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Ca(2+) oscillations, gradients, and homeostasis in vascular smooth muscle.

Vascular smooth muscle shows both plasticity and heterogeneity with respect to Ca(2+) signaling. Physiological perturbations in cytoplasmic Ca(2+) concentration ([Ca(2+)](i)) may take the form of a uniform maintained rise, a transient uniform [Ca(2+)](i) elevation, a transient localized rise in [Ca(2+)](i) (also known as spark and puff), a transient propagated wave of localized [Ca(2+)](i) elevation (Ca(2+) wave), recurring asynchronous Ca(2+) waves, or recurring synchronized Ca(2+) waves dependent on the type of blood vessel and the nature of stimulation. In this overview, evidence is presented which demonstrates that interactions of ion transporters located in the membranes of the cell, sarcoplasmic reticulum, and mitochondria form the basis of this plasticity of Ca(2+) signaling. We focus in particular on how the junctional complexes of plasmalemma and superficial sarcoplasmic reticulum, through the generation of local cytoplasmic Ca(2+) gradients, maintain [Ca(2+)](i) oscillations, couple these to either contraction or relaxation, and promote Ca(2+) cycling during homeostasis.

Animals↗

Physiological cyclic stretch causes cell cycle arrest in cultured vascular smooth muscle cells.

Smooth muscle cells (SMC) are the major cellular component of the blood vessel wall and are continuously exposed to cyclic stretch due to pulsatile blood flow. This study examined the effects of a physiologically relevant level of cyclic stretch on rat aortic vascular SMC proliferation. Treatment of static SMC with serum, platelet-derived growth factor, or thrombin stimulated SMC proliferation, whereas exposure of SMC to cyclic stretch blocked the proliferative effect of these growth factors. The stretch-mediated inhibition in SMC growth was not due to cell detachment or increased cell death. Flow cytometry analysis revealed that cyclic stretch increased the fraction of SMC in the G(0)/G(1) phase of the cell cycle. Stretch-inhibited G(1)/S phase transition was associated with a decrease in retinoblastoma protein phosphorylation and with a selective increase in the cyclin-dependent kinase inhibitor p21, but not p27. These results demonstrate that cyclic stretch inhibits SMC growth by blocking cell cycle progression and suggest that physiological levels of cyclic stretch contribute to vascular homeostasis by inhibiting the proliferative pathway of SMC.

Animals↗

Effects of hypoxia and other vasoactive agents on pulmonary and cerebral artery smooth muscle cells.

Smooth muscle cells (SMC) were isolated from cat cerebral arteries and three sizes of pulmonary artery (less than 200-, 200- to 600-, and greater than 800-microns diameter) and used within 72-96 h. Change in cell length in response to hypoxia and other vasoactive agents was measured in a specially constructed cell chamber on an inverted microscope. Pulmonary artery SMC responded to hypoxia differently according to artery size. SMC from less than 200- and 200- to 600-microns-diameter pulmonary arteries shortened 18.6 +/- 4.85 and 24.2 +/- 2.70%, respectively. However, SMC from greater than 800-microns-diameter pulmonary arteries shortened 0.81 +/- 0.44%. Cerebral artery SMC plated on a flexible polydimethyl siloxane membrane showed loss of tension during exposure to hypoxia. The shortening of SMC from the 200- to 600-microns pulmonary arteries was accompanied by myosin phosphorylation. SMC from greater than 800-microns-diameter pulmonary arteries and cerebral arteries contained myosin that did not phosphorylate during hypoxia. The SMC from both artery types responded to norepinephrine, serotonin, prostaglandin F2 alpha and indomethacin and exhibited alpha-adrenergic receptor population patterns similar to those of intact arteries. The pattern of hypoxic responses exhibited by these nondedifferentiated pulmonary and cerebral artery SMC supports the idea that, at least in the cat, the hypoxic sensor is located within the SMC.

Animals↗

Antiproliferative effects of NO and ANP in cultured human airway smooth muscle.

Airway smooth muscle (ASM) hypertrophy and hyperplasia are important determinants of bronchial responsiveness in asthma, and agents that interfere with these processes may prevent airway remodeling. We tested the hypothesis that activators of soluble and particulate guanylyl cyclases would inhibit human ASM cell (HASMC) proliferation. We report that the nitric oxide (NO) donors S-nitroso-N-acetylpenicillamine (SNAP; 10(-6) to 10(-4) M) and sodium nitroprusside (10(-5) to 10(-3) M) and human atrial natriuretic peptide [ANP-(1-28); 10(-8) to 10(-6) M], which activate soluble and particulate guanylyl cyclases, respectively, inhibited serum- and thrombin-induced proliferation of cultured HASMCs. The antimitogenic effect of SNAP was reversed by hemoglobin (10(-5) M), an NO scavenger, suggesting that NO donation was involved. The antiproliferative effects of SNAP and ANP-(1-28) were potentiated by the cGMP-specific phosphodiesterase zaprinast and mimicked by 8-bromo-cGMP (10(-6) to 10(-3) M), suggesting that cGMP-dependent mechanisms were involved. However, first, ANP-(1-28) produced a smaller antiproliferative effect than SNAP in contrast to their abilities to elevate cGMP, and second, rat ANP-(104-126), which binds selectively to ANP clearance receptors without elevating cGMP, had a small antiproliferative effect, suggesting that cGMP-independent mechanisms were also involved. These results provide evidence for a novel antiproliferative effect of NO and ANP in HASMCs mediated through cGMP-dependent and cGMP-independent mechanisms.

Asthma↗

Wilms' tumor 1-associating protein regulates the proliferation of vascular smooth muscle cells.

Smooth muscle cells (SMCs) are called on to proliferate during vascular restructuring but must return to a nonproliferative state if remodeling is to appropriately terminate. To identify mediators of the reacquisition of replicative quiescence, we undertook gene expression screening in a uniquely plastic human SMC line. As proliferating SMCs shifted to a contractile and nonproliferative state, expression of TIMP-3, Axl, and KIAA0098 decreased whereas expression of complement C1s, cathepsin B, cellular repressor of E1A-activated genes increased. Wilms' tumor 1-associating protein (WTAP), a nuclear constituent of unknown function, was also upregulated as SMCs became nonproliferative. Furthermore, WTAP in the intima of injured arteries was substantially upregulated in the late stages of repair. Introduction of WTAP complementary DNA into human SMCs inhibited their proliferation, with a corresponding decrease in DNA synthesis and an increase in apoptosis. Knocking down endogenous WTAP increased SMC proliferation, because of increased DNA synthesis and G(1)/S phase transition, together with reduced apoptosis. WTAP was found to associate with the Wilms' tumor-1 protein in human SMCs and WTAP overexpression inhibited the binding of WT1 to an oligonucleotide containing a consensus WT1 binding site, whereas WTAP knockdown accentuated this interaction. Expression of the WT1 target genes, amphiregulin and Bcl-2, was suppressed in WTAP-overexpressing SMCs and increased in WTAP-deficient SMCs. Moreover, exogenous amphiregulin rescued the antiproliferative effect of WTAP. These findings identify WTAP as a novel regulator of the cell cycle and cell survival and implicate a WTAP-WT1 axis as a novel pathway for controlling vascular SMC phenotype.

Amphiregulin↗

Effect of insulin on the proliferation of cultured primate arterial smooth muscle cells.

Smooth muscle cells were grown from thoracic aortas of 1-year-old monkeys (Macaca nemistrina). The effect of insulin on the proliferation of these cells was studied by comparing the growth of cells in culture medium to which insulin had been added with that of cells in basal (1% monkey serum) medium and in growth-promoting 5% monkey serum. Insulin in concentrations of 10, 100, 1,000, and 10,000 muunits/ml resulted in successively greater stimulation of growth which was highly significant (P smaller than 0.001) by analysis of variance. There was a significant linear relationship between the logarithm of the insulin dose and cell growth. However, the highest concentration of insulin produced only 50% of the effect of 5% monkey serum. Serum from which insulin had been removed stimulated growth less well (P smaller than 0.05) than did untreated serum at the same concentration (5%) but had significant (P smaller than 0.05) stimulating properties compared with whole serum at a lower concentration. Cells that were older in culture life (eight or nine passages) did not show a growth response to insulin and had an attenuated response to 5% serum. The effect of insulin (100 muunits/ml) was inhibited by dibutyryl cyclic adenosine monophosphate (db-cAMP) (5 times 10-5 M), although there was a latent period of 3 days before inhibition occurred; db-cAMP had no effect on cell counts in the absence of insulin. The electron microscopic appearance of the cells was unaltered by insulin.

Analysis of Variance↗

Inhibitors of mitogen-activated protein kinases differentially regulate eosinophil-activating cytokine release from human airway smooth muscle.

Airway smooth muscle (ASM) is a potential source of multiple proinflammatory cytokines during airway inflammation. In the present study, we examined a requirement for mitogen-activated protein (MAP) kinase activation for interleukin (IL)-1beta-stimulated GM-CSF, RANTES, and eotaxin release. IL-1beta induced concentration-dependent phosphorylation of p42/p44 extracellular signal-regulated kinases (ERKs), p38 MAP kinase, and c-Jun amino-terminal kinase (SAPK/JNK). p42/p44 ERK and p38 MAP kinase phosphorylation peaked at 15 min and remained elevated up to 4 h. SAPK/JNK phosphorylation also peaked at 15 min but fell to baseline within 60 min. SB 203580 selectively inhibited IL-1beta-stimulated activation of p38 MAP kinase; U 0126 was selective against p42/p44 ERK activity. SB 202474, an inactive analog, had no effect on p42/p44 ERK, p38 MAP kinase, or SAPK/JNK activation, or on eotaxin or RANTES release. Eotaxin release was inhibited by SB 203580 and U 0126, whereas RANTES release was prevented by U 0126 only. GM-CSF release was inhibited by U 0126 but enhanced by SB 203580. These data indicate that RANTES release is dependent on p42/p44 ERK activation but occurs independently of p38 MAP kinase activity. Eotaxin release, however, is dependent on both p38 MAP kinase- and p42/p44 ERK-dependent mechanisms. GM-CSF release is p42/p44 ERK dependent and is tonically suppressed by a mechanism that is partially dependent on p38 MAP kinase, though direct inhibition of cyclooxygenase (COX) activity due to poor inhibitor selectivity may also contribute.

Adult↗

Properties of an insulin-like growth factor-binding protein-4 protease that is secreted by smooth muscle cells.

Smooth muscle cells (SMC) secrete insulin-like growth factor (IGF)-binding protein-4 (IGFBP-4) and an IGFBP-4 protease. The purpose of this study was to determine the characteristics of this IGFBP-4 protease and to compare its inhibitor profile to those of IGFBP-5 and IGFBP-2 proteases, which are also present in SMC-conditioned medium. Cultured SMC were exposed to serum-free medium for periods of 24-72 h, and the amount of proteolytic activity in the conditioned medium was assessed by its capacity to degrade pure IGFBP-4. Minimal activity (e.g. < 20% of IGFBP-4 degraded in 24 h at 37 C) was present in conditioned medium unless IGF-I or IGF-II was added. This resulted in more than 60% of the intact IGFBP-4 being degraded in 14 h. The activity was a calcium-dependent serine protease and was inhibited by EDTA or 3,4-dicloroisocoumarin. Calcium, but not zinc, could restore proteolytic activity. Heparin alone inhibited IGFBP-4 proteolysis by more than 60%. When heparin cofactor-II and antithrombin-III (AT-III) were added alone, they each had an effect. The combination of heparin plus AT-III was no more active than heparin alone, but the combination of heparin cofactor-II and heparin resulted in near complete inhibition. Peptides that contained the active sites of AT-III or alpha 1-antichymotrypsin were potent inhibitors of the IGFBP-4 protease. The medium also contained proteolytic activities for IGFBP-2 and IGFBP-5. Comparison of the inhibitor profiles for the IGFBP-4 and IGFBP-5 proteolytic activities revealed major differences, but the IGFBP-2 proteolytic activity was very similar to that of the IGFBP-4 protease. IGFBP-4 zymography showed a band with a molecular mass estimate of 48 kilodaltons. In contrast, when IGFBP-2 was used as the substrate, a single band at 36 kilodaltons was visualized. These data taken together with the protease inhibitor results suggest that the IGFBP-2, IGFBP-4, and IGFBP-5 proteases are members of a similar family of calcium-dependent serine proteases, but they are distinct proteases. As IGFBP-4 is a potent inhibitor of IGF action, and the activity of this protease is regulated by IGF exposure, the protease represents a novel system for regulating the actions of IGF-I in this cell type.

Animals↗

M2 and M3 muscarinic receptors couple, respectively, with activation of nonselective cationic channels and potassium channels in intestinal smooth muscle cells.

Smooth muscle cells of guinea pig ileum express both M2 and M3 subtypes of muscarinic receptors. Under voltage clamp, activation of the muscarinic receptors with carbachol (CCh) induces Ca2+-activated K+ current (I[K-Ca]) and nonselective cationic current (Icat). Receptor subtypes mediating the current responses were characterized by using pirenzepine, AF-DX116, 4-DAMP and atropine, which have different profiles of the affinity constants for muscarinic receptor subtypes. The muscarinic antagonists inhibited either CCh-evoked I(K-Ca) or Icat with different potencies. Their relative potencies for I(K-Ca) and Icat inhibition resembled the relative affinity constants for M3 and M2 subtypes, respectively. Thus, the I(K-Ca) is mediated via the M3 subtype and the Icat via the M2 subtype.

Animals↗

Metabolism of cell surface-associated sulfated glycosaminoglycans in cultured human smooth muscle cells.

Smooth muscle cells grown from human aorta synthesize chondroitin sulfate, dermatan sulfate, and heparan sulfate as sulfated glycosaminoglycans. These polymers are found mainly extracellularly and in association with the cell membrane. Each compartment is characterized by a distinct distribution pattern of sulfated glycosaminoglycans though considerable variability was noted between different cell lines. On incubation of the cells in the presence of [35S]sulfate for up to 72 h no significant change in the distribution pattern of newly synthesized extracellular and membrane-associated glycosaminoglycans was found. Prelabeling experiments revealed that pericellular glycosaminoglycans are metabolically heterogenous. they leave their compartment with half-lives of less than 10 h and 1--3 days respectively. During the initial period of the chase experiment (up to 12 h) about equal proportions of the material disappeared either by shedding into the culture medium or by endocytosis. Thereafter, release of macromolecules into the medium exceeded endocytotic uptake. None of the individual glycosaminoglycans on the cell surface showed a clear preference for its removal either by shedding or by endocytosis. It is concluded that cell surface-associated glycosaminoglycans are neither direct precursors of the extracellular glycosaminoglycans nor do they represent mainly extracellular glycosaminoglycans which are in the process of endocytosis.

Adolescent↗

Temporal relationships between isometric force, phosphorylase, and protein kinase activities in vascular smooth muscle.

Vascular smooth muscle contractility is tightly coupled to ATP production by intermediary metabolism. To elucidate mechanisms underlying coordination of metabolism and contractility we studied the time course of isometric force, and the activation of phosphorylase and cAMP-dependent protein kinases during stimulation of bovine coronary arterial strips with KCl. Isometric force reached a maximum after 10 min of exposure to 30 mM KCl (ED90) and was sustained throughout the subsequent 20-min period of contraction. In contrast, activation of phosphorylase was biphasic: enzymic activity reached a maximum (176 +/- 10% of control) after 3 min of contraction and then, though remaining above control, activity declined to a lower level (135 +/- 7% of control). However, no change occurred in the activity ratios for cAMP-dependent protein kinase assessed in either the presence (type II isozyme) or absence (type I isozyme) of 0.5 M NaCl. These data suggest that the activation of phosphorylase during K+-induced contraction is independent of the cAMP system. The biphasic activation of phosphorylase may reflect transient changes in the intracellular concentration of Ca2+ or the activation of a phosphatase(s) during the response.

Animals↗

Effects of heparin and related sulfated polysaccharides on tissue factor expression induced by mitogenic and non-mitogenic factors in human vascular smooth muscle cells.

Smooth muscle cells (SMCs) of the intima are generally quiescent and non proliferative. Their proliferation due to different stimulations occurs in myointimal hyperplasia and is regularly present in atherogenesis or after transluminal angioplasty leading to vascular occlusive stenosis. In the course of these pathologies, the Tissue Factor (TF) synthesis was upregulated and rapidly expressed at the membrane of the SMCs. Heparin is known to inhibit SMCs proliferation induced by FCS. We evaluated the inhibitory effect of heparin on the expression of TF induced by various mitogenic (FCS, PDGF-BB and EGF) and non-mitogenic (bacterial LPS) agents. Inhibition by heparin of SMCs proliferation induced by the same agonists was also determined. Quiescent human vascular SMCs from normal adult arteries were treated for 1 h by heparin and related sulfated polysaccharides before stimulation by the agonists. All the agonists up-regulated the expression of TF antigen and activity. TF expression induced by the growth factors was inhibited by heparin (IC 50: 10-30 microg/ml), and other sulfated polysaccharides (IC 50: 1-5 microg/ml). SMCs proliferation, late activation of the extracellular signal-regulated kinases (ERK1/2), and PKC activity were inhibited by heparin (IC 50: 30-50 microg/ml) in SMCs stimulated by FCS but not in SMCs treated by PDGF or EGF. In contrast, heparin had no effect on LPS-induced TF expression nor on LPS-induced PKC activation. These results indicate that, besides its well known effect on SMC proliferation, heparin displays an inhibitory effect on cell mediated blood clotting processes through regulation of the TF expression.

Adult↗

Ca2+ signalling and Ca2+-activated K+ channels in smooth muscle.

In smooth muscle, transient subsarcolemma increases in Ca2+ of approximately 200 nM from the sarcoplasmic reticulum activate Ca2+-activated K+ channels (KCa) in the sarcolemma giving rise to spontaneous transient outward currents (STOCs). In the present study we have examined whether (1) STOCs are spatially restricted membrane currents, (2) single KCa channel activity is regulated by changes in bulk average cytosolic Ca2+ concentrations ([Ca2+]c) without concomitant local subsarcolemma Ca2+ changes, and (3) a relationship exists between the voltage-dependent Ca2+ current (ICa) and KCa channel activity. Guinea-pig single colonic myocytes were voltage clamped in the whole cell configuration (to measure macroscopic currents) and bulk average [Ca2+]c measured simultaneously using the dye Fura-2. Single channel activity was also recorded with a second electrode, on the same cell, in the cell-attached mode. KCa activity was identified by reversal potential and conductance measurements. If STOCs are not spatially restricted events but reflect increased KCa channel activity throughout the sarcolemma, the voltage-dependence of single KCa channels should be similar to that of STOCs. Prolonged depolarization (-60 mV to +50 mV) increased [Ca2+]c, the amplitude and frequency of STOCs, and single KCa channel activity. [Ca2+]c peaked around -20 mV. Between -50 and -20 mV, the increase in STOC frequency was markedly voltage-dependent (e-fold for 5 mV depolarization); beyond -20 mV less so. Single KCa channel activity increased about e-fold for a 20 mV depolarization and thus was demonstrably different in this respect from that of STOC activity, evidence consistent with the proposed spatially restricted nature of STOCs. Simultaneous depolarization (3 s) of both the whole cell and the membrane patch, from -70 to 0 mV, elevated [Ca2+]c to about 800 nM and evoked single KCa channel activity, the latter began after about 10 ms, peaked around 100 ms, then declined. On repolarization to -70 mV KCa channel activity ceased abruptly. Depolarization (to 0 mV) of the whole cell only, with the patch transmembrane potential maintained at -70 mV, increased [Ca2+]o to about 800 nM but, importantly, did not increase KCa channel activity. Conversely depolarization (to 0 mV) of the patch alone, the whole cell being maintained at -70 mV, did not alter the bulk [Ca2+]c but evoked single KCa channel activity. The time course of KCa channel activity was remarkably similar to that of ICa suggesting that Ca2+ influx through voltage-dependent Ca2+ channels may serve as a trigger for KCa channel activation. Together these results suggest that STOCs are spatially restricted membrane currents and that KCa channels are sensitive to both depolarization and local subsarcolemma Ca2+ increases but not to alterations in [Ca2+]c.

Animals↗

Cilazapril suppresses myointimal proliferation after vascular injury: effects on growth factor induction in vascular smooth muscle cells.

Smooth muscle cell proliferation and formation of extracellular matrix in the intima of muscular arteries after vascular injury can lead to severe intimal hyperplasia and stenosis. Cilazapril reduces intimal hyperplasia induced by balloon catheterization of the rat carotid artery by 80%, and significantly decreases the surface area covered by proliferative lesions. We investigated the effects of angiotensin II (A II) on SMC proliferation in cell culture and A-II induction of selected growth factor or growth-related genes in SMC in culture: PDGF A chain, TGF-beta, thrombospondin, c-myc and c-fos, and compared the influence of cilazapril on these responses to A II. A-II induced SMC proliferation, stimulated mRNAs for c-myc and c-fos after 30 min, and stimulated mRNAs for PDGF A chain, TGF-beta, and thrombospondin somewhat later. The ACE inhibitor did not have detectable independent effects on the A-II induced proliferation or gene expression. Thus, these data support the conclusion that cilazapril suppresses SMC proliferation in vivo through the block of conversion of A I to A II, and that A II has a critical and central role in the control of the proliferative response after balloon catheter-induced vascular injury.

Angiotensin II↗

Effects of phosphorylation of light chain residues threonine 18 and serine 19 on the properties and conformation of smooth muscle myosin.

Smooth muscle myosin can be phosphorylated by myosin light chain kinase at the serine 19 and threonine 18 residues of the two 20,000-dalton light chains (Ikebe, M., Hartshorne, D. J., and Elizinga, M. (1986) J. Biol. Chem. 261, 36-39). These studies with myosin and heavy meromyosin (HMM) compare the effects induced by phosphorylation of serine 19 (M2P and HMM2P) and serine 19 plus threonine 18 (M4P and HMM4P). Formation of M4P altered the KCl dependence of viscosity and Mg2+-ATPase and higher values were maintained at lower ionic strengths, compared to M2P or dephosphorylated myosin (Mo). This is consistent with the stabilization of the 6 S conformation. The tendency for aggregation, as judged by light scattering, followed the sequence M4P greater than M2P greater than Mo. Filaments formed with M4P were more resistant to dissociation by ATP compared to filaments of M2P. Phosphorylation of HMM2P doubled Vmax of actin-activated ATPase with little effect on the apparent affinity for actin. The Mg2+-ATPase of HMM4P exhibited a higher activity at low ionic strength compared to HMM2P and HMMo. Hydrodynamic differences were detected at low ionic strength in the presence of ATP by sedimentation velocity measurements with HMM4P, HMM2P, and HMMo. Proteolysis by papain indicated an increased susceptibility of the head-neck junction of HMM4P compared to HMM2P. These data suggest that the phosphorylation of threonine 18 in addition to serine 19 change the conformation of myosin and HMM and this is associated with altered biological properties.

Animals↗

[Effect of noradrenaline and potassium ions on the electrical and contractile activity of coronary artery smooth muscle cells].

Smooth muscle cells (SMC) of circular strips from bovine and pig left descending anterior arteries responded to the increase of external potassium concentration from 5.9 to 160 mM with depolarization of the SMC membrane. At IK+I0 up to 40 mM this depolarization entailed relaxation of the strips; at IK+I0 from 40 mM to 80 mM the tonic contraction occurred. An increase of external potassium concentration up to 160 mM led to depolarization of the SMC membrane preceded by the AP. These changes were accompanied by initial phasic and subsequent tonic (potassium contracture) contractions. Noradrenaline (10(-5) M) added to the bathing solution induced membrane hyperpolarization and relaxation of the SMC, or relaxation without substantial shifts of the membrane potential level.

Adenosine↗