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    Effects of exercise on myokine gene expression in horse skeletal muscles

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    https://www.riss.kr/link?id=A106052335

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    Objective: To examine the regulatory effects of exercise on myokine expression in horse skeletal muscle cells, we compared the expression of several myokine genes (interleukin 6 [IL-6], IL-8, chemokine [C-X-C motif] ligand 2 [CXCL2], and chemokine [C-C motif] ligand 4 [CCL4]) after a single bout of exercise in horses. Furthermore, to establish in vitro systems for the validation of exercise effects, we cultured horse skeletal muscle cells and confirmed the expression of these genes after treatment with hydrogen peroxide.
    Methods: The mRNA expression of IL-6, IL-8, CXCL2, and CCL4 after exercise in skeletal muscle tissue was confirmed using quantitative-reverse transcriptase polymerase chain reactions (qRT-PCR). We then extracted horse muscle cells from the skeletal muscle tissue of a neonatal Thoroughbred. Myokine expression after hydrogen peroxide treatments was confirmed using qRT-PCR in horse skeletal muscle cells.
    Results: IL-6, IL-8, CXCL2, and CCL4 expression in Thoroughbred and Jeju horse skeletal muscles significantly increased after exercise. We stably maintained horse skeletal muscle cells in culture and confirmed the expression of the myogenic marker, myoblast determination protein (MyoD). Moreover, myokine expression was validated using hydrogen peroxide (H2O2)-treated horse skeletal muscle cells. The patterns of myokine expression in muscle cells were found to be similar to those observed in skeletal muscle tissue.
    Conclusion: We confirmed that several myokines involved in inflammation were induced by exercise in horse skeletal muscle tissue. In addition, we successfully cultured horse skeletal muscle cells and established an in vitro system to validate associated gene expression and function. This study will provide a valuable system for studying the function of exercise-related genes in the future.
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    Objective: To examine the regulatory effects of exercise on myokine expression in horse skeletal muscle cells, we compared the expression of several myokine genes (interleukin 6 [IL-6], IL-8, chemokine [C-X-C motif] ligand 2 [CXCL2], and chemokine [C-...

    Objective: To examine the regulatory effects of exercise on myokine expression in horse skeletal muscle cells, we compared the expression of several myokine genes (interleukin 6 [IL-6], IL-8, chemokine [C-X-C motif] ligand 2 [CXCL2], and chemokine [C-C motif] ligand 4 [CCL4]) after a single bout of exercise in horses. Furthermore, to establish in vitro systems for the validation of exercise effects, we cultured horse skeletal muscle cells and confirmed the expression of these genes after treatment with hydrogen peroxide.
    Methods: The mRNA expression of IL-6, IL-8, CXCL2, and CCL4 after exercise in skeletal muscle tissue was confirmed using quantitative-reverse transcriptase polymerase chain reactions (qRT-PCR). We then extracted horse muscle cells from the skeletal muscle tissue of a neonatal Thoroughbred. Myokine expression after hydrogen peroxide treatments was confirmed using qRT-PCR in horse skeletal muscle cells.
    Results: IL-6, IL-8, CXCL2, and CCL4 expression in Thoroughbred and Jeju horse skeletal muscles significantly increased after exercise. We stably maintained horse skeletal muscle cells in culture and confirmed the expression of the myogenic marker, myoblast determination protein (MyoD). Moreover, myokine expression was validated using hydrogen peroxide (H2O2)-treated horse skeletal muscle cells. The patterns of myokine expression in muscle cells were found to be similar to those observed in skeletal muscle tissue.
    Conclusion: We confirmed that several myokines involved in inflammation were induced by exercise in horse skeletal muscle tissue. In addition, we successfully cultured horse skeletal muscle cells and established an in vitro system to validate associated gene expression and function. This study will provide a valuable system for studying the function of exercise-related genes in the future.

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    참고문헌 (Reference)

    1 Park KD, "Whole transcriptome analyses of six thoroughbred horses before and after exercise using RNA-Seq" 13 : 473-, 2012

    2 Steensberg A, "The role of IL-6 in exercise-induced immune changes and metabolism" 9 : 40-47, 2003

    3 Pedersen BK, "The metabolic role of IL-6 produced during exercise: is IL-6 an exercise factor?" 63 : 263-267, 2004

    4 Peake JM, "The effects of cold water immersion and active recovery on inflammation and cell stress responses in human skeletal muscle after resistance exercise" 595 : 695-711, 2017

    5 Pedersen BK, "Role of myokines in exercise and metabolism" 103 : 1093-1098, 2007

    6 Warren GL, "Role of CC chemokines in skeletal muscle functional restoration after injury" 286 : C1031-C1036, 2004

    7 Niess AM, "Response and adaptation of skeletal muscle to exercise-the role of reactive oxygen species" 12 : 4826-4838, 2007

    8 Kim H, "Peeling back the evolutionary layers of molecular mechanisms responsive to exercise-stress in the skeletal muscle of the racing horse" 20 : 287-298, 2013

    9 Seale P, "Pax7 is required for the specification of myogenic satellite cells" 102 : 777-786, 2000

    10 Jonsdottir I, "Muscle contractions induces interleukin-6 mRNA production in rat skeletal muscles" 528 : 157-163, 2000

    1 Park KD, "Whole transcriptome analyses of six thoroughbred horses before and after exercise using RNA-Seq" 13 : 473-, 2012

    2 Steensberg A, "The role of IL-6 in exercise-induced immune changes and metabolism" 9 : 40-47, 2003

    3 Pedersen BK, "The metabolic role of IL-6 produced during exercise: is IL-6 an exercise factor?" 63 : 263-267, 2004

    4 Peake JM, "The effects of cold water immersion and active recovery on inflammation and cell stress responses in human skeletal muscle after resistance exercise" 595 : 695-711, 2017

    5 Pedersen BK, "Role of myokines in exercise and metabolism" 103 : 1093-1098, 2007

    6 Warren GL, "Role of CC chemokines in skeletal muscle functional restoration after injury" 286 : C1031-C1036, 2004

    7 Niess AM, "Response and adaptation of skeletal muscle to exercise-the role of reactive oxygen species" 12 : 4826-4838, 2007

    8 Kim H, "Peeling back the evolutionary layers of molecular mechanisms responsive to exercise-stress in the skeletal muscle of the racing horse" 20 : 287-298, 2013

    9 Seale P, "Pax7 is required for the specification of myogenic satellite cells" 102 : 777-786, 2000

    10 Jonsdottir I, "Muscle contractions induces interleukin-6 mRNA production in rat skeletal muscles" 528 : 157-163, 2000

    11 박정웅, "Molecular analysis of alternative transcripts of equine AXL receptor tyrosine kinase gene" 아세아·태평양축산학회 30 (30): 1471-1477, 2017

    12 조현우, "Molecular Characterization and Expression Analysis of the Peroxisome Proliferator Activated Receptor Delta (PPARδ) Gene before and after Exercise in Horse" 아세아·태평양축산학회 28 (28): 697-702, 2015

    13 Capomaccio S, "Microarray analysis after strenuous exercise in peripheral blood mononuclear cells of endurance horses" 41 : 166-175, 2010

    14 Koch AE, "Interleukin-8 as a macrophage-derived mediator of angiogenesis" 258 : 1798-1801, 1992

    15 Catoire M, "Identification of human exercise-induced myokines using secretome analysis" 46 : 256-267, 2014

    16 Wolsk E, "IL-6 selectively stimulates fat metabolism in human skeletal muscle" 299 : E832-E840, 2010

    17 Pourteymour S, "Global mRNA sequencing of human skeletal muscle : search for novel exercise-regulated myokines" 6 : 352-365, 2017

    18 Akerstrom TC, "Exercise induces interleukin-8 expression in human skeletal muscle" 563 : 507-516, 2005

    19 박정웅, "Exercise induced upregulation of glutamate-cysteine ligase catalytic subunit and glutamate-cysteine ligase modifier subunit gene expression in Thoroughbred horses" 아세아·태평양축산학회 30 (30): 728-735, 2017

    20 Croisier JL, "Effects of training on exercise-induced muscle damage and interleukin 6 production" 22 : 208-212, 1999

    21 Beavers KM, "Effect of exercise training on chronic inflammation" 411 : 785-793, 2010

    22 Poole DC, "Current concepts of oxygen transport during exercise" 1 : 5-22, 2004

    23 Ostrowski K, "Chemokines are elevated in plasma after strenuous exercise in humans" 84 : 244-245, 2001

    24 Zlotnik A, "Chemokines : a new classification system and their role in immunity" 12 : 121-127, 2000

    25 Peake J, "Characterization of inflammatory responses to eccentric exercise in humans" 11 : 64-85, 2005

    26 Yahiaoui L, "CC family chemokines directly regulate myoblast responses to skeletal muscle injury" 586 : 3991-4004, 2008

    27 Bystry RS, "B cells and professional APCs recruit regulatory T cells via CCL4" 2 : 1126-1132, 2001

    28 Eivers SS, "Alterations in oxidative gene expression in equine skeletal muscle following exercise and training" 40 : 83-93, 2010

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    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2021-01-01 학술지명변경 한글명 : ASIAN-AUSTRALASIAN JOURNAL OF ANIMAL SCIENCES -> Animal Bioscience
    외국어명 : ASIAN-AUSTRALASIAN JOURNAL OF ANIMAL SCIENCES -> Animal Bioscience
    KCI등재
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2013-10-01 등재 SCI 등재 (등재유지) KCI등재
    2013-10-01 등재 SCOPUS 등재 (등재유지) KCI등재
    2012-01-01 등재 등재후보학술지 유지 (기타) KCI등재후보
    2011-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2009-12-29 학회명변경 한글명 : 아세아ㆍ태평양축산학회 -> 아세아·태평양축산학회 KCI등재후보
    2005-09-28 학술지명변경 한글명 : 아세아태평양축산학회지 -> ASIAN-AUSTRALASIAN JOURNAL OF ANIMAL SCIENCES KCI등재후보
    2003-01-01 등재 SCIE 등재 (신규평가) KCI등재후보
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    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 1.03 0.23 0.76
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.6 0.5 0.367 0.04
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