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    KCI등재 SCOPUS SCIE

    The role of calpain in skeletal muscle

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    https://www.riss.kr/link?id=A104261730

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Calpains are a class of proteins that belong to the calcium-dependent, non-lysosomal cysteine proteases. There are three major types of calpains expressed in the skeletal muscle, namely, μ-calpain, m-calpain, and calpain 3, which show proteolytic activities. Skeletal muscle fibers possess all three calpains, and they are Ca2+-dependent proteases. The functional role of calpains was found to be associated with apoptosis and myogenesis. However, calpain 3 is likely to be involved in sarcomeric remodeling. A defect in the expression of calpain 3 leads to limb-girdle muscular dystrophy type 2A. Calpain 3 is found in skeletal muscle fibers at the N2A line of the large elastic protein, titin. A substantial proportion of calpain 3 is activated 24 h following a single bout of eccentric exercise. In vitro studies indicated that calpain 3 can be activated 2-4 fold higher than normal resting cytoplasmic [Ca2+]. Characterization of the calpain system in the developing muscle is essential to explain which calpain isoforms are present and whether both μ-calpain and m-calpain exist in differentiating myoblasts. Information from such studies is needed to clarify the role of the calpain system in skeletal muscle growth. It has been demonstrated that the activation of ubiquitous calpains and calpain 3 in skeletal muscle is very well regulated in the presence of huge and rapid changes in intracellular [Ca2+].
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    Calpains are a class of proteins that belong to the calcium-dependent, non-lysosomal cysteine proteases. There are three major types of calpains expressed in the skeletal muscle, namely, μ-calpain, m-calpain, and calpain 3, which show proteolytic act...

    Calpains are a class of proteins that belong to the calcium-dependent, non-lysosomal cysteine proteases. There are three major types of calpains expressed in the skeletal muscle, namely, μ-calpain, m-calpain, and calpain 3, which show proteolytic activities. Skeletal muscle fibers possess all three calpains, and they are Ca2+-dependent proteases. The functional role of calpains was found to be associated with apoptosis and myogenesis. However, calpain 3 is likely to be involved in sarcomeric remodeling. A defect in the expression of calpain 3 leads to limb-girdle muscular dystrophy type 2A. Calpain 3 is found in skeletal muscle fibers at the N2A line of the large elastic protein, titin. A substantial proportion of calpain 3 is activated 24 h following a single bout of eccentric exercise. In vitro studies indicated that calpain 3 can be activated 2-4 fold higher than normal resting cytoplasmic [Ca2+]. Characterization of the calpain system in the developing muscle is essential to explain which calpain isoforms are present and whether both μ-calpain and m-calpain exist in differentiating myoblasts. Information from such studies is needed to clarify the role of the calpain system in skeletal muscle growth. It has been demonstrated that the activation of ubiquitous calpains and calpain 3 in skeletal muscle is very well regulated in the presence of huge and rapid changes in intracellular [Ca2+].

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    참고문헌 (Reference)

    1 Glass JD, "Very early activation of m-calpain in peripheral nerve during Wallerian degeneration" 196 (196): 9-20, 2002

    2 Isabelle CF, "Utrophin is a calpain substrate in muscle cells" 33 : 753-759, 2006

    3 Chin ER, "The role of elevations in intracellular [Ca2+] in the development of low frequency fatigue in mouse single muscle fibres" 491 : 813-824, 1996

    4 Barnoy S, "The role of calpastatin(the specific inhibitor)in myoblast differentiation and fusion" 220 : 933-938, 1996

    5 Cong JY, "The role of autolysis in activity of the Ca2+ -dependent proteinases(m-calpain and m-calpain)" 264 : 10096-10103, 1989

    6 Higgins JA, "The relation between dietary restriction or clenbuterol(a selective b2 agonist)treatment on skeletal muscle growth and calpain proteinase(EC3. 4. 22. 17)and calpastatin activities in lambs" 60 : 645-652, 1988

    7 Rey MA, "The protease core of the musclespecific calpain, p94, undergoes Ca2+ -dependent intramolecular autolysis" 532 : 401-406, 2002

    8 Goll DE, "The calpain system" 83 : 731-801, 2003

    9 Ohtsuka H, "The N-terminal Z-repeat 5 of connectin/titin binds to the C-terminal end of a-actinin" 235 : 1-3, 1997

    10 Tan FC, "Some properties of the millimolar Ca2+ -dependent proteinase from bovine cardiac muscle" 20 : 983-997, 1988

    1 Glass JD, "Very early activation of m-calpain in peripheral nerve during Wallerian degeneration" 196 (196): 9-20, 2002

    2 Isabelle CF, "Utrophin is a calpain substrate in muscle cells" 33 : 753-759, 2006

    3 Chin ER, "The role of elevations in intracellular [Ca2+] in the development of low frequency fatigue in mouse single muscle fibres" 491 : 813-824, 1996

    4 Barnoy S, "The role of calpastatin(the specific inhibitor)in myoblast differentiation and fusion" 220 : 933-938, 1996

    5 Cong JY, "The role of autolysis in activity of the Ca2+ -dependent proteinases(m-calpain and m-calpain)" 264 : 10096-10103, 1989

    6 Higgins JA, "The relation between dietary restriction or clenbuterol(a selective b2 agonist)treatment on skeletal muscle growth and calpain proteinase(EC3. 4. 22. 17)and calpastatin activities in lambs" 60 : 645-652, 1988

    7 Rey MA, "The protease core of the musclespecific calpain, p94, undergoes Ca2+ -dependent intramolecular autolysis" 532 : 401-406, 2002

    8 Goll DE, "The calpain system" 83 : 731-801, 2003

    9 Ohtsuka H, "The N-terminal Z-repeat 5 of connectin/titin binds to the C-terminal end of a-actinin" 235 : 1-3, 1997

    10 Tan FC, "Some properties of the millimolar Ca2+ -dependent proteinase from bovine cardiac muscle" 20 : 983-997, 1988

    11 Goll DE, "Skeletal muscle proteases and protein turnover, In Animal growth regulation" Plenum Publishing Corp 141-181, 1989

    12 Haravuori H, "Secondary calpain3 deficiency in 2q-linked muscular dystrophy : titin is the candidate gene" 56 : 869-877, 2001

    13 Lynch GS, "Quantitative measurement of resting skeletal muscle [Ca2+]i following acute and long-term downhill running exercise in mice" 22 : 373-383, 1997

    14 Dayton WR, "Proteases and biological control, In Some properties of a Ca2 + -activated protease that may be involved in myofibrillar protein turnover" Cold Spring Harbor Laboratory 551-557, 1975

    15 Ono Y, "Possible regulation of the conventional calpain system by skeletal muscle-specific calpain, p94/calpain 3" 279 : 2761-2771, 2004

    16 Ruegg UT, "Pharmacological control of cellular calcium handling in dystrophic skeletal muscle" 12 (12): 155-161, 2002

    17 Baghdiguian S, "Pathophysiology of limb girdle muscular dystrophy type 2A : hypothesis and new insights into the IkBa/NF-kB survival pathway in skeletal muscle" 79 : 254-261, 2001

    18 Sorimachi H, "Muscle-specific calpain, p94, is degraded by autolysis immediately after translation, resulting in disappearance from muscle" 268 : 10593-10605, 1993

    19 Hayashi C, "Multiple molecular interactions implicate the connectin/ titin N2A region as a modulating scaffold for p94/calpain 3 activity in skeletal muscle" 283 : 14801-14814, 2008

    20 Yang YT, "Multiple actions of the b-adrenergic agonists on skeletal muscle and adipose tissue" 261 : 1-10, 1989

    21 Verburg E, "Involvement of calpains in Ca2+ -induced disruption of excitation-contraction coupling in mammalian skeletal muscle fibers" 296 : 1115-1122, 2009

    22 Murachi T, "Intracellular regulatory system involving calpain and calpastatin" 18 : 263-294,

    23 Wendt A, "Interaction of calpastatin with calpain : A review" 385 : 465-472, 2004

    24 Kretchmar DH, "In vivo effect of a b-adrenergic agonist on activityof calcium-dependent proteinases, their specific inhibitor, cathepsins B and H in skeletal muscle" 275 : 228-235, 1989

    25 Gailly P, "In situ measurements of calpain activity in isolated muscle fibres from normal and dystrophin-lacking mdx mice" 582 : 1261-1275, 2007

    26 Solomon V, "Importance of the ATPubiquitin-proteasome pathway in the degradation of soluble and myofibrilar proteins in rabbit muscle extracts" 271 : 26690-26697, 1996

    27 Fougerousse F, "Humanmouse differences in the embryonic expression patterns of developmental control genes and disease genes" 27 : 616-623, 2003

    28 Goll DE, "Historical background and current status of the Ca2+ dependent protease system, In Intracellular calciumdependent proteolysis" CRC 3-24, 1990

    29 Ohno S, "Evolutionary origin of a calciumdependent protease by fusion of genes for a thiol protease and a calcium-binding protein" 312 (312): 566-570, 1984

    30 Lowell BB, "Evidence that lysosomes are not involved in the degradation of myofibrillar proteins in rat skeletal muscle" 234 : 237-240, 1986

    31 Clark WA, "Evidence for posttranslational kinetic compartmentation of protein turnover pools in isolated adult cardiac myocytes" 268 : 20243-20251, 1993

    32 Forsberg NE, "Effects of cimaterol on rabbit growth and myofibrillarprotein degradation and on calcium-dependentproteinase and calpastatin activities in skeletal muscle" 67 : 3313-3321, 1989

    33 Dahlmannn B, "Effect of starvation or treatment with corticosterone on the amount of easily releasable myofilaments in rat skeletal muscle" 234 : 659-664, 1986

    34 Koohmaraie M, "Effect of calcium chloride infusion on the tenderness of lambs fed a b-adrenergic agonist" 69 : 1760-1772, 1991

    35 Kapprell HP, "Effect of Ca2+ on binding of the calpains to calpastatin" 264 : 17888-17896, 2006

    36 Reville WJ, "Easily releasable myofilaments in postmortem bovine muscle" 14 : 431-444, 1994

    37 Van der Westhuyzen DR, "Easily releasable myofilaments from skeletal and cardiac muscle maintained in vitro. Role in myofibrillar assembly and turnover" 256 : 11791-11797, 1981

    38 Purintrapiban J, "Degradation of sarcomeric and cytoskeletal proteins in cultured skeletal muscle cells" 136 (136): 393-401, 2003

    39 Koohmaraie M, "Contribution of postmortem muscle biochemistry to the delivery of consistent meat quality with particular focus on the calpain system" 74 : 34-43, 2006

    40 Cockett NF, "Chromosomal localization of the callipyge gene in sheep(Ovis aries using bovine DNA markers" 91 : 3019-3023, 1994

    41 Boehm ML, "Changes in the calpains and calpastatin during postmortem storage of bovine muscle" 76 : 2415-2434, 1998

    42 Otani K, "Calpain system regulates muscle mass and glucose transporter GLUT4 turnover" 279 : 20915-20920, 2004

    43 Mellgren RL, "Calpain is required for the rapid, calcium-dependent repair of wounded plasma membrane" 282 : 2567-2575, 2007

    44 Barnoy S, "Calpain and calpastatin in myoblast differentiation and fusion effects of inhibitors" 1358 : 181-188, 1997

    45 Saido TC, "Calpain : new perspectives in molecular diversity and physiologicalpathological involvement" 8 : 814-822, 1994

    46 Beckmann JS, "Calpain 3, the ‘‘gatekeeper’’ of proper sarcomere assembly, turnover and maintenance" 18 : 913-921, 2008

    47 Cottin P, "Ca2+ -dependent proteinases(calpains)and muscle cell differentiation" 1223 : 170-178, 1994

    48 Koohmaraie M, "A muscle hypertrophy condition in lamb(callipyge) : characterization of effects on muscle growth and meat quality traits" 73 : 3596-3607, 1995

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    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
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    2010-02-02 학회명변경 한글명 : 한국동물학회 -> 한국통합생물학회
    영문명 : 미등록 -> The Korean Society for Integrative Biology
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    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-02-26 학술지명변경 한글명 : Integrative Biosciences -> Animal Cells and Systems
    외국어명 : Integrative Biosciences -> Animal Cells and Systems
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    2006-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2005-04-15 학술지등록 한글명 : Integrative Biosciences
    외국어명 : Integrative Biosciences
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    2004-01-01 등재 등재학술지 유지 (등재유지) KCI등재
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    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.45 0.24 0.33
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.28 0.26 0.395 0.04
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