• Title/Summary/Keyword: sarcoplasmic reticulum

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Review of Sarcoplasmic Reticulum Ca$^{2+}$ Releasing Mechanisms in Skeletal Muscle Contraction (골격근 수축에 있어서 근장그물로부터의 Ca$^{2+}$ 유리 기전에 대한 고찰)

  • Koo, Hyun-Mo;Kim, Jin-Sang
    • The Journal of Korean Physical Therapy
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    • v.13 no.1
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    • pp.237-243
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    • 2001
  • Skeletal muscle cells are activated by ${\alpha}$-motorneurons which release acetylcholine at the neuromuscular junction. This results in a local depolarization of surface membrane which triggers an action potential. The action potential propagates along the surface membrane and also into the T-tubule system. In the triads T-tubules are in close connection with the terminal cisternae of the sarcoplasmic reticulum(SR). The action potential activaies T-tubule voltage sensors(DHP receptors). which activates SR Ca$^{2+}$ release channels(ryanodinc receptors). Ca$^{2+}$ have a key role in skeletal muscle in that an increase of free myoplasmic Ca$^{2+}$ concentration. The process of coupling chemical and electrical signals at the cell surface to the intracellular release of Ca$^{2+}$and ultimate contraction of muscle fibers is termed excitation-contraction coupling(ECC). Coupling of cel1 surface signals to intracellular Ca$^{2+}$ release proceeds by several mechanisms in skeletal muscle cells. This review focus on sarcopiasmic reticulum(SR) Ca$^{2+}$ releasing mechanisms from sarcoplasmic reticulum in the skeletal muscle. The mechanisms include DCCR, CICR, and HCR.

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The Effects of Caffeine on the ATPase Activity and the Calcium Uptake of the Fragmented Sarcoplasmic Reticulum of Rabbit Skeletal Muscle (筋小胞體의 ATPase 活性과 칼슘吸收能에 미치는 Caffeine의 영향)

  • Ha, Doo-Bong
    • The Korean Journal of Zoology
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    • v.15 no.4
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    • pp.163-182
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    • 1972
  • The effects of caffeine on the ATPase activity and Ca uptake of the fragmented sarcoplasmic reticulum isolated from rabbit skeletal muscle were studied. The ATPase activity of the heavy fraction (2,000-8,000xG) was stimulated by caffeine while that of other lighter fractions was not. It is suggested that the enhancement of the ATPase by the caffeine treatment. The Ca uptake of the heavy and middle (10,000-20,000xG) fractions was inhibited by caffeine when measured at the medium Ca concentration higher than 200 nmoles/mg protein, while only that of the heavy fraction was inhibited when measured at the Ca concentration below 200 nmoles/mg protein. Experiments with dicumarol suggested that caffeine inhibits the Ca uptake of the mitochondria as well as that of the sarcoplasmic reticulum and that the inhibition of the Ca uptake by caffeine in the low Ca concentration in the heavy fraction is due to the inhibition of the mitochondrial Ca uptake by caffeine. It appeared highly probable that the potentiation of muscle contraction caused by caffeine is solely due to the inhibition of the Ca uptake by and to the release of the accumulated Ca from the sarcoplasmic reticulum.

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Studies on the Effects of cAMP on the ATPase Activity and on the Calcium Uptake of the Sarcoplasmic Reticulum (근 소포체의 ATPase 활성과 Ca 능동수송에 미치는 cAMP의 영향)

  • 河斗鳳;朴姬淳;尹炳宇;金漢都
    • The Korean Journal of Zoology
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    • v.18 no.4
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    • pp.221-229
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    • 1975
  • The effect of adenosine 3', 5'-cyclic monophosphate on the ATPase activity and on the active transport of Ca of the sarcoplasmic reticulum fragments of the rabbit skeletal muscle was studied. Cyclic AMP (cAMP) had no effect on the ATPase activity of the fragments (8,000 ~ 20,000 $\times$ G and 20,000 ~ 36,000 $\times$ G fractions). $N^6$, O^{2'} -Dibutyryl cAMP (DBcAMP) had either no effect on the activity. On the other hand, theophylline (1 mM) increased the activity by about 20%. The active uptake of Ca by the sarcoplasmic reticulum fragments was inhibited by the presence of 1$\times$$10^{-6}$ ~ 1 $\times$ $10^{-3}$M of cAMP. The presence of DBcAMP or theophylline also inhibited the uptake. It is, therefore, concluded that the Ca uptake of the sarcoplasmic reticulum seems to be controlled by cAMP.

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Inhibitory Effect of $Mg^{2+}$ on the Release of $Ca^{2+}$ from Ryanodine Receptor of the Sarcoplasmic Reticulum in the Skeletal Muscle (골격근 망상체 $Ca^{2+}$유리 Channel[Raynodine receptor]의 $Mg^{2+}$에 의한 유리 억제)

  • 이철주
    • Journal of Chest Surgery
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    • v.25 no.4
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    • pp.347-355
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    • 1992
  • The precise mechanism of the Excitation-Contraction Coupling is still uncertain. But the concept that Ca2+ induced Ca2+ release [CICR] from the Ryanodine receptor in the sarcoplasmic reticulum [foot structure] may play a major role in E-C coupling has been widely accepted since 1970`s. It is believed that increased cytosolic Ca2+ followed by CICR is main contributor for E-C coupling of striated muscle. Resulting phenomena of ischemic /post-reperfusion myocyte is increased cytosolic Ca2+, even to the absence of Ca2+ in reperfusate. So intracellular inhibitor to CICR might prevent the ischemic and reperfusion damage of myocardial cells. The relatively purified foot protein, especially heavy sarcoplasmic reticulum rich, of the skeletal muscle was incorporated into the black lipid bilayer [Phosphatidyl ethanolamine: Phosphatidyl serine=l: 1]. Under the steady state of membrane potential [+20 mV], ionic current through Ryanodine receptor was measured with Cs+ as charge carrier. In the cis chamber [Cytoplasmic side], Mg2+ strongly inhibited CICR of Ryanodine receptor[Kd=6.2 nM]. In conclusion, naturally existing intracellular free Mg2+ can inhibit CICR from intracellular Ca2+ reservior [heavy SR]. So post-ischemic or post-reperfusing myocardium could be preserved using additional free Mg2+ in cardioplegic solution or reperfusate, otherwise the optimal concentration is undetermined.

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Reconstitution of Sarcoplasmic Reticulum-$Ca^{2+}$ Release Channels into Phospholipid Vesicles : Investigation of Conditions for Functional Reconstitution

  • Yang, In-Sik;Lee, Hee-Bong
    • BMB Reports
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    • v.28 no.2
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    • pp.129-137
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    • 1995
  • The ryanodine-receptor $Ca^{2+}$ release channel protein in the sarcoplasmic reticulum membrane of rabbit skeletal muscle plays an important role in muscle exitation-contraction (E-C) coupling. Various types of detergents were tested, including Chaps, cholate, octylglucoside, Zwittergents, Mega-9, Lubrol PX, and Triton X-100 for solubilization of this protein. Among these, Chaps and Triton X-100 were found to optionally solubilize the channel complex. Optimum conditions for this solubilization were pH 7.4 with a salt concentration of 1 M. The addition of phospholipid in the solubilization step helped in stabilizing the protein. The purification of the receptor was performed using sucrose density gradient centrifugation. Various methods [dilution, freeze-thaw, adsorption (Biobeads), and dialysis] were investigated to incorporate the Chaps-solubilized and purified $Ca^{2+}$ release channel protein into liposomes made from different types of phospholipids. Of these, a combined method consisting of a dialysis, freeze-thaw and sonication steps yielded the best results. Reconstituted vesicles produced by this method with 95% phosphatidylcholine (from soybean extract) had good function.

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Characterization of calumenin in mouse heart

  • Sahoo, Sanjaya Kumar;Kim, Do-Han
    • BMB Reports
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    • v.43 no.3
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    • pp.158-163
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    • 2010
  • Calumenin is a multiple EF-hand $Ca^{2+}$-binding protein located in the endo/sarcoplasmic reticulum of mammalian hearts. Calumenin belongs to the CREC family of $Ca^{2+}$-binding proteins having multiple EF-hands. $Ca^{2+}$ homeostasis in the sarcoplasmic reticulum (SR) of mammalian hearts is maintained by RyR2, SERCA2 and other associated SR resident proteins. Evidence suggests that calumenin interacts with RyR2 and SERCA2, and therefore changes in the expression of calumenin could alter $Ca^{2+}$ cycling in mouse heart. In this review, current knowledge of the biochemical and functional roles of calumenin in mouse heart is described.

Identification of novel $Ca^{2+}$ binding proteins in junctional sarcoplasmic reticulum of rabbit skeletal muscle

  • Jung, Dai-Hyun;Mo, Sang-Hyun;Kim, Do-Han
    • Proceedings of the Korean Biophysical Society Conference
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    • 2002.06b
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    • pp.56-56
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    • 2002
  • Muscle contraction and relaxation are regulated by the sarcoplasmic reticulum (SR)-mediated $Ca^{2+}$ release and $Ca^{2+}$ uptake. The SR functions are closely related with the proteins residing in the SR such as ryanodine receptor, $Ca^{2+}$-ATpase, calsequestrin, triadin and junctin. In an effort to further identify important functional SR proteins, experiments of sucrose-density gradient of SR fractionation, concanavalin A treatment, 2D gel electrophoresis, $^{45}$ Ca$^{2+}$ overlay, Strains-all staining, and peptide finger printing (PFP) were carried out.(omitted)d)

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Diabetic Alterations in Cardiac Sarcoplasmic Reticulum $Ca^{2+}$-ATPase and Phospholamban Protein Expression

  • Lee, Hee-Ran;Cho, Yong-Sun;Park, So-Young;Kim, Young-Hoon;Kim, Hae-Won
    • Proceedings of the Korean Biophysical Society Conference
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    • 2001.06a
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    • pp.66-66
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    • 2001
  • Diabetic cardiomyopathy has been suggested to be caused by abnormal intracellular $Ca^{2+}$ homeostasis in the myocardium, which is partly due to a defect in calcium transport by the cardiac sarcoplasmic reticulum (SR). In the present study, the underlying mechanism for this functional derangement was investigated with respect to SR $Ca^{2+}$-ATPase and phospholamban (PLB, the inhibitor of SR $Ca^{2+}$-ATPase).(omitted)d)

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Studies on the ATPase Activity and Calcium Transport of Fragmented Sarcoplasmic Reticulum (膜 ATPase 活性과 Ca 透過性에 관한 硏究)

  • Ha, Doo-Bong
    • The Korean Journal of Zoology
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    • v.20 no.2
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    • pp.101-107
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    • 1977
  • The effects of sodium azide, cAMP, G-strophanthin and dicumarol on the ATP-ase activity and Ca uptake of the fragmented sarcoplasmic reticulum of skeletal muscle were studied and the effects were compared with respect to the enzymatic activity and Ca transport. Sodium azide (0.05 mM) and G-strophanthin (0.25mM) caused no inhibition on either ATPase activity or Ca uptake. cAMP($1\\times10^{-6}\\sim5\\times10^{-4}$) had no effect on ATPase activity while inhibited Ca uptake. Dicumarol (0.05 mM) did not inhibit ATPase activity but caused a decreased Ca uptake of heavier fraction (8,000-12,000xG) of the reticulum fragments.

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Caffeine Indirectly Activates Ca2+-ATPases in the Vesicles of Cardiac Junctional Sarcoplasmic Reticulum

  • Kim, Young-Kee;Cho, Hyoung-Jin;Kim, Hae-Won
    • BMB Reports
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    • v.29 no.1
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    • pp.22-26
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    • 1996
  • Agents that activate or inhibit the $Ca^{2+}$ release channel in cardiac sarcoplasmic reticulum (SR) were tested for their abilities to affect the activity of the SR $Ca^{2+}$-ATPase. Vesicles of junctional SR (heavy SR, HSR) from terminal cisternae were prepared from porcine cardiac muscle by density gradient centrifugation. The steady-state activity of $Ca^{2+}$-ATPases in intact HSR vesicles was/$347{\pm}5\;nmol/min{\cdot}mg$ protein (${\pm}$ SD). When the HSR vesicles were made leaky, the activity was increased to $415{\pm}5\;nmol/min{\cdot}mg$ protein. This increase is probably due to the uncoupling of HSR vesicles. Caffeine (10 mM), an agonist of the SR $Ca^{2+}$ release channel, increased $Ca^{2+}$-ATPase activity in the intact HSR vesicle preparation to $394{\pm}30\;nmol/min{\cdot}mg$ protein. However, caffeine had no significant effect in the leaky vesicle preparation and in the purified $Ca^{2+}$-ATPase preparation. The effect of caffeine on SR $Ca^{2+}$-ATPase was investigated at various concentrations of $Ca^{2+}$. Caffeine increased the pump activity over the whole range of $Ca^{2+}$ concentrations, from $1\;{\mu}M$ to $250\;{\mu}M$, in the intact HSR vesicles. When the SR $Ca^{2+}$-ATPase was inhibited by thapsigargin, no caffeine effect was observed. These results imply that the caffeine effect requires the intact vesicles and that the increase in $Ca^{2+}$-ATPase activity is not due to a direct interaction of caffeine with the enzyme. We propose that the activity of SR $Ca^{2+}$-ATPase is linked indirectly to the activity of the $Ca^{2+}$ release channel (ryanodine receptor) and may depend upon the amount of $Ca^{2+}$ released by the channels.

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