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1.
Because the major processes involved in muscle contraction require rapid utilization of ATP, measurement of ATP utilization can provide important insights into the mechanisms of contraction. It is necessary, however, to differentiate between the contribution made by cross-bridges and that of the sarcoplasmic reticulum (SR) Ca2+ pumps. Specific and potent SR Ca2+ pump blockers have been used in skinned fibers to permit direct measurement of cross-bridge ATP utilization. Up to now, there was no analogous cross-bridge blocker. Recently, N-benzyl-p-toluene sulfonamide (BTS) was found to suppress force generation at micromolar concentrations. We tested whether BTS could be used to block cross-bridge ATP utilization, thereby permitting direct measurement of SR Ca2+ pump ATP utilization in saponin-skinned fibers. At 25 µM, BTS virtually eliminates force and cross-bridge ATP utilization (both <4% of control value). By taking advantage of the toadfish swimbladder muscle's unique right shift in its force-Ca2+ concentration ([Ca2+]) relationship, we measured SR Ca2+ pump ATP utilization in the presence and absence of BTS. At 25 µM, BTS had no effect on SR pump ATP utilization. Hence, we used BTS to make some of the first direct measurements of ATP utilization of intact SR over a physiological range of [Ca2+]at 15°C. Curve fits to SR Ca2+ pump ATP utilization vs. pCa indicate that they have much lower Hill coefficients (1.49) than that describing cross-bridge force generation vs. pCa (5). Furthermore, we found that BTS also effectively eliminates force generation in bundles of intact swimbladder muscle, suggesting that it will be an important tool for studying integrated SR function during normal motor behavior. muscle energetics; skinned muscle fibers; sarcoplasmic reticulum calcium ion pumps; cross bridges  相似文献   

2.
Properties of the sarcoplasmic reticulum (SR) with respect to Ca2+ loading and release were measured in mechanically skinned fiber preparations from isolated extensor digitorum longus (EDL) muscles of the rat that were either kept at room temperature (23°C) or exposed to temperatures in the upper physiological range for mammalian skeletal muscle (30 min at 40 or 43°C). The ability of the SR to accumulate Ca2+ was significantly reduced by a factor of 1.9–2.1 after the temperature treatments due to a marked increase in SR Ca2+ leak, which persisted for at least 3 h after treatment. Results with blockers of Ca2+ release channels (ruthenium red) and SR Ca2+ pumps [2,5-di(tert-butyl)-1,4-hydroquinone] indicate that the increased Ca2+ leak was not through the SR Ca2+ release channel or the SR Ca2+ pump, although it is possible that the leak pathway was via oligomerized Ca2+ pump molecules. No significant change in the maximum SR Ca2+-ATPase activity was observed after the temperature treatment, although there was a tendency for a decrease in the SR Ca2+-ATPase. The observed changes in SR properties were fully prevented by the superoxide (O2) scavenger Tiron (20 mM), indicating that the production of O2 at elevated temperatures is responsible for the increase in SR Ca2+ leak. Results show that physiologically relevant elevated temperatures 1) induce lasting changes in SR properties with respect to Ca2+ handling that contribute to a marked increase in the SR Ca2+ leak and, consequently, to the reduction in the average coupling ratio between Ca2+ transport and SR Ca2+-ATPase and muscle performance, and 2) that these changes are mediated by temperature-induced O2 production. skeletal muscle; calcium ion leak; superoxide; skinned fibers  相似文献   

3.
Ca+ sparks are rare in healthy adult mammalian skeletal muscle but may appear when adult fiber integrity is compromised, and occur in embryonic muscle but decline as the animal develops. Here we used cultured adult mouse flexor digitorum brevis muscle fibers to monitor occurrence of Ca2+ sparks during maintenance of adult fiber morphology and during eventual fiber morphological dedifferentiation after various times in culture. Fibers cultured for up to 3 days retain normal morphology and striated appearance. Ca2+ sparks were rare in these fibers. At 5–7 days in culture, many of the original muscle fibers exhibit sprouting and loss of striations, as well as the occurrence of spontaneous Ca2+ sparks. The average rate of occurrence of Ca2+ sparks is >10-fold higher after 5–7 days in culture than in days 1–3. With the use of fibers cultured for 7 days, application of the Ca2+ channel blockers Co2+ or nifedipine almost completely suppressed the occurrence of Ca2+ sparks, as previously shown in embryonic fibers, suggesting that Ca2+ sparks may be generated by similar mechanisms in dedifferentiating cultured adult fibers and in embryonic fibers before final differentiation. The sarcomeric disruption observed under transmitted light microscopy in dedifferentiating fibers was accompanied by morphological changes in the transverse (T) tubular system, as observed by fluorescence confocal imaging of both an extracellular marker dye and membrane staining dyes. Changes in T tubule morphology coincided with the appearance of Ca2+ sparks, suggesting that Ca2+ sparks may either be a signal for, or the result of, disruption of DHPR-ryanodine receptor 1 coupling. calcium ion signaling; muscle remodeling; fluo 4; calcium ion imaging  相似文献   

4.
This study examined the effects of fatigue on the functionalaspects of the contractile apparatus and sarcoplasmic reticulum (SR).Frog semitendinosus muscles were stimulated to fatigue, and skinnedfibers or a homogenate fraction was prepared from both fatigued andrested contralateral muscles. In fatigued fibers, maximalCa2+-activated force of thecontractile apparatus was unaltered, whereas maximal actomyosin-ATPaseactivity was depressed by 20%. TheCa2+ sensitivity of force wasincreased, whereas that of actomyosin-ATPase was not altered. Also, therate constant for tension redevelopment was decreased at submaximalCa2+ concentration. These latterfindings suggest that fatigue slows the dissociation offorce-generating myosin cross bridges.Ca2+ uptake andCa2+-ATPase activity of the SRwere depressed by 46 and 21%, respectively, in the fatigued muscles.Fatigue also reduced the rates of SR Ca2+ release evoked byAgNO3 and4-chloro-m-cresol by 38 and 45%, respectively. During fatigue, the contractile apparatus and SR undergointrinsic functional alterations. These changes likely result inaltered force production and energy consumption by the intact muscle.

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5.
Using a single, mechanically skinned fiber approach, we tested the hypothesis that denervation (0 to 50 days) of skeletal muscles that do not overlap in fiber type composition [extensor digitorum longus (EDL) and soleus (SOL) muscles of Long-Evans hooded rats] leads to development of different fiber phenotypes. Denervation (50 day) was accompanied by 1) a marked increase in the proportion of hybrid IIB/D fibers (EDL) and I/IIA fibers (SOL) from 30% to >75% in both muscles, and a corresponding decrease in the proportion of pure fibers expressing only one myosin heavy chain (MHC) isoform; 2) complex muscle- and fiber-type specific changes in sarcoplasmic reticulum Ca2+-loading level at physiological pCa 7.1, with EDL fibers displaying more consistent changes than SOL fibers; 3) decrease by 50% in specific force of all fiber types; 4) decrease in sensitivity to Ca2+, particularly for SOL fibers (by 40%); 5) decrease in the maximum steepness of the force-pCa curves, particularly for the hybrid I/IIA SOL fibers (by 35%); and 6) increased occurrence of biphasic behavior with respect to Sr2+ activation in SOL fibers, indicating the presence of both slow and fast troponin C isoforms. No fiber types common to the two muscles were detected at any time points (day 7, 21, and 50) after denervation. The results provide strong evidence that not only neural factors, but also the intrinsic properties of a muscle fiber, influence the structural and functional properties of a particular muscle cell and explain important functional changes induced by denervation at both whole muscle and single cell levels. mechanically skinned fibers; myosin heavy chain isoforms; lineage; sarcoplasmic reticulum; Ca2+; Sr2+ sensitivity; Long-Evans hooded rat  相似文献   

6.
The effects of1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraaceticacid (BAPTA) on force and intracellularCa2+ transient were studied duringisometric twitches and tetanuses in single frog muscle fibers. BAPTAwas added to the bathing solution in its permeant AM form (50 and 100 µM). There was no clear correlation between the changes in force andthe changes in Ca2+ transient.Thus during twitch stimulation BAPTA did not suppress theCa2+ transient until the force hadbeen reduced to <50% of its control value. At the same time, thepeak myoplasmic free Ca2+concentration reached during tetanic stimulation was markedly increased, whereas the force was slightlyreduced by BAPTA. The effects of BAPTA were not duplicated by usinganother Ca2+ chelator, EGTA,indicating that BAPTA may act differently as aCa2+ chelator. Stiffnessmeasurements suggest that the decrease in mechanical performance in thepresence of BAPTA is attributable to a reduced number of active crossbridges. The results could mean that BAPTA, under the conditions used,inhibits the binding of Ca2+ totroponin C resulting in a reduced state of activation of the contractile system.

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7.
During vigorous exercise, Pi concentration levels within the cytoplasm of fast-twitch muscle fibers may reach 30 mM. Cytoplasmic Pi may enter the sarcoplasmic reticulum (SR) and bind to Ca2+ to form a precipitate (CaPi), thus reducing the amount of releasable Ca2+. Using mechanically skinned rat fast-twitch muscle fibers, which retain the normal action potential-mediated Ca2+ release mechanism, we investigated the consequences of Pi exposure on normal excitation-contraction coupling. The total amount of Ca2+ released from the SR by a combined caffeine/low-Mg2+ concentration stimulus was reduced by 20%, and the initial rate of force development slowed after 2-min exposure to 30 mM Pi (with or without the presence creatine phosphate). Peak (50 Hz) tetanic force was also reduced (by 25% and 45% after 10 and 30 mM Pi exposure, respectively). Tetanic force responses produced after 30 mM Pi exposure were nearly identical to those observed in the same fiber after depletion of total SR Ca2+ by 35%. Ca2+ content assays revealed that the total amount of Ca2+ in the SR was not detectably changed by exposure to 30 mM Pi, indicating that Ca2+ had not leaked from the SR but instead formed a precipitate with the Pi, reducing the amount of available Ca2+ for rapid release. These results suggest that CaPi precipitation that occurs within the SR could contribute to the failure of Ca2+ release observed in the later stages of metabolic muscle fatigue. They also demonstrate that the total amount of Ca2+ stored in the SR cannot drop substantially below the normal endogenous level without reducing tetanic force responses. muscle fatigue; excitation-contraction coupling  相似文献   

8.
Williams, Jay H. Contractile apparatus and sarcoplasmicreticulum function: effects of fatigue, recovery, and elevated Ca2+. J. Appl.Physiol. 83(2): 444-450, 1997.This investigationtested the notion that fatiguing stimulation induces intrinsic changes in the contractile apparatus and sarcoplasmic reticulum (SR) and thatthese changes are initiated by elevated intracellularCa2+ concentration([Ca2+]i).Immediately after stimulation of frog semitendinosus muscle, contractile apparatus and SR function were measured. Despite a largedecline in tetanic force (Po),maximal Ca2+-activated force(Fmax) of the contractileapparatus was not significantly altered. However,Ca2+ sensitivity was increased. Inconjunction, the rate constant ofCa2+ uptake by the SR wasdiminished, and the caffeine sensitivity ofCa2+ release was decreased. Duringrecovery, Po, contractileapparatus, and SR function each returned to near-initial levels.Exposure of skinned fibers to 0.5 µM freeCa2+ for 5 min depressed bothFmax andCa2+ sensitivity of thecontractile apparatus. In addition, caffeine sensitivity ofCa2+ release was diminished.Results suggest that fatigue induces intrinsic alterations incontractile apparatus and SR function. Changes in contractile apparatusfunction do not appear to be mediated by increased[Ca2+]i.However, a portion of the change in SRCa2+ release seems to be due toelevated[Ca2+]i.

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9.
We testedthe hypothesis that strain is the primary mechanical signal in themechanosensitive modulation of intracellular Ca2+concentration ([Ca2+]i) in airway smoothmuscle. We found that [Ca2+]i wassignificantly correlated with muscle length during isotonic shorteningagainst 20% isometric force (Fiso). When the isotonic loadwas changed to 50% Fiso, data points from the 20 and 50% Fiso experiments overlapped in thelength-[Ca2+]i relationship. Similarly, datapoints from the 80% Fiso experiments clustered near thosefrom the 50% Fiso experiments. Therefore, despite 2.5- and4-fold differences in external load, [Ca2+]idid not deviate much from the length-[Ca2+]irelation that fitted the 20% Fiso data. Maximal inhibition of sarcoplasmic reticular (SR) Ca2+ uptake by 10 µMcyclopiazonic acid (CPA) did not significantly change[Ca2+]i in carbachol-induced isometriccontractions and isotonic shortening. CPA also did not significantlychange myosin light-chain phosphorylation or force redevelopment whencarbachol-activated muscle strips were quickly released from optimallength (Lo) to 0.5 Lo. These results are consistent with thehypothesis and suggest that SR Ca2+ uptake is not theunderlying mechanism.

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10.
Favero, Terence G., Anthony C. Zable, David Colter, andJonathan J. Abramson. Lactate inhibits Ca2+-activatedCa2+-channel activity from skeletal muscle sarcoplasmicreticulum. J. Appl. Physiol. 82(2): 447-452, 1997.Sarcoplasmic reticulum (SR) Ca2+-release channelfunction is modified by ligands that are generated during about ofexercise. We have examined the effects of lactate on Ca2+-and caffeine-stimulated Ca2+ release,[3H]ryanodine binding, and singleCa2+-release channel activity of SR isolated from rabbitwhite skeletal muscle. Lactate, at concentrations from 10 to 30 mM,inhibited Ca2+- and caffeine-stimulated[3H]ryanodine binding to and inhibited Ca2+-and caffeine-stimulated Ca2+ release from SR vesicles.Lactate also inhibited caffeine activation of single-channel activityin bilayer reconstitution experiments. These findings suggest thatintense muscle activity, which generates high concentrations oflactate, will disrupt excitation-contraction coupling. This may lead todecreases in Ca2+ transients promoting a decline in tensiondevelopment and contribute to muscle fatigue.

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11.
Electrophoretic analyses of muscle proteins in whole musclehomogenates and single muscle fiber segments were used to examine myosin heavy chain (MHC) and myosin light chain 2 (MLC2) isoform composition and fiber type populations in soleus muscles from spontaneously hypertensive rats (SHRs) and their age-matchednormotensive controls [Wistar-Kyoto (WKY) rats], at threestages in the development of high blood pressure (4 wk, 16 wk, and 24 wk of age). Demembranated (chemically skinned with 2% Triton X-100),single fiber preparations were used to determine the maximumCa2+-activated force percross-sectional area, calcium sensitivity, and degree of cooperativityof the contractile apparatus andCa2+-regulatory system withrespect to Ca2+. The results showthat, at all ages examined, 1) SHRsoleus contained a lower proportion of MHCI and MLC2 slow (MLC2s) and ahigher proportion of MHCIIa, MHCIId/x, and MLC2 fast (MLC2f )isoforms than the age-matched controls;2) random dissection of single fibers from SHR and WKY soleus produced four populations of fibers: type I (expressing MHCI), type IIA (expressing MHCIIa), hybrid typeI+IIA (coexpressing MHCI and MHCIIa), and hybrid type IIA+IID (coexpressing MHCIIa and MHCIId/x); and3) single fiber dissection from SHRsoleus yielded a lower proportion of type I fibers, a higher proportionof fast-twitch fibers (types IIA and IIA+IID), and a higher proportionof hybrid fibers (types I+IIA and IIA+IID) than the homologous musclesfrom the age-matched WKY rats. Because the presence of hybrid fibers isviewed as a marker of muscle transformation, these data suggest thatSHR soleus undergoes transformation well into adulthood. Our data showalso that, for a given fiber type, there are no significant differencesbetween SHR and WKY soleus muscles with respect to any of theCa2+-activation propertiesexamined. This finding indicates that the lower specific tensionsreported in the literature for SHR soleus muscles are not due tostrain- or hypertension-related differences in the function of thecontractile apparatus or regulatory system.  相似文献   

12.
SYNOPSIS. Crayfish have a long evolutionary history in temperatefresh water (FW). Ion regulation is challenged by low externalconcentrations of Na, Cl, and Ca (<1 mM). In intermolt theprimary concern is Na and Cl balance; around ecdysis the emphasisswitches to Ca regulation as the cuticle is decalcified/calcified.Compared with marine crustaceans, intermolt crayfish maintaina reduced extracellular (EC) osmolality and have lower permeabilityto both ions and water. Hyperregulation involves active branchialuptake of Na and Cl and the unique ability to produce a hypotonicurine. Ion uptake involves apical electroneutral ion exchange(Na$ for H$; Cl for HCO3–; counterions providedfrom CO2 via carbonic anhydrase) followed by active basolateraltransport of Na via the Na pump, with Cl following passively.Reabsorption of 95% of filtered electrolytes at the antennalgland (kidney) involves similar subcellular mechanisms in amorphologically differentiated region of the distal tubule.Intermolt crayfish exhibit negative Ca balance (passive effluxunopposed by uptake) tolerable in view of the large cuticularCaCO3 reserve. In premolt, cuticular Ca is reabsorbed. A smallamount is stored as gastroliths, the remainder is lost via branchialexcretion and in the discarded exuviae. At ecdysis, FW uptakegenerates the physical force for shedding, leaving the crayfishwith dilute hemolymph and a Ca deficiency. Levels of EC Na andCl are restored by intensive postmolt branchial uptake. Mineralizationof the soft exoskeleton involves remobilization of stored Caand branchial uptake of Ca and HCO3. Transepithelial Ca transportinvolves Ca2$ ATPase and Ca2$/Na$ exchange. The importance ofexternal electrolytes and pH in postmolt ion regulation is explored,as are some allometric considerations.  相似文献   

13.
Inorganic phosphate(Pi) accumulates in the fibers of actively working musclewhere it acts at various sites to modulate contraction. To characterizethe role of Pi as a regulator of the sarcoplasmic reticulum(SR) calcium (Ca2+) release channel, we examined the actionof Pi on purified SR Ca2+ release channels,isolated SR vesicles, and skinned skeletal muscle fibers. In singlechannel studies, addition of Pi to the cis chamberincreased single channel open probability (Po;0.079 ± 0.020 in 0 Pi, 0.157 ± 0.034 in 20 mMPi) by decreasing mean channel closed time; mean channelopen times were unaffected. In contrast, the ATP analog,,-methyleneadenosine 5'-triphosphate (AMP-PCP), enhancedPo by increasing single channel open time anddecreasing channel closed time. Pi stimulation of[3H]ryanodine binding by SR vesicles wassimilar at all concentrations of AMP-PCP, suggesting Pi andadenine nucleotides act via independent sites. In skinned musclefibers, 40 mM Pi enhanced Ca2+-inducedCa2+ release, suggesting an in situ stimulation ofthe release channel by high concentrations of Pi. Ourresults support the hypothesis that Pi may be an importantendogenous modulator of the skeletal muscle SR Ca2+ releasechannel under fatiguing conditions in vivo, acting via a mechanismdistinct from adenine nucleotides.

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14.
Bangart, J. J., J. J. Widrick, and R. H. Fitts. Effectof intermittent weight bearing on soleus fiber force-velocity-power andforce-pCa relationships. J. Appl.Physiol. 82(6): 1905-1910, 1997.Ratpermeabilized type I soleus fibers displayed a 33% reduction in peakpower output and a 36% increase in the freeCa2+ concentration required forone-half maximal activation after 14 days of hindlimb non-weightbearing (NWB). We examined the effectiveness of intermittent weightbearing (IWB; consisting of four 10-min periods of weight bearing/day)as a countermeasure to these functional changes. At peak power output,type I fibers from NWB animals produced 54% less force and shortenedat a 56% greater velocity than did type I fibers from controlweight-bearing animals while type I fibers from the IWB rats produced26% more absolute force than did fibers from the NWB group andshortened at a velocity that was only 80% of the NWB group mean. As aresult, no difference was observed in the average peak power of fibers from the IWB and NWB animals. Hill plot analysis of force-pCa relationships indicated that fibers from the IWB group required similarlevels of free Ca2+ to reachhalf-maximal activation in comparison to fibers from the weight-bearinggroup. However, at forces <50% of peak force, the force-pCa curvefor fibers from the IWB animals clearly fell between the relationshipsobserved for the other two groups. In summary, IWB treatments1) attenuated the NWB-inducedreduction in fiber Ca2+sensitivity but 2) failed to preventthe decline in peak power that occurs during NWB because of opposingeffects on fiber force (an increase vs. NWB) and shortening velocity (adecrease vs. NWB).

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15.
We examined the effect of the2-agonist clenbuterol (50 µM)on depolarization-induced force responses and sarcoplasmic reticulum (SR) function in muscle fibers of the rat (Rattusnorvegicus; killed by halothane overdose) that had beenmechanically skinned, rendering the2-agonist pathway inoperable.Clenbuterol decreased the peak of depolarization-induced forceresponses in the extensor digitorum longus (EDL) and soleus fibers to77.2 ± 9.0 and 55.6 ± 5.4%, respectively, ofcontrols. The soleus fibers did not recover. Clenbuterol significantlyand reversibly reduced SR Ca2+loading in EDL and soleus fibers to 81.5 ± 2.8 and 78.7 ± 4.0%, respectively, of controls. Clenbuterol also producedan ~25% increase in passive leak ofCa2+ from the SR of the EDL andsoleus fibers. These results indicate that clenbuterol has directeffects on fast- and slow-twitch skeletal muscle, in the absence of the2-agonist pathway. Theincreased Ca2+ leak in the triadregion may lead to excitation-contraction coupling damage in the soleusfibers and could also contribute to the anabolic effect of clenbuterolin vivo.

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16.
Mutations in the central domain of the skeletal muscle ryanodinereceptor (RyR) cause malignant hyperthermia (MH). A synthetic peptide(DP4) in this domain (Leu-2442-Pro-2477) produces enhanced ryanodine binding and sensitized Ca2+ release in isolatedsarcoplasmic reticulum, similar to the properties in MH, possiblybecause the peptide disrupts the normal interdomain interactions thatstabilize the closed state of the RyR (Yamamoto T, El-Hayek R, andIkemoto N. J Biol Chem 275: 11618-11625, 2000). Here, DP4 was applied to mechanically skinned fibers of rat muscle thathad the normal excitation-contraction coupling mechanism stillfunctional to determine whether muscle fiber responsiveness wasenhanced. DP4 (100 µM) substantially potentiated the Ca2+release and force response to caffeine (8 mM) and to low[Mg2+] (0.2 mM) in every fiber examined, with nosignificant effect on the properties of the contractile apparatus. DP4also potentiated the response to submaximal depolarization of thetransverse tubular system by ionic substitution. Importantly, DP4 didnot significantly alter the size of the twitch response elicited byaction potential stimulation. These results support the proposal thatDP4 causes an MH-like aberration in RyR function and are consistentwith the voltage sensor triggering Ca2+ release bydestabilizing the closed state of the RyRs.

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17.
The effects of Pi onsarcoplasmic reticulum (SR) Ca2+ regulation were studied inmechanically skinned rat skeletal muscle fibers. Brief application ofcaffeine was used to assess the SR Ca2+ content, andchanges in concentration of Ca2+([Ca2+]) within the cytosol were detected withfura 2 fluorescence. Introduction of Pi (1-40 mM)induced a concentration-dependent Ca2+ efflux from the SR.In solutions lacking creatine phosphate (CP), the amplitude of thePi-induced Ca2+ transient approximatelydoubled. A similar potentiation of Pi-induced Ca2+ release occurred after inhibition of creatine kinase(CK) with 2,4-dinitrofluorobenzene. In the presence of ruthenium red or ryanodine, caffeine-induced Ca2+ release was almostabolished, whereas Pi-induced Ca2+ release wasunaffected. However, introduction of the SR Ca2+ ATPaseinhibitor cyclopiazonic acid effectively abolishedPi-induced Ca2+ release. These data suggestthat Pi induces Ca2+ release from the SR byreversal of the SR Ca2+ pump but not via the SRCa2+ channel under these conditions. If this occurs inintact skeletal muscle during fatigue, activation of a Ca2+efflux pathway by Pi may contribute to the reporteddecrease in net Ca2+ uptake and increase in resting[Ca2+].

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18.
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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19.
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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20.
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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