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Contraction bands in visceral and vascular smooth muscle.

Smooth muscle contraction bands (SMCBs) have been described in the gastrointestinal tract, subsequent to acute ischemia, and in the coronary arteries of animals and individuals with a sudden death; in these circumstances SMCBs have been postulated to serve as a premortem marker, and suggested as diagnostically useful. The present investigation was undertaken to determine whether the presence of SMCBs could be correlated with a premortem clinical condition. Retrospectively, the routinely prepared histological sections from 76 autopsy and 93 surgical cases were screened semiquantitatively for the presence of SMCBs. The autopsy sections examined included the gastrointestinal tract, the prostate, and the coronary arteries, as well as all other smooth muscle-containing tissues; the surgical specimens included: coronary artery endarterectomies; saphenous vein bypass grafts; temporal artery biopsies; prostatic curettings; colectomies; varicose veins; leiomyomas of uterus, bowel, and skin; and, leiomyosarcomas. The clinical and pathology reports were reviewed for patient demographics, major clinical diagnoses, presence of shock, details of any resuscitation attempts, time interval to postmortem, and the cause of death. SMCBs were evident in 100% of the gastrointestinal and prostate, and in 96% of the coronary artery autopsy sections examined. All surgical specimens were positive for SMCBs, the exceptions being leiomyomas (positive in 13 of 22; 60%) and leiomyosarcomas (4 of 5; 80%); SMCBs in surgical specimens were less prominent when compared with those observed in autopsy tissue. No correlation was found between the presence of SMCBs and any clinical or demographic parameter assessed, because of the virtual universal occurrence of the SMCBs. The presence of less distinct SMCBs in surgical specimens may very well be artifactual, akin to myocardial and skeletal muscle contraction bands. The observation that SMCBs at autopsy are virtually ubiquitous suggests that they are best considered an agonal phenomenon, and a nonspecific pathological finding.

Adolescent↗

A possible role of linked Na and Cl movement in active Cl uptake in smooth muscle.

Smooth muscles actively accumulate Cl. Abolition of the transmembrane Na gradient has been shown to lead to a passive distribution of Cl. This suggested to us that Na and Cl may move together across the smooth muscle cell membrane, Cl accumulation resulting due to [Na]i being less than [Na]o. In favour of this view are the findings that Cl uptake is reduced in Na-free medium, Na uptake is reduced in Cl-free medium, reducing [Cl]i reduces Na efflux, and increasing [Na]i increases Cl efflux.

Animals↗

Light-chain phosphorylation controls the conformation of vertebrate non-muscle and smooth muscle myosin molecules.

Phosphorylation of the 20,000-molecular weight (Mr) light chains of vertebrate non-muscle (thymus) and smooth muscle (gizzard) myosins regulates the assembly of these myosins into filaments in vitro. At physiological ionic strength and pH, nonphosphorylated smooth muscle and non-muscle myosin filaments are disassembled by stoichiometric levels of MgATP, forming species having sedimentation coefficients of approximately 11S (range 10-12S; myosin monomers in high salt sediment at 6S). When the 20,000 (20K)-Mr light chains on these 11S myosin species are phosphorylated by the light-chain kinase/calmodulin-Ca2+ complex, the inhibitory effect of the light chains on filament formation is removed and the myosins reassemble into filaments which are stable in MgATP. It was originally suggested that the 11S myosin species was a dimer, previously suggested as a building block for smooth muscle and non-muscle myosin filaments. It has since been shown, however, that 11S smooth muscle myosin is monomeric and has a folded conformation rather than the extended shape characteristic of monomeric myosin in high salt. Here we show that 11S non-muscle myosin is also folded and that phosphorylation of the 20K-Mr light chains of both vertebrate non-muscle (thymus) and vertebrate smooth muscle (gizzard) myosins causes these folded 11S molecules to unfold into the conventional extended monomeric form, which is able to assemble into filaments.

Animals↗

[BK channels play an important role as a negative feedback mechanism in the regulation of spontaneous rhythmic contraction of urinary bladder smooth muscles].

Smooth muscles of urinary bladder wall exhibit spontaneous rhythmic contraction which is myogenic in origin. Although the precise mechanism responsible for the generation of this mechanical activity remains to be established, it can be related closely to the action potential (AP) in urinary bladder smooth muscle (UBSM) cell, and may be the fundamental constituent to determine urinary bladder physiological functions to store and micturate urine. In the present study, possible roles of voltage-dependent and Ca(2+)-sensitive K+ (BK) channels, highly expressed in UBSM cells, were examined in the regulation of spontaneous UBSM contraction with reference to the generation of AP. Iberiotoxin (IbTx), a selective BK channel blocker, strongly increased mechanical activity and AP generation in guinea-pig UBSM. In contrast, BK channel openers (NS-1619, niflumic acid; estradiol, tamoxifen: BK channel alpha- and beta-subunit activators, respectively) significantly diminished AP generation and spontaneous mechanical activity. The present study indicates that BK channels play the primary role as a negative feedback element to limit extracellular Ca2+ influx through affecting AP configurations in the generation of UBSM contraction. BK channel openers including beta-subunit activators may be a potentially useful therapeutic remedy for the treatment of urinary bladder dysfunctions such as frequent urination.

Action Potentials↗

Isotonic relaxation of control and sensitized airway smooth muscle.

Smooth muscle relaxation has most often been studied in isometric mode. However, this only tells us about the stiffness properties of the bronchial wall and thus only about wall capacitative properties. It tells us little about airflow. To study the latter, which of course is the meaningful parameter in regulation of ventilation and in asthma, we studied isotonic shortening of bronchial smooth muscle (BSM) strips. Failure of BSM to relax could be another important factor in maintaining high airway resistance. To analyze relaxation curves, we developed an index of isotonic relaxation, t1/2(P, lCE), which is the half-time for relaxation that is independent of muscle load (P) and of initial contractile element length (lCE). This index was measured in curves of relaxation initiated at 2 s (normally cycling crossbridges) and at 10 s (latch-bridges). At 10 s no difference was seen for adjusted t1/2(P, lCE) between curves obtained from control and sensitized BSM, (8.38 +/- 0.92 s vs. 7.78 +/- 0.93 s, respectively). At 2 s the half-time was almost doubled in the sensitized BSM (6.98 +/- 0.01 s (control) vs. 12.74 +/- 2.5 s (sensitized)). Thus, changes in isotonic relaxation are only seen during early contraction. Using zero load clamps, we monitored the time course of velocity during relaxation and noted that it varied according to 3 phases. The first phase (phase i) immediately followed cessation of electrical field stimulation (EFS) at 10 s and showed almost the same velocity as during the latter 1/3 of shortening; the second phase (phase ii) was linear in shape and is associated with zero load velocity, we speculate it could stem from elastic recoil of the cells' internal resistor; and the third phase (phase iii) was convex downwards. The zero load velocities in phase iii showed a surprising spontaneous increase suggesting reactivation of the muscle. Measurements of intracellular calcium (Fura-2 study) and of phosphorylation of the 20 kDa myosin light chain showed simultaneous increments, indicating phase iii represented an active process. Studies are under way to determine what changes occur in these 3 phases in a sensitized muscle. And of course, in the context of this conference, just what role the plastic properties of the muscle play in relaxation requires serious consideration.

Animals↗

Histamine-induced rhythmic contraction of hog carotid artery smooth muscle.

Smooth muscle strips isolated from the hog common carotid artery can contract rhythmically, exhibiting low frequency, large amplitude oscillations in tension when stimulated with 10 microM histamine. Strips required at least 1.45 mM calcium and 2.5 mM potassium to exhibit this rhythmic activity. Rhythmic contractions could be converted to tonic contractions by removal of potassium or ouabain treatment. Relaxation by 2 mM lanthanum, 1 mM manganese, or 1 microM verapamil implies that the external medium is the source of calcium mediating the contractions. The involvement of adrenergic nerve terminals in this response was ruled out, since propranolol, phentolamine, tetrodotoxin, bretylium, or 6-hydroxydopamine treatment did not alter the oscillations. Blockade of H1 receptors with 0.1 microM diphenhydramine relaxed the muscle strips. The H2 receptor antagonist cimetidine (5 microM) had no effects. Attempts to obtain rhythmic contractions by stimulating with other vasoactive agents (norepinephrine, acetylcholine, 5-hydroxytryptamine, angiotensin II, and elevated potassium concentrations) were unsuccessful, suggesting that this is a specific histamine response mediated solely by H1 receptors. These results show that this large artery, commonly considered a multi-unit smooth muscle, can sometimes exhibit single-unit behavior.

4-Aminopyridine↗

Accumulation of tropomyosin in developing chicken gizzard smooth muscle.

Smooth muscle of chicken embryonic gizzards has been shown to contain 9 tropomyosin isoforms (E1, E2, E3, E4, E5, E6, E7, E8, and E9) in addition to alpha and beta isoforms (Hosoya et al. (1989) J. Biochem. 105, 712-717). At the early stages of development, the amount of these isoforms was larger than those of alpha and beta isoforms. However, they gradually decreased at later stages and finally disappeared completely after hatching. By using two-dimensional gel electrophoresis and an image analyzing system, we examined the process of tropomyosin accumulation in gizzard smooth muscle development. The accumulation patterns of tropomyosin isoforms and their relative molar ratios to actin in embryonic development were different from those in the stages after hatching. The relative molar ratio of tropomyosin to actin in the thin filament preparation of embryonic gizzards was lower than that of adult, and it gradually increased in the course of embryonic development.

Actins↗

Approaches to the mechanism of relaxing effect of vitamin K3 on smooth muscle.

Smooth muscle relaxing effect of vitamin K3 was tested by using isolated rat Vas deferens, normal and K+-depolarized rat duodenum. The contractions of the rat Vas deferens elicited by noradrenaline and phenylephrine were inhibited by vitamin K3, noncompetitively. Vitamin K3 inhibited the Ca2+-induced contractions of the K+-depolarized rat duodenum in a noncompetitive manner. The inhibitory effect of vitamin K3 on the K+-depolarized rat duodenum was evaluated by comparing it with that of verapamil, a well-known Ca2+-channel blocker and of trifluoperazine, a calmodulin inhibitor. Further, it was observed that vitamin K3 exerts a dose-dependent relaxing effect on the normal rat duodenum. The effect of vitamin K3 was compared with that of adrenaline, isoprenaline and papaverine. In addition, propranolol, a beta-adrenergic blocking agent, and nicotinic acid, an adenylate cyclase inhibitor, were used as tools in order to investigate the mechanism of the relaxing action of vitamin K3 on smooth muscle.

Animals↗

A bent monomeric conformation of myosin from smooth muscle.

Smooth muscle myosin filaments formed in 0.15 M KCl are depolymerized by MgATP to a 10S component, rather than to the 6S component typical of myosin monomer in high salt concentrations. This 10S species is also monomeric as determined by sedimentation equilibrium and calculated from the diffusion and sedimentation coefficients. The conformation of 10S myosin is, however, very different from that of 6S myosin, which has a flexible but extended rod. The Stokes radius and the viscosity of 10S myosin are less than those of 6S myosin, consistent with a structure in which the rod is bent. Electron microscopy of rotary-shadowed preparations confirmed that the light meromyosin region of the rod is bent back on subfragment 2, that region of the rod adjacent to the two globular heads. MgATP and dephosphorylation of the 20,000 molecular weight light chain increase the amount of 10S myosin present in 0.15 M KCl; addition of salt converts 10S myosin back to the typical 6S conformation. We conclude that smooth muscle myosin preferentially forms a bent or folded conformation instead of the extended shape usually associated with skeletal muscle myosin, provided that the salt concentration is kept sufficiently low.

Animals↗

Strain and site dependence of polyploidization of cultured rat smooth muscle.

Smooth muscle cell (SMC) growth may play an important role in the pathogenesis of vascular diseases such as atherosclerosis and hypertension. Recent studies have demonstrated that, under different growth stimuli in vivo, SMC may respond by proliferation of diploid cells, polyploidization to the tetraploid (or even octaploid) state, or both. In this study, we used flow cytometry to evaluate the intrinsic tendencies of aortic SMC and nonarterial cells from rats of different strains, ages, and blood pressures to polyploidize in response to in vitro growth stimulation. Significant strain-related differences in polyploidization of aortic SMC were found (P less than 0.001): highest in WKY (normotensive inbred rat related to SHR), intermediate in SHR (genetically hypertensive rat), and lowest in Sprague-Dawley and Fischer (normotensive outbred and inbred rats). Animal age had less or no effect on the degree of polyploidization. Nonarterial cells (venous SMC and lung cells) from WKY and SHR remained essentially diploid, suggesting tissue specificity of in vitro polyploidization. Studies of the growth kinetics of uncloned and clonal populations of aortic SMC revealed decreased proliferation as the ploidy increased in WKY, SHR, and Sprague-Dawley. These findings suggest that genetic strain factors as well as cell type/site of origin significantly influence in vitro polyploidization, whereas animal age and blood pressure do not. The findings also emphasize the need to consider ploidy changes when evaluating in vitro SMC growth kinetics. Further studies will improve understanding of SMC growth regulation and the functional significance of vascular polyploidy.

Aging↗

Short-term desensitization of phosphatidylinositol turnover via muscarinic acetylcholine receptors and histamine H1-receptors in smooth muscle.

Smooth muscle of guinea-pig taenia caecum was desensitized by treatment with 10(-4)M carbachol or 10(-4)M histamine for 30 min in Ca-free solution containing 2mM EGTA. Phosphatidylinositol turnover stimulated by carbachol was not reduced by desensitization with either carbachol or histamine, while the turnover stimulated by histamine was reduced by desensitization with histamine, but not with carbachol. These results are consistent with our previous report (1) that heterologous desensitization induced by carbachol occurs at intracellular Ca stores and homologous desensitization by histamine occurs at H1 receptors.

Animals↗

Sarcolemma agonist-induced interactions between InsP3 and ryanodine receptors in Ca2+ oscillations and waves in smooth muscle.

Smooth muscle cells respond to InsP(3)-generating (sarcolemma-acting) neurotransmitters and hormones by releasing Ca(2+) from the internal store. However, the release of Ca(2+) does not occur uniformly throughout the cytoplasm but often into a localized area before being transmitted to other regions of the cell in the form of Ca(2+) waves and oscillations to actively spread information within and between cells. Yet, despite their significance, our understanding of the generation of oscillations to waves is incomplete. A major aspect of controversy centres on whether or not Ca(2+) released from the InsP(3) receptor activates RyRs (ryanodine receptors) to generate further release by Ca(2+)-induced Ca(2+) release and propagate waves or whether the entire process arises from InsP(3) receptor activity alone. Under normal physiological conditions the [Ca(2+)] required to activate RyR (approx. 15 microM) exceeds the bulk average [Ca(2+)](c) (cytoplasmic Ca(2+) concentration) generated by InsP(3) receptor activity (<1 microM). Progression of waves and oscillations by RyR activity would require a loss of control of RyR activity and an unrestrained positive feedback on Ca(2+) release. Under store-overload conditions, RyR Ca(2+) sensitivity is increased and this enables waves to be induced by RyR activity. However, the relevance of these Ca(2+)-release events to normal physiological functioning is unclear. The InsP(3) receptor, on the other hand, is activated by Ca(2+) over the physiological range (up to 300 nM) and deactivated by higher [Ca(2+)](c) (>300 nM), features that favour intermittent activity of the receptor as occurs in waves and oscillations. Experimental evidence for the involvement of RyR relies mainly on pharmacological approaches in the intact cell where poor drug specificity could have led to ambiguous results. In this brief review the possible interactions between InsP(3) receptors and RyR in the generation of oscillations and waves will be discussed. Evidence is presented that RyRs are not required for InsP(3)-mediated Ca(2+) transients. Notwithstanding, ryanodine can inhibit InsP(3)-mediated Ca(2+) responses after RyR activity has been induced by caffeine or by steady depolarization which evokes spontaneous transient outward currents (a sarcolemmal manifestation of RyR activity). Ryanodine inhibits InsP(3)-mediated Ca(2+) transients by depleting the store of Ca(2+) rather than by RyR involvement in the InsP(3)-mediated Ca(2+) increase.

Animals↗

Role of calcium in the activation of smooth muscle.

Smooth muscle depends to a large extent on the extracellular calcium concentration for activation of its contractile proteins. Calcium influx via voltage-dependent or receptor-operated channels is thought to supply the cell with Ca2+ for contractile activation. If this is so, the inhibition of transmembranal calcium influx will prevent mechanical activation. A blockade of transmembranal calcium influx has been proposed as a mode of action for calcium antagonists. This suggestion seems to be supported by experiments in which tissue was incubated in 45Ca-containing solutions for 2-3 min and thereafter transferred for 40-60 min to ice-cold calcium-free or lanthanum-containing solutions. The amount of remaining 45Ca in the tissue at the end of the wash-out phase is taken as a measure of calcium influx during the labelling period. However, procedures involving rather long-lasting wash-out periods cannot yield information on Ca2+ influx, since the calcium store relevant for contractile activation adapts rapidly to changes in extracellular Ca2+ concentration.

Adaptation, Physiological↗

Relationship between ATPase activity, Ca2+, and force in alpha-toxin- and beta-escin-treated smooth muscle.

Smooth muscle was made permeable with alpha-toxin and beta-escin. ATPase activity was measured using a phosphoenolpyruvate-pyruvate kinase regenerating system for ATP that was monitored by NADH fluorescence changes, and Ca2+ was measured using fura 2 fluorescence. alpha-Toxin-and beta-escin-treated bundles of cells had a high ATPase activity, which was reduced 80% when exposed to 1% Triton X-100. This Triton-sensitive ATPase activity was increased by approximately 20% when GTP or GTP gamma S was added to the solutions and was of much greater magnitude than the Ca(2+)-activated ATPase associated with contraction. This high membrane ATPase activity will cause a gradient of ATP into and ADP out of the bundle of cells. Thus modulation of this ATPase by G-protein-receptor mechanisms could alter the force at a constant Ca2+ concentration by changing the ADP/ATP ratio within the cells. Measurements of the fura 2 fluorescence ratio (340/380) in alpha-toxin-treated bundles of cells following sudden changes in extracellular Ca2+ showed that the cells were not freely permeable to Ca EGTA. Similar experiments in beta-escin-treated cells showed the cells to be much more permeable to Ca EGTA. These experiments indicate that great care must be taken in alpha-toxin- and beta-escin-treated fibers to make sure that the intracellular ATP, ADP, and Ca2+ are held constant.

Adenosine Triphosphatases↗

Histamine concentration and Ca2+ mobilization in arterial smooth muscle.

Smooth muscle contraction is dependent on Ca2+ entry from the extracellular space or release from intracellular stores. The sensitivity of these Ca2+ sources to agonist concentration was evaluated by measuring myoplasmic [Ca2+] (as estimated by aequorin), myosin phosphorylation, and isometric stress in the swine carotid media. High histamine concentrations produced transient elevations in [Ca2+] and phosphorylation with rapid generation of near maximal stress. Lower histamine concentrations produced much smaller [Ca2+] and phosphorylation transients, and stress development was slower. Peak [Ca2+] was proportional to the rate of stress development. Steady-state [Ca2+], phosphorylation, and stress values (which are dependent on extracellular Ca2+) were more sensitive to histamine concentration than was the peak [Ca2+] response both in the presence and absence of extracellular CaCl2 (measures of intracellular Ca2+ release). This result suggests that the mechanism for Ca2+ influx from the extracellular space is more sensitive to histamine than intracellular Ca2+ release. These results are also consistent with the hypothesis that agonist-releasable sarcoplasmic reticular Ca2+ is the major contributor to initial phosphorylation transients that enhance the rate of stress development.

Animals↗

Muscarinic suppression of ATP-sensitive K+ channel in rabbit esophageal smooth muscle.

Smooth muscle cells from the rabbit esophageal muscularis mucosae were studied for the presence of ATP-sensitive K+ channel (KATP) and its inhibition by carbachol. Lemakalim (10 microM), a synthetic K+ channel opener, increased whole cell currents by -174 +/- 15 pA with 0.1 mM intracellular ATP concentration ([ATP]i) and -70 +/- 11 pA with 5 mM [ATP]i. Glibenclamide (10 microM) completely abolished the lemakalim-induced currents. These currents were therefore denoted as KATP. Carbachol (10 microM) suppressed KATP by 74 +/- 4% with 10 mM intracellular ethylene glycol-bis(beta-aminoethyl ether)-N,N,N',N'-tetraacetic acid (EGTA) concentration and 100% when EGTA was omitted from the pipette solution. Carbachol suppression was attenuated to 23 +/- 16% by the M3 receptor antagonist, p-flurohexahydrosiladifenidol (0.1 microM). KATP was also suppressed by phorbol 12-myristate 13-acetate (PMA; 100 nM) by 63 +/- 9%. The effects of both PMA and carbachol were significantly reduced by inhibitors of protein kinase C and tyrosine kinase. These results suggest that carbachol suppression of KATP is via M3 receptor subtype and the signaling pathway involves Ca2+, protein kinase C, and tyrosine kinase.

Adenosine Triphosphate↗

Myoplasmic [Ca2+] determines myosin phosphorylation and isometric stress in agonist-stimulated swine arterial smooth muscle.

Smooth muscle cells can regulate both their rate of stress development and the level of maintained stress. Agonist-induced steady-state stress was dependent on changes in aequorin-estimated myoplasmic [Ca2+] in the range of 120-190 nM. Higher levels of [Ca2+] were observed only transiently after stimulation and correlated with higher levels of myosin phosphorylation and faster stress development. A single regulatory system (Ca2+-dependent myosin light-chain phosphorylation) appears to control both mean crossbridge cycling rates (rate of contraction or shortening velocity) and the number of attached crossbridges (stress).

Animals↗

Combined electric field and gap junctions on propagation of action potentials in cardiac muscle and smooth muscle in PSpice simulation.

Propagation of action potentials in cardiac muscle and smooth muscle were simulated using the PSpice program. Excitation was transmitted from cell to cell along a strand of 6 cells (cardiac muscle) or 10 cells (smooth muscle) either not connected (control) or connected by low-resistance tunnels (gap-junction connexons). A significant negative cleft potential (V(jv) ) develops in the narrow junctional cleft when the pre-JM fires. V(jc) depolarizes the postjunctional membrane (post-JM) to threshold by a patch-clamp action. With few connecting tunnels, cell-to-cell transmission by the EF mechanism was facilitated. With many tunnels, propagation was dominated by the low-resistance mechanism, and propagation velocity (theta) became very fast and nonphysiological. In conclusion, when the 2 mechanisms for cell-to-cell transfer of excitation were combined, the two mechanisms facilitated each other in a synergistic manner. When there were many connecting tunnels, the tunnel mechanism was dominant.

Action Potentials↗