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1.
ATPase Activity of Myosin Correlated with Speed of Muscle Shortening   总被引:32,自引:6,他引:26  
Myosin was isolated from 14 different muscles (mammals, lower vertebrates, and invertebrates) of known maximal speed of shortening. These myosin preparations were homogeneous in the analytical ultracentrifuge or, in a few cases, showed, in addition to the main myosin peak, part of the myosin in aggregated form. Actin- and Ca++-activated ATPase activities of the myosins were generally proportional to the speed of shortening of their respective muscles; i.e. the greater the intrinsic speed, the higher the ATPase activity. This relation was found when the speed of shortening ranged from 0.1 to 24 muscle lengths/sec. The temperature coefficient of the Ca++-activated myosin ATPase was the same as that of the speed of shortening, Q10 about 2. Higher Q10 values were found for the actin-activated myosin ATPase, especially below 10°C. By using myofibrils instead of reconstituted actomyosin, Q10 values close to 2 could be obtained for the Mg++-activated myofibrillar ATPase at ionic strength of 0.014. In another series of experiments, myosin was isolated from 11 different muscles of known isometric twitch contraction time. The ATPase activity of these myosins was inversely proportional to the contraction time of the muscles. These results suggest a role for the ATPase activity of myosin in determining the speed of muscle contraction. In contrast to the ATPase activity of myosin, which varied according to the speed of contraction, the F-actin-binding ability of myosin from various muscles was rather constant.  相似文献   

2.
The relation between ATPase rate and substrate concentration was investigated for myofibrils with varying amounts of added HMM. There was a biphasic, 3 to 5-fold increase in ATPase in the absence of Ca++. In the absence of added HMM, the peak activity occurred at ≤ 0.1 mM MgATP. With increasing concentrations of HMM, the position and magnitude of the ATPase peak shifted to larger substrate concentrations and higher rates. The cofactor activity of regulated actin in myofibrils is activated to a similar degree by Ca++ as by HMM (rigor links). SDS gel electrophoretic patterns of myofibrils mixed with HMM indicated the soluble HMM binds to myofibrils at 0.1 mM MgATP and is dissociated at higher MgATP concentrations. Thus, in well-regulated myofibrils in the absence of Ca++ actin cofactor activity can be activated by rigor complexes.  相似文献   

3.
Isolated human red blood cell membrane fragments (RBCMF) were found to take up Ca++ in the presence of ATP.1 This ATP-dependent Ca++ uptake by RBCMF appears to be the manifestation of an active Ca++ transport mechanism in the red cell membrane reported previously (Schatzmann, 1966; Lee and Shin, 1969). The influences of altering experimental conditions on Ca++-stimulated Mg++ ATPase (Ca++ ATPase) and Ca++ uptake of RBCMF were studied. It was found that pretreatment of RBCMF at 50°C abolished both Ca++ ATPase and Ca++ uptake. Pretreatment of RBCMF with phospholipases A and C decreased both Ca++ ATPase and Ca++ uptake, whereas pretreatment with phospholipase D did not significantly alter either Ca++ ATPase or Ca++ uptake. Both Ca++ ATPase and Ca++ uptake had ATP specificity, similar optimum pH's, and optimum incubation temperatures. From these results, it was concluded that Ca++ uptake is intimately linked to Ca++ ATPase.  相似文献   

4.
Sheep or guinea pig antisera against the purified Ca++ transport ATPase of sarcoplasmic reticulum inhibit Ca++ transport due to a complement-dependent damage of the membrane, which causes massive leakage of Ca++. The Ca++-activated ATPase activity is only slightly affected even at ten times higher antibody concentration than that required for inhibition of Ca++ transport. Antibodies prepared against the Ca++ binding protein (C1 protein) have no influence upon either ATPase activity or Ca++ transport and ferritin-labeled anti-C1 antibodies do not bind to microsomes.  相似文献   

5.
We investigated the effects of two purported calcium sensitizing agents, MCI-154 and DPI 201–106, and a known calcium sensitizer caffeine on Mg-ATPase (myofibrillar ATPase) and myosin ATPase activity of left ventricular myofibrils isolated from non-failing, idiopathic (IDCM) and ischemic cardiomyopathic (ISCM) human hearts (i.e. failing hearts). The myofibrillar ATPase activity of non-failing myofibrils was higher than that of diseased myofibrils. MCI-154 increased myofibrillar ATPase Ca2+ sensitivity in myofibrils from non-failing and failing human hearts. Effects of caffeine similarly increased Ca2+ sensitivity. Effects of DPI 201–106 were, however, different. Only at the 10–6 M concentration was a significant increase in myofibrillar ATPase calcium sensitivity seen in myofibrils from non-failing human hearts. In contrast, in myofibrils from failing hearts, DPI 201–106 caused a concentration-dependent increase in myofibrillar ATPase Ca2+ sensitivity. Myosin ATPase activity in failing myocardium was also decreased. In the presence of MCI-154, myosin ATPase activity increased by 11, 19, and 24% for non-failing, IDCM, and ISCM hearts, respectively. DPI 201–106 caused an increase in the enzymatic activity of less than 5% for all preparations, and caffeine induced an increase of 4, 11, and 10% in non-failing, IDCM and ISCM hearts, respectively. The mechanism of restoring the myofibrillar Ca2+ sensitivity and myosin enzymatic activity in diseased human hearts is most likely due to enhancement of the Ca2+ activation of the contractile apparatus induced by these agents. We propose that myosin light chain-related regulation may play a complementary role to the troponin-related regulation of myocardial contractility.  相似文献   

6.
Summary We have shown that a Ca++-ionophore activity is present in the (Ca+++Mg++)-ATPase of rabbit skeletal muscle sarcoplasmic reticulum (A.E. Shamoo & D.H. MacLennan, 1974.Proc. Nat. Acad. Sci. USA 71:3522). Methylmercuric chloride inhibited the (Ca+++Mg++)-ATPase and Ca++ transport, but had no effect on the activity of the Ca++ ionophore. Mercuric chloride inhibited ATPase, transport and ionophore activity. The ATPase and transport functions were more sensitive to methylmercuric chloride than to mercuric chloride. The two functions were inhibited concomitantly by methylmercuric chloride but slightly lower concentrations of mercuric chloride were required to inhibit Ca++ transport than were required to inhibit ATPase. Methylmercuric chloride and mercuric chloride probably inhibited ATPase and Ca++ transport by blocking essential-SH groups. However, it appears that there are no essential-SH groups in the Ca++ ionophore and that mercuric chloride inhibited the Ca++ ionophore activity by competition with Ca++ for the ionophoric site. Blockage of Ca++ transport by mercuric chloride probably occurs both at sites of essential-SH groups and at sites of ionophoric activity. These data suggest the separate identity of the sites of ATP hydrolysis and of Ca++ ionophoric activity.  相似文献   

7.
Sarcoplasmic reticulum fragments (S.R.F.) were isolated from skeletal and heart muscles. These fragments were found to take up Ca++ very actively from media. When monophasic square waves were passed through the S.R.F. suspension, the Ca++ uptake by S.R.F. was decreased. When the suspension was stimulated electrically after the Ca++ was taken up by S.R.F., the initiation and the cessation of the stimulation were followed by the release and re-uptake of Ca++ by S.R.F., respectively. The degree of inhibition of the Ca++ uptake as well as of the Ca++ release by electrical stimulation was dependent on the voltage and the frequency of stimulation. The presence of inorganic phosphate or oxalate modified the influence of electrical stimulation on the release and the uptake of Ca++ by S.R.F. Attempts were made to observe the release of Ca++ by electrical stimulation from unfractionated sarcoplasmic reticulum remaining in myofibers, and the interaction of the released Ca++ with myofibrils in vitro. For this purpose, the glycerol-extracted fiber was selected as a muscle model, since it contains both sarcoplasmic reticulum and myofibrils. It was found that electrical stimulation of skeletal and heart glycerol-extracted fibers resulted in the contraction of fibers. It appeared that the contraction of glycerol fibers by electrical stimulation was caused by the Ca++ release from sarcoplasmic reticulum by stimulation.  相似文献   

8.
The characteristics of rat liver mitochondria swelling induced by diamide, an oxidizing agent for thiol groups, and by Ca ions are very similar. In both cases the swelling, which is initiated by addition of 0.5–1 mM phosphate or acetate, is prevented by FCCP, antimycin A, EGTA, Mg++ and ruthenium red. Diamide potentiates the swelling action of Ca++, while DTE potentiates that of Mg++. The additive effects of calcium and diamide on rat liver mitochondria have been correlated with their synergic action in promoting the release of mitochondrial Mg++. The results strongly indicate that some of the effects of diamide are mediated by a mobilization of endogenous divalent ions and that the antagonism between Ca++ and Mg++ is closely correlated with the redox state of membrane bound thiol groups.  相似文献   

9.
M Kurebe 《Life sciences》1979,24(3):275-281
The delipidated Ca++-ATPase prepared from intestinal brush border membranes showed a higher activity of Ca++-independent ATPase, a lower Km value for ATP and a higher Km value for Ca++ than its original membrane Ca++-ATPase. The addition of phosphatidylcholine re-activated the delipidated Ca++-ATPase to approximately 89 % of its original membrane Ca++-ATPase activity but did not restore the affinity for Ca++. This phospholipid raised the Km value for ATP but had little effect on the Km value for Ca++. Palmitic acid elevated the Km value for Ca++ but did not change the Km value for ATP. Kinetic analyses of these data suggest that the hydrocarbon chain of phosphatidylcholine is an important rate-limiting factor for the access of Ca++ to the enzyme and the polar head groups of phosphorylcholine and ester bond may be the factor for the access of ATP.  相似文献   

10.
A fluorescent chelate probe and a Millipore filtration technique have been used to study the effects of β-bungarotoxin (β-toxin) on passive and active Ca++ uptake and ATPase in fragmented sarcoplasmic reticulum (SR) of rabbit skeletal muscle. β-Toxin at 3 × 10?6 M did not affect ATPase activity. In the absence of ATP, β-Toxin increased the passive uptake of Ca++; in the presence of ATP, active Ca++ uptake was inhibited. The effect of β-toxin in SR can be detected at concentrations as low as 10?9 M. The results suggest that β-toxin induces Ca++ leakage in SR membranes.  相似文献   

11.
M G Luthra  H D Kim 《Life sciences》1979,24(26):2441-2448
A highly purified cytoplasmic activator protein of human red cell membrane Ca++ + Mg++ ATPase was prepared by two step purification scheme utilizing Diethylaminoethyl cellulose (DE-52) and sephadex (G-100) column chromatography. This purified protein can elicit a maximum activation of membrane Ca++ + Mg++ ATPase at low calcium concentrations. The stimulatory effect of this protein can be rendered totally ineffective by chemical modification with N-bromosuccinimide. The results suggest a possible role of methionine oxidation in the regulation of the Ca++ + Mg++ ATPase activator activity.  相似文献   

12.
In 2 mM MgATP, 0.08 ionic strength and 1 mM free Mg++ cardiac myofibrils bound 3.5 nmoles Ca/mg protein at maximal ATPase activation. Significant amounts of Ca were also bound to cardiac myosin with these same conditions. By subtraction of this myosin-bound Ca we obtained an estimate of 4 moles Ca bound per mole of myofibrillar troponin at maximal ATPase. We found, however, that Ca activation of myofibrillar ATPase could be estimated assuming that only two of troponin's Ca-binding sites are engaged in regulation of crossbridge activity. Increase in MgATP from 0.3 to 5.0 mM raised the free Ca, giving half-maximal isometric tension or ATPase. Although part of this shift is most probably due to changes in the number of rigor (nucleotidefree) actin-myosin linkages, the rightward shift of the free Ca++-activation relation with increase in MgATP from 2 to 5 mM appears to be due to effects of active (nucleotide-containing) actin-myosin linkages.  相似文献   

13.
Compound R 24571 (1-[bis(p-chlorophenyl)methyl]-3-[2,4-dichloro-β-(2,4-dichlorobenzyloxy)phenethyl]imidazoliniumchloride) is found to be a powerful inhibitor of red blood cell Ca++-ATPase as well as Ca++ transport into inside-out red blood cell vesicles with an IC50-value of 0.5 and 2 μM, respectively. The inhibitory action of R 24571 is more specific on the calmodulin-dependent fraction of Ca++-transport ATPase as compared to the basal Ca++-transport ATPase (determined in the absence of calmodulin) and can be antagonized by increasing concentrations of calmodulin in an apparently competitive manner. With respect to other ATPases the action of R 24571 is relatively specific for red blood cell Ca++-transport ATPase. Mg++-ATPase requires a 40 times higher concentration for halfmaximal inhibition (IC50 = 20 μM) whereas (Na+ + K+)-transport ATPase is only slightly affected in the investigated concentration range (≤20 μM).  相似文献   

14.
The effect of morphine on ATPase of synaptic plasma membranes (SPM) and synaptic vesicles isolated from the mouse brain was studied. The activity of synaptic vesicle Mg++-dependent ATPase from mice rendered morphine tolerant and dependent by pellet implantation was 40% higher than that from placebo implanted mice. However, the activities of Mg++-dependent ATPase and Na+, K+ activated ATPase of SPM of tolerant and nontolerant mice were not significantly different. The activity of synaptic vesicular Mg++-dependet ATPase was dependent on the concentration of Mg++ but not of Ca++; maximum activity was obtained with 2 mM MgCl2. On the other hand, Mg++-dependent ATPase activity of SPM was dependent on both Mg++ and Ca++, activity being maximum using 2 mM MgCl2 and 10?5 M CaCl2. It is suggested that this stimulation of ATPase activity may alter synaptic transmission and may thus be involved in some aspects of morphine tolerance and dependence.  相似文献   

15.
In order to gain some information regarding Ca2+-dependent ATPase, the enzyme was purified from cardiac sarcolemma and its properties were compared with Ca2+-ATPase activity of myosin purified from rat heart. Both Ca2+-dependent ATPase and myosin ATPase were stimulated by Ca2+ but the maximal activation of Ca2+-dependent ATPase required 4 mM Ca2+ whereas that of myosin ATPase required 10 mM Ca2+. These ATPases were also activated by other divalent cations in the order of Ca2+ > Mn2+ > Sr2+ > Br2+ > Mg2+; however, there was a marked difference in the pattern of their activation by these cations. Unlike the myosin ATPase, the ATP hydrolysis by Ca2+-dependent ATPase was not activated by actin. The pH optima of Ca2+-dependent ATPase and myosin ATPase were 9.5 and 6.5 respectively. Na+ markedly inhibited Ca2+-dependent ATPase but had no effect on the myosin ATPase activity. N-ethylmaleimide inhibited Ca2+-dependent ATPase more than myosin ATPase whereas the inhibitory effect of vanadate was more on myosin ATPase than Ca2+-dependent ATPase. Both Ca2+-dependent ATPase and myosin ATPase were stimulated by K-EDTA and NH4-EDTA. When myofibrils were treated with trypsin and passed through columns similar to those used for purifying Ca2+-ATPase from sarcolemma, an enzyme with ATPase activity was obtained. This myofibrillar ATPase was maximally activated at 3–4 mM Ca2+ and 3 to 4 mM ATP like sarcolemmal Ca2+-dependent ATPase. K+ stimulated both ATPase activities in the absence of Ca2+ and inhibited in the presence of Ca2+. Both enzymes were inhibited by Na+, Mg2+, La3+, and azide similarly. However, Ca2+ ATPase from myofibrils showed three peptide bands in SDS polyacrylamide gel electrophoresis whereas Ca2+ ATPase from sarcolemma contained only two bands. Sarcolemmal Ca2+-ATPase had two affinity sites for ATP (0.012 mM and 0.23 mM) while myofibrillar Ca2+-ATPase had only one affinity site (0.34 mM). Myofibrillar Ca2+-ATPase was more sensitive to maleic anhydride and iodoacetamide than sarcolemmal Ca2+-ATPase. These observations suggest that Ca2+-dependent ATPase may be a myosin like protein in the heart sarcolemma and is unlikely to be a tryptic fragment of myosin present in the myofibrils.  相似文献   

16.
The incompleteness of electrolyte deposition during hypokinesia (HK; diminished movement) is the defining factor of electrolyte metabolic changes, yet the effect of prolonged HK upon electrolyte deposition is poorly understood. The objective of this investigation was to determine the effect of muscle calcium (Ca++) changes upon Ca++ losses during prolonged HK. Studies were conducted on 20 physically healthy male volunteers during a pre-experimental period of 30 days and an experimental period of 364 days. Subjects were equally divided in two groups: control subjects (CS) and experimental subjects (ES). The CS group ran average distances of 9.2?±?1.2 km day?l, and the ES group walked average distances of 2.3?±?0.2 km day?l. Muscle Ca++ contents, plasma Ca++ concentrations, and Ca++ losses in urine and feces were measured in the experimental and control groups of subjects. The muscle Ca++ contents decreased (p?<?0.05), and plasma Ca++ levels and Ca++ losses in the urine and feces increased (p?<?0.05) in the ES group compared with their pre-experimental levels and the values in their respective CS group. Muscle Ca++ contents and plasma Ca++ levels and urinary and fecal Ca++ losses did not change in the CS group compared to their pre-experimental levels. It is concluded that prolonged HK increase plasma Ca++ concentrations and Ca++ losses in Ca++ deficient muscle indicating decreased Ca++ deposition.  相似文献   

17.
The ability of CASF (Ca2+-activated sarcoplasmic factor), a proteolytic enzyme that has recently been isolated from muscle and that removes Z-disks from myofibrils, to remove soluble material from myofibrils and to alter the Mg2+-modified ATPase activity of myofibrils was studied. A new assay involving determination of soluble material released from myofibrils was developed to measure CASF activity quantitatively. Optimum pH and optimum Ca2+ concentration for CASF activity as determined by this new assay were 7.0 and 1 mm, respectively. Proteolytic activity of CASF on myofibrils was prevented completely by excess EDTA. CASF treatment of myofibrils at CASF to myofibril ratios of 1: 20 by weight for 30 min caused a 20~25% increase in Mg2+-modified ATPase activity. CASF treatment for 360 min under these same conditions caused a decrease in Mg2+-modified ATPase activity at the highest ionic strengths used in this study (46.7 and 66.7 mm KCI). The increase in Mg2+-modified ATPase activity may originate from CASF degradation of troponin, whereas the decrease in Mg2+- modified ATPase activity may be due to CASF destruction or release of α-actinin from myofibrils. Digestion of myofibrils by CASF causes in the myofibrils (degradation of Z-lines, increase of ATPase activity) that are very similar to the changes caused by postmortem storage.  相似文献   

18.
The Accumulation of Calcium Ions by Sarcotubular Vesicles   总被引:5,自引:1,他引:4       下载免费PDF全文
The accumulation of Ca++ by microsomal (sarcotubular) preparations of rabbit skeletal muscle in the presence of oxalate, and the concurrent splitting of nucleoside triphosphate, displayed moderate nucleotide specificity in the sequence ATP > GTP, CTP, ITP > UTP > (ADP) > ATetraP for the former, ATP > (ADP) > ITP > GTP > CTP > UTP > ATetraP for the latter process. The "calcium pump" was weakly inhibited by caffeine, and was inhibited together with the ATPase by pyridoxalphosphate. Carnosine had no effect as such nor in the presence of pyridoxalphosphate except at high concentration; thiourea and p-chloromercuribenzoate were inhibiting while iodoacetate was inactive. Ca++ accumulation and ATPase were inhibited by atabrine (not tested on ATPase), dinitrophenol, and amytal. High concentrations of oligomycin and rutamycin inhibited Ca++ uptake while slightly stimulating ATPase. Antimycin A stimulated the Ca++ uptake. These results are discussed in the light of their possible relation to partial reactions in oxidative phosphorylation. The Ca++ uptake and relaxing factor activities did not behave identically throughout. This is in part ascribed to changes in reactivity of actomyosin in the relaxation test, in part to the participation of relaxing substances other than the calcium pump.  相似文献   

19.
The leak fluxes of Na+, K+, Mg++ and Ca++ in mouse thymocytes are increased by Concavaline A (Con A), within minutes after mitogen addition. The intracellular Mg++ and K+ concentrations were decreased and the Na+ and Ca++ contents were increased by Con A in mouse thymocytes and spleen cells.  相似文献   

20.
The relationship between active extrusion of Ca++ from red cell ghosts and active uptake of Ca++ by isolated red cell membrane fragments was investigated by studying the Ca++ uptake activities of inside-out and right side-out vesicles. Preparations A and B which had mainly inside-out and right side-out vesicles, respectively, were isolated from red cell membranes and were compared with respect to Ca++ adenosine triphosphatase (ATPase) and ATP-dependent Ca++ uptake activities. Preparation A had nearly eight times more inside-out vesicles and took up eight times more 45Ca in the presence of ATP compared to preparation B. Separation of the 45Ca-labeled membrane vesicles by density gradient centrifugation showed that the 45Ca label was localized to the inside-out vesicle fraction. In addition, the 45Ca taken up in the presence of ATP was lost during a subsequent incubation in the absence of ATP. The rate of 45Ca loss was not influenced by the presence of EGTA, but was slowed in the presence of La+8 (0.1 mM) in the efflux medium. The results presented here support the thesis that the active uptake of Ca++ by red cell membrane fragments is due to the active transport of Ca++ into inside-out vesicles.  相似文献   

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