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Use of muscle contraction formalism for kinesin in fast axonal transport.

The general procedure is discussed for calculating the velocity of a vesicle along a microtubule. The formalism used previously for isotonic contraction in muscle (with multiple actin sites for a given cross-bridge) can be employed. However, some modifications must be made: (i) the kinetic diagram must include a state in which kinesin is absent from a vesicle binding site, (ii) an average must be taken over the locations of the vesicle binding sites relative to microtubule sites, and (iii) a self-consistency condition must be imposed that equates the mean force exerted by kinesin molecules on the vesicle with the frictional resisting force of the medium.

Animals↗

Auxotonic contractions in cardiac muscle segments.

The dynamics of segment shortening have been measured in the central regions of isolated papillary muscles during muscle isometric and after-loaded isotonic contractions. Segment lengths are inferred from muscle cross-sectional area using an assumption that the segments remain isovolumic. Area is assessed with a magnetic induction technique. Infused microspheres have been used as visual markers to corroborate the segment length measurement. The results confirm the existence of major segmental shortening during muscle isometric conditions. However, the time course of shortening is not the same as that of force development. Rather, the segments remain shortened until after force has fallen significantly from its peak value. This behavior appears in the force-segment length plane as counterclockwise loops. The relationship of peak force to segment length has been determined and found to depend on the mechanical conditions under which the muscle is equilibrated. These results demonstrate the utility of the new technique and indicate central segment behavior that is substantially different from that observed for the whole muscle.

Animals↗

[Effect of brief papillary muscle stretch on 2 contraction components in the presence of noradrenaline in guinea pigs].

In isolated guinea-pig papillary muscles perfused with Tyrode's solution, quick stretching did not affect the isotonic contraction when applied at its fast shortening phase, and accelerated the relaxation if the stretching coincided with the later phases of the contractile response. In presence of noradrenaline the contraction revealed two components. The amplitude of the 1st component was augmented whereas its time to peak did not change when the stimulation frequency had been increased. The amplitude of the 2nd component and its time to peak both diminished at the increase of the stimulation frequency. The changes of time to peak were always closely related to the changes of the AP duration. The 1st contraction component seems to be calcium release from sarcoplasmatic reticulum whereas the 2nd component is determined by the AP duration.

Action Potentials↗

Cardiac heat production.

The energy production (heat + work) of cardiac muscle must be interpreted in terms of the major ATPases underwriting cardiac contraction; these are the Ca2+ and Na+-K+ transport ATPases and actomyosin ATPase. It is possible to apply the classical phenomenological subdivisions to cardiac energy production; when this is done, certain properties immediately distinguish cardiac muscle from skeletal muscle. Little or no temporal distinction exists between initial (anaerobic) and recovery (oxidative) metabolism. Even at temperatures as low as 20 degrees C most of the recovery heat is released within the time course of a single contraction. Cardiac muscle is characterized by a high resting heat rate, the magnitude of which varies between species and depends on the metabolic substrate. In isometric contractions there is a slightly curvilinear relationship between developed force and heat production. There is a tension-independent or activation component, the magnitude of which reflects the prevailing level of contractility and is probably associated with calcium release and retrieval. In isotonic contractions energy production is maximal when the muscle is heavily loaded but falls steeply when the size of the load is reduced. The enthalpy:load relation is probably similar to that found in twitch contractions of skeletal muscle working at room temperature or above; but, unlike for skeletal muscle, there are families of such curves: At any instant of time the relation depends upon the prevailing physiological conditions (e.g. stimulus rate, substrate supply, humoral agents, extracellular ionic concentrations, initial length). Cardiac energy production can be estimated by a variety of other techniques (such as high-energy phosphate utilization, oxygen consumption, and changes in tissue fluorescence related to pyridine nucleotide oxidation levels). At the present time there is considerable agreement between heat measurements and results obtained with these different techniques. We should like to conclude on a cautionary note. First, there is considerable variability in the properties of cardiac muscle from different species. Significant variations occur at nearly all levels of cellular function--e.g. shape of action potential, electrical and mechanical dependence upon stimulus history, mechanisms of excitation-contraction coupling, actomyosin ATPase activity, metabolic regulation, and differential sensitivity to anoxia or ischemia. Second, the types of contractions readily studied in isolated papillary muscles (i.e. isometric or isotonic twitches) may not necessarily be the best mechanical paradigms for understanding myocardial energetics in vivo. The particular geometric demands of individual research techniques require the use of a wide variety of myocardial preparations from a wide variety of species. This necessarily produces a pastiche view of cardiac muscle rather than an integrated picture of some hypothetically typical mammalian myocardium.

Adenosine Triphosphatases↗

[Temperature dependence of bronchial and tracheal reactivity of isolated respiratory tract preparations of the guinea pig].

The intrapulmonary loss of heat due to hyperventilation may be considered as essential pathogenetic factor in producing exercise induced asthmatic response. The temperature dependence of smooth muscle contraction was investigated using isolated trachea and isolated lung strips of guinea pigs. The measurements of the contraction responses to cumulative dose administrations of acetylcholine (10(-9) to 10(-3) M) were made in thermostated organ baths (isotonic contraction, modified Krebs-Henseleit solution, pH 7.4, air gassing). The standardized measurement data were adjusted to a non-linear function with the aid of a computer. The reactivity of the isolated trachea remained unchanged with a change of the bath temperature (from 37 degrees C to 30 degrees C), whereas a markedly increased contraction response to acetylcholine was observed in the lung strips. The results indicate that the contraction induced by the drop in temperature is localized in the small airways. The stabilization of reactive oxygen metabolites as an asthma-inducing mechanism is discussed as a possible explanation of the temperature-dependent effects.

Airway Obstruction↗

Age and gender differences in excitation-contraction coupling of the rat ventricle.

1. The objective of this study was to determine potential post-pubertal gender-specific differences in the contractility of papillary muscles, the electrophysiological properties and Ca2+ transients of freshly dissociated ventricular myocytes from the rat heart. 2. The contractions of rat papillary muscles from 2- to 14-month-old male and female rats were studied under isometric and isotonic conditions (29 degrees C). While the hearts of young (2-4 months) male and female rats displayed a similar contractile profile, papillary muscles of female rats aged 6 months and older exhibited smaller isometric and isotonic contractions, smaller maximal rates of tension and shortening development and decline (+/-DT/dt and +/-DL/dt) velocities during both the onset and relaxation phases, and shorter contractions than age-matched males. 3. To explore the possible cellular basis accounting for these differences, action potentials and macroscopic currents were recorded from freshly dissociated myocytes using the whole-cell patch clamp technique (35 C). Action potentials from male and female myocytes of 3- and 9-month-old rats did not vary as a function of age or gender. Consistent with these results, the magnitude (expressed in pA pF-1), voltage-dependence and kinetics of the inward rectifier (IK1), transient outward (Ito) and sustained (IK) K+ currents displayed little, if any dependence on age or gender. 4. L-type Ca2+ current (ICa(L)) measured in caesium-loaded myocytes (35 C) from male and female rats of 3, 6 and 9 months of age exhibited similar characteristics. In contrast, while Ca2+ transients measured with indo-1 were similar between 3-month-old male and female rat myocytes, Ca2+ transients of 10-month-old female myocytes were significantly reduced and showed a diminished rate of relaxation in comparison with those recorded in male rats of similar age. 5. These results suggest that important gender-related changes in excitation-contraction coupling occur following puberty, probably due to differences in Ca2+ handling capabilities at the level of the sarcoplasmic reticulum.

Aging↗

Signal transduction pathways mediating CCK-8S-induced gastric antral smooth muscle contraction.

AIM: To investigate the functional and molecular mechanisms by which sulfated cholecystokinin octapeptide (CCK-8S) regulates calcium mobilization in gastric antral smooth muscle cells (SMCs) of rats. METHODS: Isotonic contraction of antral strips was recorded using a polyphysiograph. Immunoprecipitation was used to determine the regulatory effect of protein kinase C (PKC) on regulating the phosphorylation of the type III inositol 1,4,5-triphosphate receptor (InsP(3)R3) in gastric SMCs. Alterations in the intracellular calcium ([Ca(2+)](i)) concentration were assayed using fura-2/AM-loaded microspectrofluorometry, and the L-type calcium current (I(Ca-L)) was recorded by patch-clamp techniques. RESULTS: CCK-8S (5 x 10(-8) mol/l) significantly increased the mean contractile amplitude of circular muscle by 61.85 +/- 12.67% and the frequency of longitudinal muscle by 57.91 +/- 15.70% in gastric antral strips, which were suppressed by dexloxiglumide or thapsigargin (TG) and BAPTA-AM (BA). Treatment with chelerythrine (5 x 10(-8) mmol/l) significantly inhibited the CCK-8S-increased phosphorylation of InsP(3)R3 in SMCs. The amplitudes of the CCK-8S-triggered [Ca(2+)](i) concentration oscillations were reduced in a dose-dependent manner when the SMCs were pretreated with increasing concentrations of PMA (from 10(-8) to 10(-5) mol/l). On removal of extracellular calcium or blocking I(Ca-L) by nifedipine, a smaller but significant rise in the [Ca(2+)](i) concentration was still elicited by CCK-8S. When [Ca(2+)](i) was depleted by the administration of 10(-5) mol/l TG and 10(-5) mol/l BA or blocked by the calcium-dependent chloride current (I(Cl-Ca)) by giving 5 x 10(-6) mol/l niflumic acid, the CCK-8S-intensified I(Ca-L) (from -56.42 +/- 6.57 to -88.54 +/- 5.71 pA) was apparently inhibited by 90.34 +/- 4.71% and 82.59 +/- 4.24%. CONCLUSIONS: These results demonstrate that the CCK-8S-evoked [Ca(2+)](i) concentration increase in gastric antral SMCs depends on the release of [Ca(2+)](i) stores which are negatively regulated by PKC-mediated phosphorylation of InsP(3)R3. Released calcium in turn activates I(Ca-L) through the activation of I(Cl-Ca), ultimately resulting in the contraction of the gastric smooth muscle.

Animals↗

A myotoxin secreted by some piscivorous Conus species.

1. Toxins isolated from the venom apparatus of Conus magus and Conus achatinus have the same pharmacological properties, but differ from the toxins of several other piscivorous species of cone shells.2. C. magus and C. achatinus toxins are heat labile at pH 8.5. A single lethal component with an approximate molecular weight of 10,000 was isolated from C. achatinus toxin by exclusion chromatography.3. Animals died from a characteristic spastic paralysis after intravenous injection of the toxin.4. Nerve transmission was unaffected by the toxin; skeletal muscle appeared to be the primary site of action. The toxin caused a persistent contracture of rat diaphragm muscle, and a dose-dependent decline in twitch tension. The contracture was potentiated by caffeine.5. The decline in twitch tension was associated with depolarization of the cell membrane. Action potential height and the maximum rate of rise declined, and spike propagation failed when the resting potential had declined to approximately 60 mV. The muscle recovered very slowly on washout of the toxin. The depolarization could be reversed by exposure of the preparation to 5 mM Na(+) solution or tetrodotoxin or saxitoxin.6. Miniature end-plate potential frequency in the rat diaphragm decreased, as did the quantal content of the end-plate potential. The acetylcholine-induced contraction and depolarization of the chronically denervated rat diaphragm were increased by low doses of toxin and reduced by higher, depolarizing toxin doses. The K(+)-induced contraction and depolarization of innervated diaphragm were similarly affected by the toxin.7. Cardiac and smooth muscle were relatively resistant to the toxin. The isotonic contraction of the isolated perfused guinea-pig heart was increased by the toxins from both Conidae. The heart rate decreased. Guinea-pig atrial cells showed a small decrease in action potential height and maximum rate of rise. Rabbit sino-atrial cells showed increases in action potential height, maximum diastolic potential and maximum rate of rise of the spike at low toxin levels, and no change in any of these parameters at high levels. There was a decrease in the rate of the spontaneously beating atrium. Atrioventricular nodal potentials showed no change other than a slight increase in the maximum rate of rise of the action potential.8. It is postulated that the action of the toxin may be related to a change in the Ca(++) permeability of the excitable membrane, which makes it unstable, leading to a secondary, depolarizing entry of Na(+). The effects of the toxin are compared with those of batrachotoxin, which it somewhat resembles.

Animals↗

Pharmacological studies on supersensitization. X. Effect of tripelennamine, N,N-dimethyl-N',N'-dibenzylethylenediamine and N,N-dibenzyl-N',N'-dimethyl-1,2-propanediamine on the utilization of calcium in acetylcholine-induced contraction of isolated vas deferens of guinea pig.

Effects of tripelennamine, N,N-dimethyl-N',N'-dibenzylethylenediamine (DBED) and N,N-dibenzyl-N',N'-dimethyl-1,2-propanediamine (DBPD) on the isotonic contractions of isolated vas deferens of guinea pig were examined. Tripelennamine and DBED potentiated the contractile responses to acetylcholine and potassium chloride in Ca2+-free Tyrode solution. DBPD potentiated the contractile responses to lower concentrations of acetylcholine in Ca2+-free Tyrode solution, but did not affect contractions induced by potassium and higher concentrations of acetylcholine in Ca2+-free Tyrode solution. In depolarized vas deferens, tripelennamine and DBED augmented the maximum response to Ca2+, while DBPD did not affect the maximum response to Ca2+ and decrease the sensitivity to Ca2+. The contractile responses to acetylcholine in standard Tyrode solution were attenuated by lanthanum chloride and the residual contractions were not affected by tripelennamine, DBED and DBPD or decreased by DBPD. The contractile responses to potassium chloride were completely abolished by lanthanum chloride. The half-time of decrease in acetylcholine-contraction in Ca2+-free Tyrode solution was significantly different from that of potassium-contraction in Ca2+-free Tyrode solution. The contractile response of the glycerinated muscle piece of vas deferens to calcium chloride was potentiated by DBED, but was not affected by tripelennamine and DBPD. These results suggest that tripelennamine and DBED facilitate nonselectively the transmembrane influx of calcium from extracellular fluid and superficial calcium-binding sites. In addition, DBED increases the sensitivity of contractile element to cytoplasmic free calcium ion. DBPD potentiates the contractile response without affecting the transmembrane mobilization of Ca2+ induced by excitation of cell membrane.

Acetylcholine↗

The energetics of shortening amphibian cardiac muscle.

An isolated amphibian cardiac muscle preparation, toad ventricular strip, was used to examine the energetics of shortening. Simultaneous measurements of force and length changes and the associated heat production were made. Both the isometric heat/stress and the enthalpy (heat+work)/load relationships were similar to those previously reported in mammalian cardiac muscle. The activation metabolism was higher in this preparation and, like its mammalian counterpart, was length dependent. The heat production measured in an isometric contraction was approximately 50% higher than that observed at the same stress level in rodent mammalian cardiac muscle. This did not affect the maximum isotonic mechanical efficiency (work divided by enthalpy) of the preparation which, at an afterload of 20% of the maximum stress was 18.1 +/- 1.7% (n = 8). There was no evidence for a shortening heat component in this preparation during isotonic contractions. It appears therefore that the energetics of shortening amphibian cardiac muscle closely resemble the energetics of mammalian cardiac tissue.

Animals↗

Characterization of muscarinic receptors of bovine coronary artery by functional and radioligand binding studies.

The nature of the muscarinic receptor subtype mediating contraction of the endothelium-denuded bovine coronary artery was investigated in vitro by functional measurements and radioligand binding studies. The acetylcholine (ACh)-induced isotonic contraction of circularly cut muscle strips was recorded and expressed as a percentage of the maximum contraction obtained with 80 mM K+. In order to distinguish between M1, M2 and M3 receptors, the potency of the five subtype-selective antagonists, 4-diphenylacetoxy-N-methyl-piperidine methobromide (4-DAMP), parafluor-hexahydro-siladifenidol (pFHHSiD), pirenzepine, AF-DX 116 and methoctramine, to block the ACh-induced contraction was estimated. All the antagonists competitively inhibited the responses induced by ACh, with one exception, namely, 4-DAMP, whose Schild plot had a slope greater than one. The low affinity of pirenzepine (pA2 7.14 +/- 0.14) excluded an action at the M1 subtype. The low affinity of AF-DX 116 (pA2 6.49 +/- 0.18) and methoctramine (pA2 5.88 +/- 0.07) suggest that the bovine coronary artery smooth muscle receptor is not of the M2 (cardiac) subtype. In contrast, 4-DAMP (pA2 9.04 +/- 0.03) and pFHHSiD (pA2 7.64 +/- 0.04) potently inhibited the ACh-induced contraction with affinities similar to those reported for the M3 (glandular) receptor. In addition, the muscarinic receptors mediating coronary artery contraction were characterized in antagonist/[3H]N-methyl-scopolamine ([3H]NMS) competition binding studies. With the exception of AF-DX 116, all antagonists bound to a homogeneous population of receptors with pseudo-Hill slopes not different from unity. The pKi values, albeit somewhat lower, essentially substantiated the functional affinity estimates.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

A Hill type model of rat medial gastrocnemius muscle that accounts for shortening history effects.

The aim of the present study was to develop a Hill type muscle model that accounts for the effects of shortening history. For this purpose, a function was derived that relates force depression to starting length, shortening amplitude and contraction velocity. History parameters were determined from short-range isokinetic experiments on rat medial gastrocnemius muscle (GM). Simulations of isokinetic as well as isotonic experiments were performed with the new model and a standard Hill type model. The simulation results were compared with experimental results of rat GM to evaluate if incorporation of history effects leads to improvements in model predictions. In agreement with the experimental results, the new model qualitatively described force reduction during and after isokinetic shortening as well as the experimental observation that isometric endpoints of isotonic contractions are attained at higher muscle lengths than is expected from the fully isometric length-force curve. Consequently, the new model gave a better quantitative prediction of the experimental results compared to the standard model. It was concluded that incorporation of history effects can improve the predictive power of a Hill type model considerably. The applicability of the model to conditions other than those described in the present paper is discussed.

Animals↗

Firing rates of motor units in human vastus lateralis muscle during fatiguing isometric contractions.

We investigated the firing rate of motor units in the vastus lateralis muscle in five healthy young men (mean = 21.4 yr, SD = 0.9) during a sequence of isometric constant-torque contractions repeated to exhaustion. The contractions were sustained at 20% of the maximal voluntary level, measured at the beginning of the test sequence. Electromyographic (EMG) signals were recorded via quadrifilar fine-wire electrodes and subsequently decomposed into their constituent motor unit action potentials to obtain the motor unit firing times. In addition, we measured the whole muscle mechanical properties during the fatigue task using electrical stimulation. The firing rate of motor units first decreased within the first 10-20% of the endurance time of the contractions and then increased. The firing rate increase was accompanied by recruitment of additional motor units as the force output remained constant. The elicited twitch and tetanic torque responses first increased and then decreased. The two processes modulated in a complementary fashion at the same time. Our data suggest that, when the vastus lateralis muscle is activated to maintain a constant torque output, its motoneuron pool receives a net excitatory drive that first decreases to compensate for the short-lived potentiation of the muscle force twitch and then increases to compensate for the diminution of the force twitch. The underlying inverse relationship between the firing rate and the recruitment threshold that has been reported for nonfatigued contractions is maintained. We, therefore, conclude that the central nervous system control of vastus lateralis motor units remains invariant during fatigue in submaximal isometric isotonic contractions.

Action Potentials↗

Validity of the force-velocity relation for muscle contraction in the length region, l less than or equal to l-o.

Considerable attention has been directed to the characteristic force-velocity relation discovered by A. V. Hill in the study of muscle kinematics. Models of contractile process were tested on the basis of their compatibility with the Hill equation. However, almost all the isotonic data have been restricted to one length, l(0), the maximum length with almost no resting tension; the velocities measured are those initial values when the load begins to move. The force-velocity curve extrapolates to zero velocity for isometric tension, but only for the tension at that one length. Very few efforts have been made to study the profiles of the curves throughout the range of lengths over which shortening takes place. In examining the length region, l </= l(0), for an isotonically contracting muscle, not only is the force-velocity relation valid for the initial reference length, l(0), but also for any other length. The analysis in this report indicates that the constants a/P(0) and b/l(0) remain fixed throughout the length change of afterloaded isotonic shortening in the Rana pipiens sartorius muscles.

Animals↗

Effects of halothane, isoflurane and sevoflurane on calcium-related contraction in porcine coronary arteries.

BACKGROUND: Volatile anaesthetics have a direct inhibitory effect upon epicardial coronary arterial smooth muscles (1-4). The site and mode of their action at the cellular level need to be clarified, which was the purpose of our study. The present investigation attempted to answer the question in what way volatile anaesthetics influence Ca(2+)-related contraction in isolated porcine epicardial coronary to understand their intracellular mechanism. METHODS: Isolated helical strips of porcine epicardial coronary artery without endothelium were suspended for isotonic contraction recordings in Krebs-Ringer's solution. 9.4 x 10(-2) MK+, 2.5 x 10(-3) M Ca(2+)-induced shortening of the strips was regarded as the reference value (100%). After incubation in Ca(2+)-free solution with 10(-3) M ethlene glycol bis (beta-aminoethyl ether)-N, N-tetraacetic acid (EGTA) for 60 minutes, the muscle strips were exposed to increasing Ca2+ concentrations (10(-4)-10(-2)) either in the presence or absence of 1.5 or 2.5 minimum alveolar concentration (MAC) halothane, isoflurane or sevoflurane, with 9.4 x 10(-2) M K+ bath solution. RESULTS: All three drug groups produced apparent biphasic effects with a cumulative increase of Ca2+ concentration compared with control groups. An initial increase at low Ca2+ concentration was followed by a decrease of Ca(2+)-activated contractions. Isoflurane affected Ca(2+)-induced contraction significantly more than halothane and sevoflurane. CONCLUSIONS: The results imply that volatile anaesthetics influence Ca(2+)-dependent activity of coronary smooth muscle by complex mechanisms, which involve promotion of intracellular Ca2+ release and other mechanisms that alter sensitivity to calcium.

Anesthetics, Inhalation↗

[Quantitative echographic assessment of muscular physiopathology].

The evaluation of muscular contraction is one of the main variables in muscular reeducation treatment protocols. US depicts muscular structure and size, as well as changes in both. A real-time US unit with 5/7.5 MHz probes and a computer with advanced software were used; the US unit was modified so as to reduce scanning times and to yield a high number of images/second (about 45). During endoscopy, a higher number of intermediate positions can thus be found between rest and contraction, which yields more statistically significant results. The US unit is connected to a video-recorder and to an electrostimulator to obtain isometric and isotonic contractions; the latter unit is connected to the US unit so that the electric and the US energies can be emitted simultaneously and the synchronism of the contraction and of the beginning of the electric stimulation can be assessed. Besides normal control subjects, patients with hypotrophic recto-femoral muscle were examined: the results were collected in a databank useful to choose the most appropriate treatment, to follow patients during therapy, to evaluate the final results and finally to be used in sports activities.

Humans↗

Reflex excitability of human soleus motoneurones during voluntary shortening or lengthening contractions.

1. We investigated the possibility that increase or decrease in the monosynaptic reflex excitability of the soleus muscle in man might play a role in matching the muscle mechanical output to the voluntary command aimed at performing isotonic contractions or relaxations, at various velocities. 2. Rectified and integrated electromyographic activity (e.m.g.) and the H reflex of soleus were measured during plantar flexions against a constant load (shortening contractions) or dorsal flexions resisting the load (lengthening contraction), performed without activation of pretibial muscles. 3. At the same ankle joint angle, integrated e.m.g. was larger during shortening contractions than during lengthening contractions. During shortening contractions, integrated e.m.g. increased as a function of the velocity of plantar flexion. During lengthening contractions, integrated e.m.g. decreased as a function of dorsal flexion and angular velocity and nearly disappeared in the last part of the most rapid lengthening contractions. 4. During shortening contractions, the H reflex increased beyond the extent expected for the level of e.m.g. activity; during lengthening contractions, reduction of the H reflex below control values at rest occurred in spite of background e.m.g. activity. 5. When the level of e.m.g. activity was kept constant, the above changes in H reflex were larger in both directions as a function of the velocity of the movement. 6. Passive rotation in the dorsal direction contributed to the inhibition observed during lengthening contractions. 7. It is suggested that these changes in the excitability of the H reflex, probably presynaptic in origin, serve the purpose of appropriately modulating the rate and extent of motoneurone recruitment during shortening and lengthening contractions. This allows the foot to follow a constant-velocity path in spite of the perturbing effects of the spindle afferent inputs and of the muscle characteristics described by the force--length and force--velocity diagrams.

Action Potentials↗

What kinds of signals are perceived by vascular smooth muscles, including physical factors?

Contraction kinetics of smooth-muscle preparations (rat portal vein, rat tracheal muscle) were studied by means of force-velocity relations obtained from after-loaded isotonic contractions or from the analysis of the isometric tension increase. Furthermore, the time constant of the tension recovery following an inhibiting length vibration reflected the contraction kinetics as well. Signals that induce changes in the calcium concentration or the area of overlap between actin and myosin cause changes mainly in the number of acting cross-bridges. Decrease in temperature, pH reduction, and a long-term stimulation induce slower contraction kinetics probably because of a lesser myosin light-chain kinase activity. The results obtained give further evidence for different mechanisms controlling extent and rate of smooth-muscle contraction.

Actins↗