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    잔류용매 제거를 통한 신경전극의 생체적합성 향상 = Assessment of the Biocompatibility of Neural Electrode by Solvent Extraction

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    https://www.riss.kr/link?id=A103819611

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    To enhance biocompatibility of neural electrode, residual solvent in the neural electrode was reduced by solvent extraction and ultra-sonication processes. The solvent-extracted polyimide (PI) films are subcutaneously implanted in the mouse. The biocompatibility of the PI film was analyzed using the cytotoxicity, RT-PCR, and H & E staining. The solvent-extracted PI film shows better short term biocompatible characteristics over control and non-treated PI film.
    This solvent reduction method can be used to increase the biocompatibility of neural electrode.
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    To enhance biocompatibility of neural electrode, residual solvent in the neural electrode was reduced by solvent extraction and ultra-sonication processes. The solvent-extracted polyimide (PI) films are subcutaneously implanted in the mouse. The bioco...

    To enhance biocompatibility of neural electrode, residual solvent in the neural electrode was reduced by solvent extraction and ultra-sonication processes. The solvent-extracted polyimide (PI) films are subcutaneously implanted in the mouse. The biocompatibility of the PI film was analyzed using the cytotoxicity, RT-PCR, and H & E staining. The solvent-extracted PI film shows better short term biocompatible characteristics over control and non-treated PI film.
    This solvent reduction method can be used to increase the biocompatibility of neural electrode.

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    참고문헌 (Reference)

    1 L. B. Merabet, "What blindness can tell us about seeing again: Merging neuroplasticity and neuroprostheses" 6 : 71-77, 2005

    2 A. L. Pierce, "Thin-film silica sol-gel coatings for neural microelectrodes" 180 : 106-110, 2009

    3 B. H. Dobkin, "Strategies for stroke rehabilitation" 3 : 528-536, 2004

    4 R. Deumens, "Regeneration of descending axon tracts after spinal cord injury" 77 : 57-89, 2005

    5 A. Prochazka, "Neural prostheses" 533 : 99-109, 2001

    6 P. H. Peckham, "Functional electrical stimulation for neuromuscular applications" 7 : 327-360, 2005

    7 C. D. James, "Extracellular recordings from patterned neuronal networks using planar microelectrode arrays" 51 : 1640-1648, 2004

    8 D. M. Taylor, "Direct cortical control of 3D neuroprosthetic devices" 296 : 1829-1832, 2002

    9 Y. Zhong, "Dexamethasone Coated Neural Probes Elicit Attenuated Inflammatory Response and Neuronal Loss Compared to Uncoated Neural Probes" 1148 : 15-27, 2007

    10 S. Breit, "Deep brain stimulation" 318 : 275-288, 2004

    1 L. B. Merabet, "What blindness can tell us about seeing again: Merging neuroplasticity and neuroprostheses" 6 : 71-77, 2005

    2 A. L. Pierce, "Thin-film silica sol-gel coatings for neural microelectrodes" 180 : 106-110, 2009

    3 B. H. Dobkin, "Strategies for stroke rehabilitation" 3 : 528-536, 2004

    4 R. Deumens, "Regeneration of descending axon tracts after spinal cord injury" 77 : 57-89, 2005

    5 A. Prochazka, "Neural prostheses" 533 : 99-109, 2001

    6 P. H. Peckham, "Functional electrical stimulation for neuromuscular applications" 7 : 327-360, 2005

    7 C. D. James, "Extracellular recordings from patterned neuronal networks using planar microelectrode arrays" 51 : 1640-1648, 2004

    8 D. M. Taylor, "Direct cortical control of 3D neuroprosthetic devices" 296 : 1829-1832, 2002

    9 Y. Zhong, "Dexamethasone Coated Neural Probes Elicit Attenuated Inflammatory Response and Neuronal Loss Compared to Uncoated Neural Probes" 1148 : 15-27, 2007

    10 S. Breit, "Deep brain stimulation" 318 : 275-288, 2004

    11 A. B. Schwartz, "Cortical neural prosthetics" 27 : 487-507, 2004

    12 A. B. Schwartz, "Cortical Neural Prosthetics" 27 : 487-507, 2004

    13 J. P. Donoghue, "Connecting cortex to machines: recent advances in brain interfaces" 5 : 1085-1088, 2002

    14 J. C. Middlebrooks, "Cochlear implants: The view from the brain" 15 : 488-493, 2005

    15 D. Caparros-Lefebvre, "Chronic thalamic stimulation improves tremor and levodopa induced dyskinesias in Parkinson's disease" 56 : 268-273, 1993

    16 K. Oweiss, "Chronic electrode-brain interface modeled with FEM" 1999

    17 K. A. Moxon, "Ceramic-based multisite electrode arrays for chronic single-neuron recording" 51 : 647-656, 2004

    18 D. H. Szarowski, "Brain Responses to micro-machined silicon devices" 983 : 23-35, 2003

    19 배민수, "BMP-2가 고정화된 젤라틴-베타키토산 지지체를 이용한 골 재생 연구" 한국조직공학과 재생의학회 6 (6): 609-614, 2009

    20 Y. Sun, "Assessment of the biocompatibility of photosensitive polyimide for implantable medical device use" 90 : 648-655, 2009

    21 A. Branner, "A multielectrode array for intrafascicular recording and stimulation in sciatic nerve of cats" 51 : 293-306, 2000

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2017-01-01 등재 등재학술지 유지 (계속평가) KCI등재
    2013-01-01 등재 등재 1차 FAIL (등재유지) KCI등재
    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2007-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2006-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2005-03-28 학회명변경 한글명 : 생체재료학회 -> 한국생체재료학회
    영문명 : 미등록 -> The Korean Society For Biomaterials
    KCI등재후보
    2005-03-28 학술지등록 한글명 : 생체재료학회지
    외국어명 : Biomaterials Research
    KCI등재후보
    2004-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.32 0.32 0.3
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.26 0.23 0.511 0.11
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