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    반쪽얼굴연축에 대한 미세혈관감압술에서의 수술 중 신경계 감시 = Intraoperative Neurophysiological Monitoring during Microvascular Decompression Surgery for Hemifacial Spasm

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    https://www.riss.kr/link?id=A106951778

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Hemifacial spasm (HFS) is due to the vascular compression of the facial nerve at its root exit zone (REZ). Microvascular decompression (MVD) of the facial nerve near the REZ is an effective and curative treatment for HFS. In MVD for HFS, intraoperative neurophysiological monitoring (IONM) has two purposes. The first purpose is to prevent injury to neural structures such as the vestibulocochlear nerve and facial nerve during MVD surgery, which is possible through IONM of brainstem auditory evoked potentials and facial nerve electromyography (EMG). The second purpose is the unique feature of MVD for HFS, which is to assess and optimize the effectiveness of the vascular decompression. The purpose is achieved mainly through monitoring of abnormal facial nerve EMG that is called as lateral spread response (LSR) and is also partially possible through Z-L response, facial F-wave, and facial motor evoked potentials. Through IONM mentioned above, MVD can be developed as a more safe and effective treatment for HFS.
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    Hemifacial spasm (HFS) is due to the vascular compression of the facial nerve at its root exit zone (REZ). Microvascular decompression (MVD) of the facial nerve near the REZ is an effective and curative treatment for HFS. In MVD for HFS, intraoperativ...

    Hemifacial spasm (HFS) is due to the vascular compression of the facial nerve at its root exit zone (REZ). Microvascular decompression (MVD) of the facial nerve near the REZ is an effective and curative treatment for HFS. In MVD for HFS, intraoperative neurophysiological monitoring (IONM) has two purposes. The first purpose is to prevent injury to neural structures such as the vestibulocochlear nerve and facial nerve during MVD surgery, which is possible through IONM of brainstem auditory evoked potentials and facial nerve electromyography (EMG). The second purpose is the unique feature of MVD for HFS, which is to assess and optimize the effectiveness of the vascular decompression. The purpose is achieved mainly through monitoring of abnormal facial nerve EMG that is called as lateral spread response (LSR) and is also partially possible through Z-L response, facial F-wave, and facial motor evoked potentials. Through IONM mentioned above, MVD can be developed as a more safe and effective treatment for HFS.

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    참고문헌 (Reference)

    1 Moller AR, "Vascular compression of cranial nerves: II: pathophysiology" 21 : 439-443, 1999

    2 Sekula RF, "Utility of intraoperative electromyography in microvascular decompression for hemifacial spasm : a meta-analysis" 27 : E10-, 2009

    3 Kim CH, "The potential value of the disappearance of the lateral spread response during microvascular decompression for predicting the clinical outcome of hemifacial spasms: a prospective study" 67 : 1581-1587, 2010

    4 Park SK, "The critical warning sign of real-time brainstem auditory evoked potentials during microvascular decompression for hemifacial spasm" 129 : 1097-1102, 2018

    5 Katz AD, "The clinical significance of the various anastomotic branches of the facial nerve. Report of 100 patients" 113 : 959-962, 1987

    6 Tobishima H, "Relation between the persistence of an abnormal muscle response and the long-term clinical course after microvascular decompression for hemifacial spasm" 54 : 474-482, 2014

    7 Joo BE, "Real-time intraoperative monitoring of brainstem auditory evoked potentials during microvascular decompression for hemifacial spasm" 125 : 1061-1067, 2016

    8 Shin JC, "Prospective study of microvascular decompression in hemifacial spasm" 40 : 730-734, 1997

    9 Kong DS, "Prognostic value of the lateral spread response for intraoperative electromyography monitoring of the facial musculature during microvascular decompression for hemifacial spasm" 106 : 384-387, 2007

    10 Joo WI, "Prognostic value of intra-operative lateral spread response monitoring during microvascular decompression in patients with hemifacial spasm" 15 : 1335-1339, 2008

    1 Moller AR, "Vascular compression of cranial nerves: II: pathophysiology" 21 : 439-443, 1999

    2 Sekula RF, "Utility of intraoperative electromyography in microvascular decompression for hemifacial spasm : a meta-analysis" 27 : E10-, 2009

    3 Kim CH, "The potential value of the disappearance of the lateral spread response during microvascular decompression for predicting the clinical outcome of hemifacial spasms: a prospective study" 67 : 1581-1587, 2010

    4 Park SK, "The critical warning sign of real-time brainstem auditory evoked potentials during microvascular decompression for hemifacial spasm" 129 : 1097-1102, 2018

    5 Katz AD, "The clinical significance of the various anastomotic branches of the facial nerve. Report of 100 patients" 113 : 959-962, 1987

    6 Tobishima H, "Relation between the persistence of an abnormal muscle response and the long-term clinical course after microvascular decompression for hemifacial spasm" 54 : 474-482, 2014

    7 Joo BE, "Real-time intraoperative monitoring of brainstem auditory evoked potentials during microvascular decompression for hemifacial spasm" 125 : 1061-1067, 2016

    8 Shin JC, "Prospective study of microvascular decompression in hemifacial spasm" 40 : 730-734, 1997

    9 Kong DS, "Prognostic value of the lateral spread response for intraoperative electromyography monitoring of the facial musculature during microvascular decompression for hemifacial spasm" 106 : 384-387, 2007

    10 Joo WI, "Prognostic value of intra-operative lateral spread response monitoring during microvascular decompression in patients with hemifacial spasm" 15 : 1335-1339, 2008

    11 Nielsen VK, "Pathophysiology of hemifacial spasm: I. Ephaptic transmission and ectopic excitation" 34 : 418-426, 1984

    12 Wilkinson MF, "Monitoring of facial muscle motor evoked potentials during microvascular decompression for hemifacial spasm: evidence of changes in motor neuron excitability" 103 : 64-69, 2005

    13 Moller AR, "Microvascular decompression in hemifacial spasm: intraoperative electrophysiological observations" 16 : 612-618, 1985

    14 Acevedo JC, "Microvascular decompression for the treatment of hemifacial spasm. Retrospective study of a consecutive series of 75 operated patients--electrophysiologic and anatomical surgical analysis" 68 : 260-265, 1997

    15 Thirumala PD, "Microvascular decompression for hemifacial spasm: evaluating outcome prognosticators including the value of intraoperative lateral spread response monitoring and clinical characteristics in 293 patients" 28 : 56-66, 2011

    16 Sindou M, "Microvascular decompression for hemifacial spasm: Surgical techniques and intraoperative monitoring" 64 : 133-143, 2018

    17 Barker FG, "Microvascular decompression for hemifacial spasm" 82 : 201-210, 1995

    18 Legatt AD, "Mechanisms of intraoperative brainstem auditory evoked potential changes" 19 : 396-408, 2002

    19 Hatem J, "Intraoperative monitoring of facial EMG responses during microvascular decompression for hemifacial spasm. Prognostic value for long-term outcome: a study in a 33-patient series" 15 : 496-499, 2001

    20 Grundy BL, "Intraoperative monitoring of brain-stem auditory evoked potentials" 57 : 674-681, 1982

    21 Son BC, "Intraoperative monitoring of Z-L response (ZLR) and abnormal muscle response (AMR) during microvascular decompression for hemifacial spasm. Interpreting the role of ZLR" 160 : 963-970, 2018

    22 Huang BR, "Intraoperative electrophysiological monitoring in microvascular decompression for hemifacial spasm" 16 : 209-213, 2009

    23 Moller AR, "Hemifacial spasm: results of electrophysiologic recording during microvascular decompression operations" 35 : 969-974, 1985

    24 Mooij JJ, "Hemifacial spasm: intraoperative electromyographic monitoring as a guide for microvascular decompression" 49 : 1365-1370, 2001

    25 Wilkins RH, "Hemifacial spasm: a review" 36 : 251-277, 1991

    26 Wilkinson MF, "Facial Motor Neuron Excitability in Hemifacial Spasm: A Facial MEP Study" 41 : 239-245, 2014

    27 Legatt AD, "Electrophysiology of Cranial Nerve Testing: Auditory Nerve" 35 : 25-38, 2018

    28 Ishikawa M, "Electrophysiological investigation of hemifacial spasm after microvascular decompression: F waves of the facial muscles, blink reflexes, and abnormal muscle responses" 86 : 654-661, 1997

    29 Kopuz C, "Distribution of facial nerve in parotid gland: analysis of 50 cases" 70 : 295-299, 1994

    30 Zheng X, "Discovery of a new waveform for intraoperative monitoring of hemifacial spasms" 154 : 799-805, 2013

    31 Thirumala PD, "Diagnostic accuracy of brainstem auditory evoked potentials during microvascular decompression" 83 : 1747-1752, 2014

    32 Kimura J, "Current understanding of F-wave physiology in the clinical domain" 59 : 299-303, 2006

    33 Hatayama T, "Correlation between latency and amplitude of peak V in the brainstem auditory evoked potentials: intraoperative recordings in microvascular decompression operations" 140 : 681-687, 1998

    34 Yang M, "Combined intraoperative monitoring of abnormal muscle response and Z-L response for hemifacial spas m with tandem compression type" 156 : 1161-1166, 2014

    35 Thirumala PD, "Clinical impact of residual lateral spread response after adequate microvascular decompression for hemifacial spasm: A retrospective analysis" 29 : 818-822, 2015

    36 James ML, "Brainstem auditory evoked potential monitoring:when is change in wave V significant?" 65 : 1551-1555, 2005

    37 Polo G, "Brainstem auditory evoked potential monitoring during microvascular decompression for hemifacial spasm: intraoperative brainstem auditory evoked potential changes and warning values to prevent hearing loss--prospective study in a consecutive series of 84 patients" 54 : 97-104, 2004

    38 "American Clinical Neurophysiology S: Guideline 9C: Guidelines on short-latency auditory evoked potentials" 23 : 157-167, 2006

    39 Martin WH, "ASNM position statement: intraoperative monitoring of auditory evoked potentials" 22 : 75-85, 2008

    40 Lee S, "A new method for monitoring abnormal muscle response in hemifacial spasm: A prospective study" 129 : 1490-1495, 2018

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    2015-12-01 등재 등재후보 탈락 (기타)
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    2011-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
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    학술지 인용정보

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    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0 0 0.02
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.01 0.03 0.249 0
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