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1.
Hunter, Kam D., and John A. Faulkner. Pliometriccontraction-induced injury of mouse skeletal muscle: effect of initial length. J. Appl. Physiol. 82(1):278-283, 1997.For single pliometric (lengthening) contractionsinitiated from optimal fiber length (Lf), the mostimportant factor determining the subsequent force deficit is the workinput during the stretch. We tested the hypothesis that regardless ofthe initial length, the force deficit is primarily a function of thework input. Extensor digitorum longus muscles of mice were maximallyactivated in situ and lengthened at 2 Lf /s from oneof three initial fiber lengths (90, 100, or 120% of Lf) to one ofthree final fiber lengths (150, 160, or 170% of Lf). Maximalisometric force production was assessed before and after the pliometriccontraction. No single mechanical factor, including thework input(r2 = 0.34), was sufficient to explain the differences in force deficits observed among groups. Therefore, the force deficit appears to arisefrom a complex interaction of mechanicalevents. With the data grouped by initial fiber length,the correlation between the average work and the average force deficitwas high(r2 = 0.97-0.99). Consequently, differences in force deficits among groups were best explained on the basis of the initial fiber length andthe work input during the stretch.

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2.
Muscle fibers of mdx mice that lack dystrophin are moresusceptible to contraction-induced injury, particularly when stretched. In contrast, transgenic mdx (tg-mdx) mice, whichoverexpress dystrophin, show no morphological or functional signs ofdystrophy. Permeabilization disrupts the sarcolemma of fibers frommuscles of mdx, tg-mdx, and control mice. Wetested the null hypothesis stating that, after single stretches ofmaximally activated single permeabilized fibers, force deficits do notdiffer among fibers from extensor digitorum longus muscles ofmdx, tg-mdx, or control mice. Fibers weremaximally activated by Ca2+ (pCa 4.5) and then stretchedthrough strains of 10%, 20%, or 30% of fiber length(Lf) at a velocity of 0.5 Lf/s. Immediately after each strain, theforce deficits were not different for fibers from each of the threegroups of mice. When collated with studies of membrane-intact fibers inwhole muscles of mdx, tg-mdx, and control mice,these results indicate that dystrophic symptoms do not arise fromfactors within myofibrils but, rather, from disruption of thesarcolemmal integrity that normally provides protection fromcontraction-induced injury.

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3.
We used a reconstituted fiber formed when 3T3fibroblasts are grown in collagen to characterize nonmusclecontractility and Ca2+ signaling. Calf serum (CS) andthrombin elicited reversible contractures repeatable for >8 h. CSelicited dose-dependent increases in isometric force; 30% produced thelargest forces of 106 ± 12 µN (n = 30), whichis estimated to be 0.5 mN/mm2 cell cross-sectionalarea. Half times for contraction and relaxation were 4.7 ± 0.3 and 3.1 ± 0.3 min at 37°C. With imposition of constant shortening velocities, force declined with time, yieldingtime-dependent force-velocity relations. Forces at 5 s fit thehyperbolic Hill equation; maximum velocity(Vmax) was 0.035 ± 0.002 Lo/s.Compliance averaged 0.0076 ± 0.0006 Lo/Fo. Disruption of microtubules with nocodazole in a CS-contracted fiber had no net effects on force, Vmax, or stiffness; force increased in 8, butdecreased in 13, fibers. Nocodazole did not affect baselineintracellular Ca2+ concentration([Ca2+]i) but reduced (~30%) the[Ca2+]i response to CS. The force afternocodazole treatment was the primary determinant of stiffness andVmax, suggesting that microtubules were not amajor component of fiber internal mechanical resistance. Cytochalasin Dhad major inhibitory effects on all contractile parameters measured butlittle effect on [Ca2+]i.

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4.
We investigated the effect of a singlerapid stretch on poststretch force and myosin phosphorylation in bovinetracheal smooth muscle. When unstimulated muscle strips were stretchedfrom suboptimal length to optimal length (Lo),poststretch steady-state force was not significantly different fromthat of unstretched control at Lo. However, whencarbachol-activated muscle strips were stretched from suboptimal lengthto Lo, poststretch force and myosin phosphorylation were lower than control and significantly correlated with initial length. When poststretch muscle strips were allowed to relax for 1 hand then activated by K+ depolarization, the developedforce remained significantly correlated with initial length. When thesame strain was applied in 23 increments to minimize peak stress,poststretch force and myosin phosphorylation increased significantly,approaching the levels expected at Lo. Furthermore,poststretch force development increased after each cycle of contractionand relaxation, approaching the control level after four cycles. Theseresults suggest that activated airway smooth muscle cells can retainrelatively precise memory of past strain when they are stretchedrapidly with high stress.

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5.
The purpose of this study was to examine the effect of prolongedbed rest (BR) on the peak isometric force(Po) and unloaded shorteningvelocity (Vo)of single Ca2+-activated musclefibers. Soleus muscle biopsies were obtained from eight adult malesbefore and after 17 days of 6° head-down BR. Chemicallypermeabilized single fiber segments were mounted between a forcetransducer and position motor, activated with saturating levels ofCa2+, and subjected to slacklength steps. Vowas determined by plotting the time for force redevelopment vs. theslack step distance. Gel electrophoresis revealed that 96% of the pre-and 87% of the post-BR fibers studied expressed only the slow type Imyosin heavy chain isoform. Fibers with diameter >100 µm made uponly 14% of this post-BR type I population compared with 33% of thepre-BR type I population. Consequently, the post-BR type I fibers(n = 147) were, on average, 5%smaller in diameter than the pre-BR type I fibers(n = 218) and produced 13% lessabsolute Po. BR had no overalleffect on Po per fibercross-sectional area(Po/CSA), even though halfof the subjects displayed a decline of 9-12% inPo/CSA after BR. Type Ifiber Voincreased by an average of 34% with BR. Although the ratio of myosinlight chain 3 to myosin light chain 2 also rose with BR, there was nocorrelation between this ratio andVo for either thepre- or post-BR fibers. In separate fibers obtained from the originalbiopsies, quantitative electron microscopy revealed a 20-24%decrease in thin filament density, with no change in thick filamentdensity. These results raise the possibility that alterations in thegeometric relationships between thin and thick filaments may be atleast partially responsible for the elevatedVo of the post-BRtype I fibers.

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6.
We tested the hypothesis that slowing of shortening velocity generated by type IIB fibers from hindlimb-unweighted (HU) rats resulted from a reduced ATPase activity and/or a reduction in the relative content of myosin light chain 3f isoform content (MLC3f). After 2, 3, and 4 wk of HU, maximal unloaded shortening velocity (Vo) of single permeabilized semimembranosus muscle fibers was determined by the slack test. Subsequently, the myosin heavy chain and the relative content of MLC were determined by SDS-PAGE. The ratio of MLC3f to MLC2f was determined by densitometric analysis. In addition, myofibrils were prepared from permeabilized fibers (soleus and semimembranosus muscles) and assayed for resting myosin ATPase and Ca2+-activated myosin ATPase. After HU, Vo declined by 28–40% and the MLC3f/MLC2f ratio decreased by 32 to 48%. A significant correlation between the relative amount of MLC3f and Vo was found (r = 0.48, P < 0.05). Resting myosin ATPase rates were not different between myofibrils prepared from corresponding muscles of control and HU rats (P = 0.86). Ca2+-activated myosin ATPase activities also were not different between myofibrils prepared from corresponding muscles of control and HU rats (P = 0.13). These data suggest that the slowing of maximal unloaded shortening velocity in type IIB fibers with HU is, at least in part, due to a relative change in the essential light chain composition, a decrease in the relative amount of MLC3f and most likely a concomitant increase in MLC1f. However, this reduction in Vo is independent of myosin ATPase activity. unloading shortening velocity; myosin light chain 3f  相似文献   

7.
The chemomechanicalcoupling mechanism in striated muscle contraction was examined bychanging the nucleotide substrate from ATP to CTP. Maximum shorteningvelocity [extrapolation to zero force from force-velocity relation(Vmax) andslope of slack test plots (V0)], maximumisometric force (Po), power, andthe curvature of the force-velocity curve[a/Po(dimensionless parameter inversely related to the curvature)] weredetermined during maximumCa2+-activated isotoniccontractions of fibers from fast rabbit psoas and slow rat soleusmuscles by using 0.2 mM MgATP, 4 mM MgATP, 4 mM MgCTP, or 10 mM MgCTPas the nucleotide substrate. In addition to a decrease in the maximumCa2+-activated force in both fibertypes, a change from 4 mM ATP to 10 mM CTP resulted in a decrease inVmax in psoasfibers from 3.26 to 1.87 muscle length/s. In soleus fibers,Vmax was reduced from 1.94 to 0.90 muscle length/s by this change in nucleotide. Surprisingly, peak power was unaffected in either fiber type by thechange in nucleotide as the result of a three- to fourfold decrease inthe curvature of the force-velocity relationship. The results areinterpreted in terms of the Huxley model of muscle contraction as anincrease in f1and g1 coupled toa decrease in g2(where f1 is therate of cross-bridge attachment and g1 andg2 are rates ofdetachment) when CTP replaces ATP. This adequately accounts for theobserved changes in Po,a/Po,and Vmax.However, the two-state Huxley model does not explicitly reveal thecross-bridge transitions that determine curvature of the force-velocityrelationship. We hypothesize that a nucleotide-sensitive transitionamong strong-binding cross-bridge states followingPi release, but before the release of the nucleotide diphosphate, underlies the alterations ina/Po reported here.

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8.
In this study,we determined the contractile properties of single chemically skinnedfibers prepared from the medial gastrocnemius (MG) and soleus (Sol)muscles of adult male rhesus monkeys and assessed the effects of thespaceflight living facility known as the experiment support primatefacility (ESOP). Muscle biopsies were obtained 4 wk before andimmediately after an 18-day ESOP sit, and fiber type was determined byimmunohistochemical techniques. The MG slow type I fiber wassignificantly smaller than the MG type II, Sol type I, and Sol type IIfibers. The ESOP sit caused a significant reduction in the diameter oftype I and type I/II (hybrid) fibers of Sol and MG type II and hybridfibers but no shift in fiber type distribution. Single-fiber peak force(mN and kN/m2) was similarbetween fiber types and was not significantly different from valuespreviously reported for other species. The ESOP sit significantlyreduced the force (mN) of Sol type I and MG type II fibers. Thisdecline was entirely explained by the atrophy of these fiber typesbecause the force per cross-sectional area (kN/m2) was not altered. Peakpower of Sol and MG fast type II fiber was 5 and 8.5 times that of slowtype I fiber, respectively. The ESOP sit reduced peak power by 25 and18% in Sol type I and MG type II fibers, respectively, and, for theformer fiber type, shifted the force-pCa relationship to the right,increasing the Ca2+ activationthreshold and the free Ca2+concentration, eliciting half-maximal activation. The ESOP sit had noeffect on the maximal shortening velocity(Vo) of anyfiber type. Vo ofthe hybrid fibers was only slightly higher than that of slow type Ifibers. This result supports the hypothesis that in hybrid fibers theslow myosin heavy chain would be expected to have a disproportionatelygreater influence onVo.

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9.
Chemically skinned muscle fibers,prepared from the rat medial gastrocnemius and soleus, were subjectedto four sequential slack tests in Ca2+-activating solutionscontaining 0, 15, 30, and 0 mM added Pi. Pi (15 and 30 mM) had no effect on the unloaded shortening velocity (Vo) of fibers expressing type IIb myosin heavychain (MHC). For fibers expressing type I MHC, 15 mM Pi didnot alter Vo, whereas 30 mM Pireduced Vo to 81 ± 1% of the original 0 mM Pi value. This effect was readily reversible whenPi was lowered back to 0 mM. These results are notcompatible with current cross-bridge models, developed exclusively fromdata obtained from fast fibers, in which Vo isindependent of Pi. The response of the type I fibers at 30 mM Pi is most likely the result of increased internal drag opposing fiber shortening resulting from fiber type-specific effects ofPi on cross bridges, the thin filament, or therate-limiting step of the cross-bridge cycle.

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10.
Takarada, Yudai, Hiroyuki Iwamoto, Haruo Sugi, YuichiHirano, and Naokata Ishii. Stretch-induced enhancement ofmechanical work production in frog single fibers and human muscle.J. Appl. Physiol. 83(5):1741-1748, 1997.The relations between the velocity of prestretchand the mechanical energy liberated during the subsequent isovelocityrelease were studied in contractions of frog single fibers and humanmuscles. During isometric contractions of frog single fibers, a rampstretch of varied velocity (amplitude, 0.02 fiber length; velocity,0.08-1.0 fiber length/s) followed by a release (amplitude, 0.02 fiber length; velocity, 1.0 fiber length/s) was given, and the amountof work liberated during the release was measured. For human muscles,elbow flexions were performed with a prestretch of variedvelocity (range, 40°; velocity, 30-180°/s) followed by anisokinetic shortening (velocity, 90°/s). In both frog single fibersand human muscles, the work production increased with both the velocityof stretch and the peak of force attained before the release up to acertain level; thereafter it declined with the further increases ofthese variables. In human muscles, the enhancement of work productionwas not associated with a significant increase in integratedelectromyogram. This suggests that changes in intrinsic mechanicalproperties of muscle fibers play an important role in thestretch-induced enhancement of work production.

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11.
We tested thehypothesis that mechanical strain modulates agonist sensitivity ofsmooth muscle by measuring myosin phosphorylation and contractile forcein bovine tracheal smooth muscle activated by various concentrations ofthe muscarinic receptor agonist carbachol and at various musclelengths. Increasing carbachol concentration by 10,000-fold did notrestore myosin phosphorylation levels at shorter muscle lengths to thelevel at optimal length(Lo). Maximum levels of myosin phosphorylation induced by carbachol at 0.6, 0.8, and1.0 Lo weresimilar but became lower at <0.6Lo. Cytochalasin D significantly attenuated carbachol-induced contraction by 54%. Inaddition, cytochalasin D treatment induced a parallel downward shift inthe length-myosin phosphorylation relation. Lowering temperature from37 to 23°C did not significantly change the length dependencies ofcarbachol-induced active force and myosin phosphorylation. Theseresults have led us to conclude that1) agonist sensitivity and maximumlevel of activation (as measured by myosin phosphorylation) are targetsof length-dependent modulation, 2)actin filaments involved in contraction and length-dependent modulationare distinct in sensitivity to cytochalasin D, and3) length-dependent modulation isrelatively temperature insensitive.

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12.
Repetitiveisometric tetanic contractions (1/s) of the caninegastrocnemius-plantaris muscle were studied either at optimal length(Lo) or shortlength (Ls;~0.9 · Lo),to determine the effects of initial length on mechanical and metabolicperformance in situ. Respective averages of mechanical and metabolicvariables were(Lo vs.Ls, allP < 0.05) passive tension (preload) = 55 vs. 6 g/g, maximal active tetanic tension(Po) = 544 vs. 174 (0.38 · Po)g/g, maximal blood flow () = 2.0 vs. 1.4 ml · min1 · g1,and maximal oxygen uptake(O2) = 12 vs. 9 µmol · min1 · g1.Tension at Lodecreased to0.64 · Po over20 min of repetitive contractions, demonstrating fatigue; there were nosignificant changes in tension atLs. In separatemuscles contracting atLo, was set to that measured atLs (1.1 ml · min1 · g1),resulting in decreased O2(7 µmol · min1 · g1),and rapid fatigue, to0.44 · Po. Thesedata demonstrate that 1)muscles at Lohave higher andO2 values than those at Ls;2) fatigue occurs atLo with highO2, adjusting metabolic demand (tension output) to match supply; and3) the lack of fatigue atLs with lowertension, , andO2 suggestsadequate matching of metabolic demand, set low by shortmuscle length, with supply optimized by low preload. Thesedifferences in tension andO2 betweenLo andLs groupsindicate that muscles contracting isometrically at initial lengthsshorter than Loare working under submaximal conditions.

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13.
The objectives of this research were to determine thecontribution of excitation-contraction (E-C) coupling failure to the decrement in maximal isometric tetanic force(Po) in mouse extensor digitorumlongus (EDL) muscles after eccentric contractions and to elucidatepossible mechanisms. The left anterior crural muscles of femaleICR mice (n = 164) wereinjured in vivo with 150 eccentric contractions.Po, caffeine-,4-chloro-m-cresol-, andK+-induced contracture forces,sarcoplasmic reticulum (SR) Ca2+release and uptake rates, and intracellularCa2+ concentration([Ca2+]i)were then measured in vitro in injured and contralateral control EDLmuscles at various times after injury up to 14 days. On the basis ofthe disproportional reduction inPo (~51%) compared with caffeine-induced force (~11-21%), we estimate that E-C coupling failure can explain 57-75% of thePo decrement from 0 to 5 days postinjury. Comparable reductions inPo andK+-induced force (51%), and minorreductions (0-6%) in the maximal SRCa2+ release rate, suggest thatthe E-C coupling defect site is located at the t tubule-SR interfaceimmediately after injury. Confocal laser scanning microscopy indicatedthat resting[Ca2+]iwas elevated and peak tetanic[Ca2+]iwas reduced, whereas peak4-chloro-m-cresol-induced[Ca2+]iwas unchanged immediately after injury. By 3 days postinjury, 4-chloro-m-cresol-induced[Ca2+]ibecame depressed, probably because of decreased SRCa2+ release and uptake rates(17-31%). These data indicate that the decrease inPo during the first several daysafter injury primarily stems from a failure in the E-C couplingprocess.

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14.
Postnatal transitions in myosin heavy chain (MHC) isoformexpression were found to be associated with changes in both isometric and isotonic contractile properties of rat diaphragm muscle(Diam). Expression of MHCneo predominated inneonatal Diam fibers but was usually coexpressed withMHCslow or MHC2A isoforms. Expression ofMHCneo disappeared by day 28. Expression ofMHC2X and MHC2B emerged at day 14 andincreased thereafter. Associated with these MHC transitions in theDiam, maximum isometric tetanic force (Po), maximum shortening velocity, and maximum power output progressively increased during early postnatal development. Maximum power output ofthe Diam occurred at ~40% Po at days0 and 7 and at ~30% Po in older animals.Susceptibility to isometric and isotonic fatigue, defined as a declinein force and power output during repetitive activation, respectively,increased with maturation. Isotonic endurance time, defined as the timefor maximum power output to decline to zero, progressively decreasedwith maturation. In contrast, isometric endurance time, defined as thetime for force to decline to 30-40% Po, remained>300 s until after day 28. We speculate that with thepostnatal transition to MHC2X and MHC2Bexpression energy requirements for contraction increase, especiallyduring isotonic shortening, leading to a greater imbalance betweenenergy supply and demand.

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15.
Elevated levels of Pi are thought to cause a substantial proportion of the loss in muscular force and power output during fatigue from intense contractile activity. However, support for this hypothesis is based, in part, on data from skinned single fibers obtained at low temperatures (15°C). The effect of high (30 mM) Pi concentration on the contractile function of chemically skinned single fibers was examined at both low (15°C) and high (30°C) temperatures using fibers isolated from rat soleus (type I fibers) and gastrocnemius (type II fibers) muscles. Elevating Pi from 0 to 30 mM at saturating free Ca2+ levels depressed maximum isometric force (Po) by 54% at 15°C and by 19% at 30°C (P < 0.05; significant interaction) in type I fibers. Similarly, the Po of type II fibers was significantly more sensitive to high levels of Pi at the lower (50% decrease) vs. higher temperature (5% decrease). The maximal shortening velocity of both type I and type II fibers was not significantly affected by elevated Pi at either temperature. However, peak fiber power was depressed by 49% at 15°C but by only 16% at 30°C in type I fibers. Similarly, in type II fibers, peak power was depressed by 40 and 18% at 15 and 30°C, respectively. These data suggest that near physiological temperatures and at saturating levels of intracellular Ca2+, elevated levels of Pi contribute less to fatigue than might be inferred from data obtained at lower temperatures. skinned single fiber; force; power  相似文献   

16.
Mitchell, R. W., K. F. Rabe, H. Magnussen, and A. R. Leff.Passive sensitization of human airways induces myogenic contractile responses in vitro. J. Appl.Physiol. 83(4): 1276-1281, 1997.We assessedeffects of passive sensitization on human bronchial smooth muscle (BSM)response to mechanical stretching in vitro. Bronchial rings were sham(control) or passively sensitized overnight by using sera from donorsdemonstrating sensitivity to Dermatophagoides farinae and having immunoglobulin E (IgE)concentrations of 2,600 ± 200 U/ml. Tissues were fixedisometrically to force transducers to measure responses to electricalfield stimulation (EFS) and quick stretch (QS). The myogenic responseto QS was normalized to the maximal response to EFS (%EFS). Themyogenic response of sensitized BSM was 47.9 ± 10.9 %EFS to a QSof ~6.5% optimal length (Lo);sham-sensitized tissues had a myogenic response of 13.5 ± 6.4 %EFS(P = 0.012 vs. passively sensitized).A QS of ~13% Lo in sensitizedBSM caused a response of 82.8 ± 20.9 %EFS; sham-sensitized tissuesdeveloped a response of 38.2 ± 17.3 %EFS(P = 0.004). BSM incubated with serumfrom nonallergic donors did not demonstrate increased QS response (4.6 ± 1.4 %EFS, P = not significantvs. tissue exposed to atopic sera). However, tissues incubated in serafrom nonatopic donors supplemented with hapten-specific chimeric IgE(JW8) demonstrated augmented myogenic response to QS of ~6.5% Lo (21.9 ± 6.2 %EFS, P = 0.027 vs. nonatopicsera alone). We demonstrate that passive sensitization of human BSMpreparations causes induction and augmentation of myogenic contractionsto QS; this hyperresponsiveness corresponds to the IgE concentration insensitizing sera.

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17.
The myosin heavy chain (MHC) andmyosin light chain (MLC) isoforms in skeletal muscle of Ranapipiens have been well characterized. We measured theforce-velocity (F-V) properties of single intact fast-twitchfibers from R. pipiens that contained MHC types 1 or 2 (MHC1or MHC2) or coexpressed MHC1 and MHC2 isoforms. Velocities weremeasured between two surface markers that spanned most of the fiberlength. MHC and MLC isoform content was quantified after mechanicsanalysis by SDS-PAGE. Maximal shortening velocity(Vmax) and velocity at half-maximal tension(VP 50) increased with percentage of MHC1(%MHC1). Maximal specific tension (Po/CSA, wherePo is isometric tension and CSA is fiber cross-sectional area) and maximal mechanical power (Wmax) alsoincreased with %MHC1. MHC concentration was not significantlycorrelated with %MHC1, indicating that the influence of %MHC1 onPo/CSA and Wmax was due to intrinsicdifferences between MHC isoforms and not to concentration. TheMLC3-to-MLC1 ratio was not significantly correlated withVmax, VP 50,Po/CSA, or Wmax. These data demonstrate the powerful relationship between MHC isoforms and F-V properties of the two most common R. pipiensfiber types.

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18.
Thompson, L. V., and J. A. Shoeman. Contractilefunction of single muscle fibers after hindlimb unweighting in aged rats. J. Appl. Physiol. 84(1):229-235, 1998.This investigation determined how muscle atrophyproduced by hindlimb unweighting (HU) alters the contractile functionof single muscle fibers from older animals (30 mo). After 1 wk of HU,small bundles of fibers were isolated from the soleus muscles and thedeep region of the lateral head of the gastrocnemius muscles. Singleglycerinated fibers were suspended between a motor lever and forcetransducer, functional properties were studied, and the myosin heavychain (MHC) composition was determined electrophoretically. After HU, the diameter of type I MHC fibers of the soleus declined (88 ± 2 vs. 80 ± 4 µm) and reductions were observed in peak active force (47 ± 3 vs. 28 ± 3 mg) and peak specific tension(Po; 80 ± 5 vs. 56 ± 5 kN/m2). The maximal unloadedshortening velocity increased. The type I MHC fibers from thegastrocnemius showed reductions in diameter (14%), peak active force(41%), and Po (24%), whereas thetype IIa MHC fibers showed reductions in peak active force andPo. Thus 1 wk ofinactivity has a significant effect on the force-generating capacity ofsingle skeletal muscle fibers from older animals in a fibertype-specific manner (type I MHC > type IIa MHC > type I-IIa MHC).The decline in the functional properties of single skeletal musclefibers in the older animals appears to be more pronounced than what hasbeen reported in younger animal populations.

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19.
The possiblerole of altered extracellular Ca2+concentration([Ca2+]o)in skeletal muscle fatigue was tested on isolated slow-twitch soleusand fast-twitch extensor digitorum longus muscles of the mouse. Thefollowing findings were made. 1) Achange from the control solution (1.3 mM[Ca2+]o)to 10 mM[Ca2+]o,or to nominally Ca2+-freesolutions, had little effect on tetanic force in nonfatigued muscle.2) Almost complete restoration oftetanic force was induced by 10 mM[Ca2+]oin severely K+-depressed muscle(extracellular K+ concentration of10-12 mM). This effect was attributed to a 5-mV reversal of theK+-induced depolarization andsubsequent restoration of ability to generate action potentials(inferred by using the twitch force-stimulation strength relationship).3) Tetanic force depressed bylowered extracellular Na+concentration (40 mM) was further reduced with 10 mM[Ca2+]o.4) Tetanic force loss at elevatedextracellular K+ concentration (8 mM) and lowered extracellular Na+concentration (100 mM) was partially reversed with 10 mM[Ca2+]oor markedly exacerbated with low[Ca2+]o.5) Fatigue induced by using repeatedtetani in soleus was attenuated at 10 mM[Ca2+]o(due to increased resting and evoked forces) and exacerbated at low[Ca2+]o.These combined results suggest, first, that raised[Ca2+]oprotects against fatigue rather than inducing it and, second, that aconsiderable depletion of[Ca2+]oin the transverse tubules may contribute to fatigue.

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20.
The mechanism underlying H2O2-inducedactivation of frog skeletal muscle ryanodine receptors was studiedusing skinned fibers and by measuring single Ca2+-releasechannel current. Exposure of skinned fibers to 3-10 mM H2O2 elicited spontaneous contractures.H2O2 at 1 mM potentiated caffeine contracture.When the Ca2+-release channels were incorporated into lipidbilayers, open probability (Po) and open timeconstants were increased on intraluminal addition ofH2O2 in the presence of cis catalase,but unitary conductance and reversal potential were not affected.Exposure to cis H2O2 at 1.5 mM failedto activate the channel in the presence of trans catalase.Application of 1.5 mM H2O2 to the transside of a channel that had been oxidized by cisp-chloromercuriphenylsulfonic acid (pCMPS; 50 µM) still led to anincrease in Po, comparable to that elicited bytrans 1.5 mM H2O2 without pCMPS.Addition of cis pCMPS to channels that had been treated with orwithout trans H2O2 rapidly resulted inhigh Po followed by closure of the channel. Theseresults suggest that oxidation of luminal sulfhydryls in theCa2+-release channel may contribute toH2O2-induced channel activation and musclecontracture.

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