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    KCI등재 SCOPUS SCIE

    Sevoflurane이 상처 치유 과정에 미치는 영향 = Effects of sevoflurane on wound healing process

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    https://www.riss.kr/link?id=A104351124

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Background: Wound healing process is a tissue response to trauma which leads to tissue repair through complex biological stages. Sevoflurane is a widely used inhalation anesthetic for surgery, but there has been no study about its effect on wound healing process. This study was undertaken to evaluate the effect of sevoflurane on wound healing process.
    Methods: Male Sprague-Dawley rats (200−300 g) were used. Two circular full-thickness skin defects of 8 mm in diameter were made on dorsum of rats. After wound formation, the animals were divided into 4 groups: 1, 2, 4, 8 hr exposure to sevoflurane, respectively. Wound sizes and regional blood flow around the wounds were measured. The expression of basic fibroblast growth factor (bFGF), transforming growth factor β1 (TGFβ1), collagen 1, and collagen 3 mRNA were detected 7 days after wound formation by real-time reverse transcriptase-polymerase chain reaction (RT-PCR).
    Results: Wound size was significantly increased in 8 hr group at 3 and 7 days after wound formation. Regional blood flow was significantly decreased in 4 hr and 8 hr groups at 3 days after wound formation. The bFGF, collagen 1 and 3 mRNA expressions were significantly decreased in 8 hr exposure group.
    Conclusions: These results suggest that sevoflurane exposure influences the regional blood flow, wound size, expression of bFGF, and production of collagen 1 and 3 during the wound healing process.
    번역하기

    Background: Wound healing process is a tissue response to trauma which leads to tissue repair through complex biological stages. Sevoflurane is a widely used inhalation anesthetic for surgery, but there has been no study about its effect on wound hea...

    Background: Wound healing process is a tissue response to trauma which leads to tissue repair through complex biological stages. Sevoflurane is a widely used inhalation anesthetic for surgery, but there has been no study about its effect on wound healing process. This study was undertaken to evaluate the effect of sevoflurane on wound healing process.
    Methods: Male Sprague-Dawley rats (200−300 g) were used. Two circular full-thickness skin defects of 8 mm in diameter were made on dorsum of rats. After wound formation, the animals were divided into 4 groups: 1, 2, 4, 8 hr exposure to sevoflurane, respectively. Wound sizes and regional blood flow around the wounds were measured. The expression of basic fibroblast growth factor (bFGF), transforming growth factor β1 (TGFβ1), collagen 1, and collagen 3 mRNA were detected 7 days after wound formation by real-time reverse transcriptase-polymerase chain reaction (RT-PCR).
    Results: Wound size was significantly increased in 8 hr group at 3 and 7 days after wound formation. Regional blood flow was significantly decreased in 4 hr and 8 hr groups at 3 days after wound formation. The bFGF, collagen 1 and 3 mRNA expressions were significantly decreased in 8 hr exposure group.
    Conclusions: These results suggest that sevoflurane exposure influences the regional blood flow, wound size, expression of bFGF, and production of collagen 1 and 3 during the wound healing process.

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Background: Wound healing process is a tissue response to trauma which leads to tissue repair through complex biological stages. Sevoflurane is a widely used inhalation anesthetic for surgery, but there has been no study about its effect on wound healing process. This study was undertaken to evaluate the effect of sevoflurane on wound healing process.
    Methods: Male Sprague-Dawley rats (200−300 g) were used. Two circular full-thickness skin defects of 8 mm in diameter were made on dorsum of rats. After wound formation, the animals were divided into 4 groups: 1, 2, 4, 8 hr exposure to sevoflurane, respectively. Wound sizes and regional blood flow around the wounds were measured. The expression of basic fibroblast growth factor (bFGF), transforming growth factor β1 (TGFβ1), collagen 1, and collagen 3 mRNA were detected 7 days after wound formation by real-time reverse transcriptase-polymerase chain reaction (RT-PCR).
    Results: Wound size was significantly increased in 8 hr group at 3 and 7 days after wound formation. Regional blood flow was significantly decreased in 4 hr and 8 hr groups at 3 days after wound formation. The bFGF, collagen 1 and 3 mRNA expressions were significantly decreased in 8 hr exposure group.
    Conclusions: These results suggest that sevoflurane exposure influences the regional blood flow, wound size, expression of bFGF, and production of collagen 1 and 3 during the wound healing process.
    번역하기

    Background: Wound healing process is a tissue response to trauma which leads to tissue repair through complex biological stages. Sevoflurane is a widely used inhalation anesthetic for surgery, but there has been no study about its effect on wound hea...

    Background: Wound healing process is a tissue response to trauma which leads to tissue repair through complex biological stages. Sevoflurane is a widely used inhalation anesthetic for surgery, but there has been no study about its effect on wound healing process. This study was undertaken to evaluate the effect of sevoflurane on wound healing process.
    Methods: Male Sprague-Dawley rats (200−300 g) were used. Two circular full-thickness skin defects of 8 mm in diameter were made on dorsum of rats. After wound formation, the animals were divided into 4 groups: 1, 2, 4, 8 hr exposure to sevoflurane, respectively. Wound sizes and regional blood flow around the wounds were measured. The expression of basic fibroblast growth factor (bFGF), transforming growth factor β1 (TGFβ1), collagen 1, and collagen 3 mRNA were detected 7 days after wound formation by real-time reverse transcriptase-polymerase chain reaction (RT-PCR).
    Results: Wound size was significantly increased in 8 hr group at 3 and 7 days after wound formation. Regional blood flow was significantly decreased in 4 hr and 8 hr groups at 3 days after wound formation. The bFGF, collagen 1 and 3 mRNA expressions were significantly decreased in 8 hr exposure group.
    Conclusions: These results suggest that sevoflurane exposure influences the regional blood flow, wound size, expression of bFGF, and production of collagen 1 and 3 during the wound healing process.

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    참고문헌 (Reference)

    1 Hakvoort T, "Transforming growth factor-beta(1), -beta (2), -beta(3), basic fibroblast growth factor and vascular endothelial growth factor expression in keratinocytes of burn scars" 11 : 233-239, 2000

    2 Strum DP, "Toxicity of sevoflurane in rats" 66 : 769-773, 1987

    3 Jonsson K, "Tissue oxygenation, anemia, and perfusion in relation to wound healing in surgical patients" 214 : 605-613, 1991

    4 Khutsishvili KR, "The role of the cellular immunity in the process of the operative wound healing" 134 : 10-13, 2006

    5 Montandon D, "The mechanism of wound contraction and epithelialization: clinical and experimental studies" 4 : 325-346, 1977

    6 Obal D, "The influence of mitochondrial KATP-channels in the cardioprotection of preconditioning and postconditioning by sevoflurane in the rat in vivo" 101 : 1252-1260, 2005

    7 Wang J, "The differential effects of volatile anesthetics on electrophysiological and biochemical changes during and recovery after hypoxia in rat hippocampal slice CA1 pyramidal cells" 140 : 957-967, 2006

    8 Lucchinetti E, "Sevoflurane inhalation at sedative concentrations provides endothelial protection against ischemia-reperfusion injury in humans" 106 : 262-268, 2007

    9 Wang J, "Sevoflurane immediate preconditioning alters hypoxic membrane potential changes in rat hippocampal slices and improves recovery of CA1 pyramidal cells after hypoxia and global cerebral ischemia" 145 : 1097-1107, 2007

    10 Tsuboi R, "Recombinant basic fibroblast growth factor stimulates wound healing in healing-impaired db/db mice" 172 : 245-251, 1990

    1 Hakvoort T, "Transforming growth factor-beta(1), -beta (2), -beta(3), basic fibroblast growth factor and vascular endothelial growth factor expression in keratinocytes of burn scars" 11 : 233-239, 2000

    2 Strum DP, "Toxicity of sevoflurane in rats" 66 : 769-773, 1987

    3 Jonsson K, "Tissue oxygenation, anemia, and perfusion in relation to wound healing in surgical patients" 214 : 605-613, 1991

    4 Khutsishvili KR, "The role of the cellular immunity in the process of the operative wound healing" 134 : 10-13, 2006

    5 Montandon D, "The mechanism of wound contraction and epithelialization: clinical and experimental studies" 4 : 325-346, 1977

    6 Obal D, "The influence of mitochondrial KATP-channels in the cardioprotection of preconditioning and postconditioning by sevoflurane in the rat in vivo" 101 : 1252-1260, 2005

    7 Wang J, "The differential effects of volatile anesthetics on electrophysiological and biochemical changes during and recovery after hypoxia in rat hippocampal slice CA1 pyramidal cells" 140 : 957-967, 2006

    8 Lucchinetti E, "Sevoflurane inhalation at sedative concentrations provides endothelial protection against ischemia-reperfusion injury in humans" 106 : 262-268, 2007

    9 Wang J, "Sevoflurane immediate preconditioning alters hypoxic membrane potential changes in rat hippocampal slices and improves recovery of CA1 pyramidal cells after hypoxia and global cerebral ischemia" 145 : 1097-1107, 2007

    10 Tsuboi R, "Recombinant basic fibroblast growth factor stimulates wound healing in healing-impaired db/db mice" 172 : 245-251, 1990

    11 Gottrup F, "Oxygen in wound healing and infection" 28 : 312-315, 2004

    12 Steed DL, "Modifying the wound healing response with exogenous growth factors" 25 : 397-405, 1998

    13 Zheng S, "Isoflurane preconditioning decreases glutamate receptor overactivation-induced purkinje neuronal injury in rat cerebellar slices" 1054 : 143-151, 2005

    14 Kagan HM, "Intra- and extracellular enzymes of collagen biosynthesis as biological and chemical targets in the control of fibrosis" 77 : 147-152, 2000

    15 Bennett NT, "Growth factors and wound healing: part II. role in normal and chronic wound healing" 166 : 74-81, 1993

    16 Mustoe TA, "Growth factor-induced acceleration of tissue repair through direct and inductive activities in a rabbit dermal ulcer model" 87 : 694-703, 1991

    17 Mogford JE, "Experimental models of wound healing. In: Cutaneous wound healing" Martin Dunitz 109-122, 2001

    18 Puig NR, "Effects of sevoflurane general anesthesia: immunological studies in mice" 2 : 95-104, 2002

    19 Lepisto J, "Effects of homodimeric isoforms of platelet-derived growth factor (PDGF-AA and PDGF-BB) on wound healing in rat" 53 : 596-601, 1992

    20 Horikoshi T, "Effect of oxygen on the growth of human epidermal keratinocytes" 86 : 424-427, 1986

    21 Wataya-Kaneda M, "Differential localization of TGF-beta-precursor isotypes in normal human skin" 8 : 38-44, 1994

    22 Kharasch ED, "Clinical sevoflurane metabolism and disposition. I. sevoflurane and metabolite pharmacokinetics" 82 : 1369-1378, 1995

    23 Schaffer CJ, "Cell biology of wound healing" 169 : 151-181, 1996

    24 Deyhimy DI, "Anesthetic preconditioning combined with postconditioning offers no additional benefit over preconditioning or postconditioning alone" 105 : 316-324, 2007

    25 Brower MC, "Adverse effects of local anesthetic infiltration on wound healing" 28 : 233-240, 2003

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    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.09 0.09 0.1
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.09 0.09 0.27 0.01
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