrease in the formation of phosphorylase a was accompanied by an increase in cyclic GMP content. ANP II also decreased phosphorylase a formation in K+-depolarized tissues but to a lesser extent. Agonists such as angiotensin II and arginine vasopressin, and depolarizing concentrations of K+ elevated Ca++ levels in cultured aortic cells. ANP II inhibited Ca++ accumulation to either agonists or K+, but was more effective against agonists. Phosphorylase a formation which was increased by agonists and K+ in cultured cells was also inhibited by ANP II. We conclude that phosphorylase a formation can be a useful indicator of intracellular Ca++ concentrations in smooth muscle preparations and that ANP II regulates Ca++ levels in agonist and depolarized smooth muscle, suggesting that ANP II affects mainly Ca++ removal from the cytoplasm.

Angiotensin II↗

Ontogeny of beta-adrenergic receptors in pulmonary arterial smooth muscle, bronchial smooth muscle, and alveolar lining cells in the rat.

beta-Adrenergic receptors play an integral role in the modulation of cell function in the developing lung. In the rat, there are marked increases in beta receptor density in whole lung during postnatal maturation, but it is now known whether there are differential developmental changes in receptor density in specific cell types. Quantitative light microscopic autoradiography with [125I]iodocyanopindolol ([125I]ICYP) was used to determine maturational changes in beta-adrenergic receptor density in pulmonary arterial smooth muscle (ASM), bronchial smooth muscle (BSM), and alveolar lining cells (ALC) in rat lung during postnatal development (1 day to 6 mo). [125I]ICYP binding to whole lung sections revealed a single class of high-affinity receptors; agonist competitive binding studies suggested that the receptors are primarily of the beta 2 subtype. beta-Adrenergic receptor density in newborn (1 day) lung was lowest in ASM cells and was comparable in BSM cells and ALC. In contrast, in lungs from adult rats (3 mo), receptor density was similar in ASM versus BSM cells and was 2-fold greater in ALC. In addition, the maturational pattern of increasing receptor density differed in ASM compared with BSM and ALC. Receptor density in ASM increased 93% from 1 to 13 days, another 92% from 13 to 20 days, and was unchanged thereafter. In contrast, receptor density in BSM cells did not change from 1 to 13 days, but it increased 65% from 13 to 20 days, rose another 47% from 20 days to 3 mo, and increased an additional 24% from 3 to 6 mo.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Cytokeratin expression in smooth muscle and smooth muscle tumours.

The expression of cytokeratin intermediate filaments by a tumour has been accepted as evidence of an epithelial origin. Although there have been anecdotal reports of cytokeratin expression within tissues and neoplasms of non-epithelial origin, particularly muscle, there have been no comprehensive studies of its frequency and distribution. In order to investigate this we have studied 51 cases of normal smooth muscle and benign and malignant smooth muscle tumours using a panel of monoclonal antibodies against a range of intermediate filaments (cytokeratins, desmin and vimentin). Cytokeratin expression was noted overall in 50% of normal, benign and malignant smooth muscle tissues. Such expression tended to have a focal or patchy distribution. No case expressed cytokeratins in the absence of both desmin and vimentin. The implication of these findings for diagnostic immunocytochemistry is that intermediate filaments alone are not completely reliable markers of tumour histogenesis and should be used as part of a larger panel of monoclonal antibodies.

Desmin↗

Beta-2 adrenergic responses to tulobuterol in airway smooth muscle, vascular smooth muscle and adrenergic nerves.

Experiments were designed to determine the mechanism of action of the bronchodilator drug tulobuterol. Tissues were suspended in organ chambers for isometric tension recording. Tulobuterol caused concentration-dependent relaxations of guinea pig tracheae, canine saphenous veins and canine bronchi; the compound relaxed canine coronary arteries only at high concentrations and did not affect spontaneously beating guinea pig atria. A metabolite of tulobuterol, 4-hydroxytulobuterol, was more potent in relaxing guinea pig tracheae than tulobuterol, salbutamol and isoproterenol. Other metabolites (3-hydroxy-, 5-hydroxy- and 4,5-dihydroxytulobuterol) were less efficacious than 4-hydroxytulobuterol. Both tulobuterol and 4-hydroxytulobuterol acted as partial agonists. The effects of tulobuterol in the saphenous vein (but not in the coronary artery) were antagonized by the selective beta-2 adrenergic blocker ICI 118,551 but were not affected by the selective beta-1 adrenergic inhibitor metoprolol. In bronchi, removal of the epithelium reduced the relaxations caused by tulobuterol. The drug did not inhibit responses of canine bronchi to electrical stimulation of the cholinergic nerves more than those to exogenous acetylcholine. Tulobuterol caused a moderate augmentation of the evoked release of [3H]norepinephrine in canine saphenous veins previously incubated with the labeled transmitter. Thus, tulobuterol is a selective beta-2 adrenergic agonist with minimal nonselective inhibitory effect on airway and vascular smooth muscle. It also facilitates adrenergic neurotransmission, which may help to explain its bronchodilator effect in the intact organism. Tulobuterol does not activate beta-1 adrenoceptors and has no direct positive chronotropic effect. A metabolite of tulobuterol, 4-hydroxytulobuterol, is more active than the parent compound.

Adrenergic Fibers↗

Creatine kinase isoenzyme patterns in normal smooth muscle and smooth muscle neoplasms.

The CK isoenzyme composition of leiomyoma tissue is predominantly CK-BB and similar to adjacent myometrium tissue, while the leiomyosarcoma revealed a lesser quantity of CK-BB, but a greater quantity of CK-MM. The reasons for the discrepancy between the two types of neoplasms is not clear, but may reflect the changes which occur when smooth muscle becomes malignant.

Ankle↗

[Differences in phorbol-dependent phosphorylation of regulatory proteins and contraction of phasic and tonic smooth muscle].

Smooth muscles are divided into slowly contracting tonic and relatively fast phasic muscles. In both cases Ca2+ is a key mediator of the contractile response. However, the appearance of a tonic component during sphincter or arterial muscle contraction and its absence in contracting visceral smooth muscle is characteristic of their difference. We have found that in chicken tissues phorbol 12,13-dibutyrate (PDBu) induces a sustained contraction in carotid arterial muscle, but provokes no contraction in phasic gizzard smooth muscle. Next we were aimed to find differences in PDBu-induced phosphorylation of the key proteins involved in regulation of smooth muscle contraction, i.e. caldesmon, myosin light chain kinase (MLCK), and the myosin light chain kinase-related protein (KRP, also known as telokin). Two correlative differences were observed. 1. PDBu stimulated phosphorylation of MLCK in tonic smooth muscle and had no effect on the level of MLCK phosphorylation in phasic muscle. Phosphopeptide mapping suggests the involvement of mitogen-activated protein (MAP) kinases in phosphorylation of MLCK in situ. 2. PDBu induced phosphorylation of MAP-kinase sites in caldesmon in both types of smooth muscle, but this phosphorylation had no significant effect on caldesmon functional activity in vitro. For the first time we have shown that in gizzard PDBu also stimulates a yet unknown transitory caldesmon-kinase different from protein kinase, C, Ca2+/calmodulin-dependent kinase II and casein kinase CK2. 3. No significant difference was found in the kinetics of PDBu-dependent phosphorylation of KRP in tonic and phasic smooth muscles. KRP was also demonstrated to be a major phosphoprotein in smooth muscle phosphorylated in vivo at several sites located within its N-terminal sequence. Protein kinases able to phosphorylate these sites were identified in vitro. Among them, MAP-kinase was suggested to phosphorylate a serine residue homologous to that phosphorylated in MLCK. 4. p42erk2 and p38 MAP-kinases were found in phasic and tonic smooth muscles. Both were responsive to PDBu in cultured chicken aortic smooth muscle cells, and their role in phosphorylation of MLCK and low molecular weight isoform of caldesmon was evaluated.

Amino Acid Sequence↗

Regulation of the contractile element of airway smooth muscle.

Smooth muscle of the mammalian airways controls airway diameter and resistance to airflow. Smooth muscle tone is in turn controlled by a variety of external signals that are transduced to useful work by contractile proteins. The protein components of the contractile element of airway smooth muscle are similar to those found in other smooth muscles and include actin, myosin, tropomyosin, caldesmon, and calponin. There has been significant recent progress in studies of contractile system regulation of airway smooth muscle. Regulation of myosin light chain kinase, identification of the sites phosphorylated on the regulatory myosin light chains, and the effect of myosin phosphorylation on stress development and crossbridge cycling rates have all been studied in some detail. We infer from these studies that besides myosin phosphorylation there is an important role for a thin filament Ca(2+)-dependent regulatory mechanism. The potentially important thin filament proteins caldesmon and calponin are present in tracheal smooth muscle and may be phosphorylated during contraction. The use of intracellular Ca2+ indicators to estimate changes in intracellular Ca2+ ([Ca2+]i) and the development of several skinned fiber preparations have broadened the scope of physiological studies with airway smooth muscle and have suggested that the contractile element sensitivity to Ca2+ is not fixed but might be modulated by undefined messengers or excitation-contraction pathways. This adds an additional challenge to the continuing effort to define the messengers and regulatory proteins that couple activation of membrane receptors to the contractile element in airway smooth muscle.

Actins↗

Signal transduction and regulation in smooth muscle.

Smooth muscle cells in the walls of many organs are vital for most bodily functions, and their abnormalities contribute to a range of diseases. Although based on a sliding-filament mechanism similar to that of striated muscles, contraction of smooth muscle is regulated by pharmacomechanical as well as by electromechanical coupling mechanisms. Recent studies have revealed previously unrecognized contractile regulatory processes, such as G-protein-coupled inhibition of myosin light-chain phosphatase, regulation of myosin light-chain kinase by other kinases, and the functional effects of smooth muscle myosin isoforms. Abnormalities of these regulatory mechanisms and isoform variations may contribute to diseases of smooth muscle, and the G-protein-coupled inhibition of protein phosphatase is also likely to be important in regulating non-muscle cell functions mediated by cytoplasmic myosin II.

Animals↗

Stretch-induced calcium release in smooth muscle.

Smooth muscle cells undergo substantial increases in length, passively stretching during increases in intraluminal pressure in vessels and hollow organs. Active contractile responses to counteract increased transmural pressure were first described almost a century ago (Bayliss, 1902) and several mechanisms have been advanced to explain this phenomenon. We report here that elongation of smooth muscle cells results in ryanodine receptor-mediated Ca(2+) release in individual myocytes. Mechanical elongation of isolated, single urinary bladder myocytes to approximately 120% of slack length (DeltaL = 20) evoked Ca(2+) release from intracellular stores in the form of single Ca(2+) sparks and propagated Ca(2+) waves. Ca(2+) release was not due to calcium-induced calcium release, as release was observed in Ca(2+)-free extracellular solution and when free Ca(2+) ions in the cytosol were strongly buffered to prevent increases in [Ca(2+)](i). Stretch-induced calcium release (SICR) was not affected by inhibition of InsP(3)R-mediated Ca(2+) release, but was completely blocked by ryanodine. Release occurred in the absence of previously reported stretch-activated currents; however, SICR evoked calcium-activated chloride currents in the form of transient inward currents, suggesting a regulatory mechanism for the generation of spontaneous currents in smooth muscle. SICR was also observed in individual myocytes during stretch of intact urinary bladder smooth muscle segments. Thus, longitudinal stretch of smooth muscle cells induces Ca(2+) release through gating of RYR. SICR may be an important component of the physiological response to increases in luminal pressure in smooth muscle tissues.

Animals↗

Actin isoform expression, cellular heterogeneity, and contractile function in smooth muscle.

Smooth muscles express four isoforms of actin: two smooth muscle specific and two cytoplasmic isoforms typically associated with the cytoskeleton of nonmuscle cells. The relative amounts of each isoform expressed and the total actin content vary with smooth muscle type, with development, in cell culture, pathologically, and potentially between cells within tissues. Our objective was to determine whether actin isoforms contribute to contractile diversity. Functional diversity may be the result of differences in the kinetics of the cross-bridge interaction with thin filaments consisting of different actin isoforms or of the fraction of cross-bridges developing force in series or in parallel resulting from thin filaments of different lengths. Our hypothesis was that functionally significant differences in actin isoform properties (i.e., myosin interactions or properties affecting thin filament lengths) would require isoform segregation into distinct populations of thin filaments within cellular domains (e.g., cytoskeletal and contractile) or in phenotypically different cells. We tested this hypothesis by determining the smooth muscle alpha- and gamma-actin and cytoplasmic beta-actin isoform composition of native thin filaments isolated from swine stomach using isoform-specific antibodies linked to colloidal gold beads with protein A (the cytoplasmic lambda-isoactin content was below the detection limit). The lengths of individual thin filaments were also estimated from electron micrographs. A statistically uniform population of thin filaments was observed consisting of randomly copolymerized isoactins in each filament with the same isoform proportions as the tissue. The average thin filament length was 1.35 +/- 0.06 (SEM) microns. These results, together with other studies, suggest that actin isoforms are functionally equivalent. The data imply that the high stress-generating and shortening capacities of smooth muscles are not primarily due to long thin filament to thick filament length ratios compared with striated muscles.

Actins↗

Invited review: focal adhesion and small heat shock proteins in the regulation of actin remodeling and contractility in smooth muscle.

Smooth muscle cells are able to adapt rapidly to chemical and mechanical signals impinging on the cell surface. It has been suggested that dynamic changes in the actin cytoskeleton contribute to the processes of contractile activation and mechanical adaptation in smooth muscle. In this review, evidence for functionally important changes in actin polymerization during smooth muscle contraction is summarized. The functions and regulation of proteins associated with "focal adhesion complexes" (membrane-associated dense plaques) in differentiated smooth muscle, including integrins, focal adhesion kinase (FAK), c-Src, paxillin, and the 27-kDa small heat shock protein (HSP27) are described. Integrins in smooth muscles are key elements of mechanotransduction pathways that communicate with and are regulated by focal adhesion proteins that include FAK, c-Src, and paxillin as well as proteins known to mediate cytoskeletal remodeling. Evidence that functions of FAK and c-Src protein kinases are closely intertwined is discussed as well as evidence that focal adhesion proteins mediate key signal transduction events that regulate actin remodeling and contraction. HSP27 is reviewed as a potentially significant effector protein that may regulate actin dynamics and cross-bridge function in response to activation of p21-activated kinase and the p38 mitogen-activated protein kinase signaling pathway by signaling pathways linked to integrin proteins. These signaling pathways are only part of a large number of yet to be defined pathways that mediate acute adaptive responses of the cytoskeleton in smooth muscle to environmental stimuli.

Actins↗

Mechanical plasticity and contractile properties of airway smooth muscle.

Smooth muscle has the unique ability to adapt easily and quickly to length changes without compromising its ability to generate force. This ability is referred to as mechanical plasticity and is now considered to be an important aspect of smooth muscle that affects both its contractile and relaxation behaviour. It is therefore important to incorporate knowledge of plasticity into further studies of smooth muscle behaviour. It is also important that future studies be focused on deciphering the mechanism of smooth muscle length adaptation and plasticity. This review outlines some of the proposed mechanisms determining plasticity. However, it should be said that there are other proposed mechanisms not touched upon here, which may be equally as important. This review also focuses on the relevance of smooth muscle plasticity in asthma, but it is important to remember that there are other places where smooth muscle plasticity may play an equally important role.

Adaptation, Physiological↗