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      흑연로 원자 흡광 광도법과 유도 결합 플라즈마 질량 분석법을 이용한 혈중 납 농도 비교 = Comparison of Blood Lead Concentration Using Graphite Furnace Atomic Absorption Spectrometry (GF-AAs) and Inductively Coupled Plasma-mass Spectrometry (ICP-MS)

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      https://www.riss.kr/link?id=A106258086

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      다국어 초록 (Multilingual Abstract)

      Objectives: In this study, blood lead was analyzed using graphite furnace atomic absorption spectrometry (GFAAs) and inductively coupled plasma mass spectrometry (ICP-MS). We tried to examine the difference and consistency of the analytical values and the applicability of the analytical method.
      Methods: We selected 57 people who agreed to participate in this study. After confirming the linearity of the calibration standard curves in GF-AAs and ICP-MS, the concentrations of lead in quality control material and samples were measured, and the degree of agreement was compared.
      Results: The detection limit of the ICP-MS was lower than that of GF-AAs. The coefficient of variation of reference materials was shown to be stable in the ICP-MS and GF-AAs. When the correspondence between the two equipments was verified by bias of the analysis values, a concordance was shown, and approximately 98% of the ideal reference lines were present within ±40% of the deflection.
      Conclusion: GF-AAs showed high sensitivity to single heavy metal analysis, but it took much time and showed higher detection limit than ICP-MS. Therefore, it would be considered necessary to switch to ICP-MS analysis method, considering that the level of lead exposure is gradually decreasing.
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      Objectives: In this study, blood lead was analyzed using graphite furnace atomic absorption spectrometry (GFAAs) and inductively coupled plasma mass spectrometry (ICP-MS). We tried to examine the difference and consistency of the analytical values and...

      Objectives: In this study, blood lead was analyzed using graphite furnace atomic absorption spectrometry (GFAAs) and inductively coupled plasma mass spectrometry (ICP-MS). We tried to examine the difference and consistency of the analytical values and the applicability of the analytical method.
      Methods: We selected 57 people who agreed to participate in this study. After confirming the linearity of the calibration standard curves in GF-AAs and ICP-MS, the concentrations of lead in quality control material and samples were measured, and the degree of agreement was compared.
      Results: The detection limit of the ICP-MS was lower than that of GF-AAs. The coefficient of variation of reference materials was shown to be stable in the ICP-MS and GF-AAs. When the correspondence between the two equipments was verified by bias of the analysis values, a concordance was shown, and approximately 98% of the ideal reference lines were present within ±40% of the deflection.
      Conclusion: GF-AAs showed high sensitivity to single heavy metal analysis, but it took much time and showed higher detection limit than ICP-MS. Therefore, it would be considered necessary to switch to ICP-MS analysis method, considering that the level of lead exposure is gradually decreasing.

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      참고문헌 (Reference)

      1 권정연, "흑연로 원자 흡광 광도기와 유도 결합 플라즈마 질량 분석기를 이용한 인체 혈중 카드뮴 농도 비교" 한국환경보건학회 44 (44): 491-501, 2018

      2 이성배, "혈장 중 극미량 납 분석을 위한 ICP-MS 분석법 검증" 한국분석과학회 28 (28): 309-316, 2015

      3 이수연, "유도결합플라즈마질량분석기를 이용한 체내 미량금속 분석" 대한진단검사의학회 24 (24): 362-370, 2004

      4 이성배, "유도결합플라즈마 질량분석법을 이용한 혈장 중 극미량 납 분석" 한국분석과학회 25 (25): 190-196, 2012

      5 김효준, "우리나라 일부 도시와 농촌지역 주민의 혈중 납 및 혈중 카드뮴 농도" 한국생명과학회 19 (19): 472-478, 2009

      6 Trzcinka-Ochocka M, "Useful and Fast Method for Blood Lead and Cadmium Determination Using ICP-MS and GF-AAS; Validation Parameters" 30 (30): 130-139, 2016

      7 Rahil-Khazen R, "Trace element reference values in serum determined by inductively coupled plasma atomic emission spectrometry" 38 (38): 765-772, 2000

      8 Kristiansen J, "Toxic trace element reference levels in blood and urine: influence of gender and lifestyle factors" 204 (204): 147-160, 1997

      9 Torrence KM, "Slurry sampling for the determination of arsenic, cadmium, and lead in mainstream cigarette smoke condensate by graphite furnace–atomic absorption spectrometry and inductively coupled plasma–mass spectrometry" 372 (372): 723-731, 2002

      10 Nixon DE, "Routine clinical determination of lead, arsenic, cadmium, and thallium in urine and whole blood by inductively coupled plasma mass spectrometry" 51 (51): 13-25, 1996

      1 권정연, "흑연로 원자 흡광 광도기와 유도 결합 플라즈마 질량 분석기를 이용한 인체 혈중 카드뮴 농도 비교" 한국환경보건학회 44 (44): 491-501, 2018

      2 이성배, "혈장 중 극미량 납 분석을 위한 ICP-MS 분석법 검증" 한국분석과학회 28 (28): 309-316, 2015

      3 이수연, "유도결합플라즈마질량분석기를 이용한 체내 미량금속 분석" 대한진단검사의학회 24 (24): 362-370, 2004

      4 이성배, "유도결합플라즈마 질량분석법을 이용한 혈장 중 극미량 납 분석" 한국분석과학회 25 (25): 190-196, 2012

      5 김효준, "우리나라 일부 도시와 농촌지역 주민의 혈중 납 및 혈중 카드뮴 농도" 한국생명과학회 19 (19): 472-478, 2009

      6 Trzcinka-Ochocka M, "Useful and Fast Method for Blood Lead and Cadmium Determination Using ICP-MS and GF-AAS; Validation Parameters" 30 (30): 130-139, 2016

      7 Rahil-Khazen R, "Trace element reference values in serum determined by inductively coupled plasma atomic emission spectrometry" 38 (38): 765-772, 2000

      8 Kristiansen J, "Toxic trace element reference levels in blood and urine: influence of gender and lifestyle factors" 204 (204): 147-160, 1997

      9 Torrence KM, "Slurry sampling for the determination of arsenic, cadmium, and lead in mainstream cigarette smoke condensate by graphite furnace–atomic absorption spectrometry and inductively coupled plasma–mass spectrometry" 372 (372): 723-731, 2002

      10 Nixon DE, "Routine clinical determination of lead, arsenic, cadmium, and thallium in urine and whole blood by inductively coupled plasma mass spectrometry" 51 (51): 13-25, 1996

      11 Mortada WI, "Reference intervals of cadmium, lead, and mercury in blood, urine, hair, and nails among resi dents in Mansoura city, Nile delta, Egypt" 90 (90): 104-110, 2002

      12 Hsieh HF, "Lead determination in whole blood by laser ablation coupled with inductively coupled plasma mass spectrometry" 79 : 183-188, 2009

      13 Heitland P, "Fast, simple and reliable routine determination of 23 elements in urine by ICP-MS" 19 : 1552-1558, 2004

      14 Kira CS, "Fast and simple multi-element determination of essential and toxic metals in whole blood with quadrupole ICPMS" 4 (4): 39-45, 2014

      15 Batista BL, "Exploiting dynamic reaction cell inductively coupled plasma mass spectrometry (DRC-ICP-MS) for sequential determination of trace elements in blood using a dilute-and-shoot procedure" 639 (639): 13-18, 2009

      16 Lee JS, "Establishment of analytical method for blood and urine using ICP/MS (I)" National Institute of Environmental 1-86, 2008

      17 Bocca B, "Development of methods for the quantification of essential and toxic elements in human biomonitoring" 41 (41): 165-170, 2005

      18 Soares AR, "Development of a simple method for the determination of lead in lipstick using alkaline solubilization and graphite furnace atomic absorption spectrometry" 105 : 272-277, 2013

      19 Zhang ZW, "Determination of lead and cadmium in food and blood by inductively coupled plasma mass spectrometry: a comparison with graphite furnace atomic absorption spectrometry" 205 (205): 179-187, 1997

      20 Gajek R, "Determination of essential and toxic metals in blood by ICP-MS with calibration in synthetic matrix" 2193-2202, 2013

      21 Zhang WS, "Determination of Pb(Lead), Cd(Cadmium), Cr(Chromium), Cu(Copper), and Ni(Nickel)in Chinese tea with high-resolution continuum source graphite furnace atomic absorption spectrometry" 24 (24): 46-55, 2016

      22 Xiao M, "Comparison of different sample preparation methods for platinum determination in cultured cells by graphite furnace atomic absorption spectrometry" 5 : e2873-, 2017

      23 Iked M, "Cadmium, chromium, lead, manganese and nickel concentrations in blood of women in non-polluted areas in Japan, as determined by inductively coupled plasma-sector field-mass spectrometry" 84 (84): 139-150, 2011

      24 Kim JM, "Blood Lead, MAnganese, Aluminium and Silicon Concentrations in Korean Adults" 33 (33): 157-164, 2000

      25 Heitland P, "Biomonitoring of 37 trace elements in blood samples from inhabitants of northern Germany by ICP-MS" 20 (20): 253-262, 2006

      26 Yedomon B, "Biomonitoring of 29 trace elements in whole blood from inhabitants of Cotonou(Benin)by ICP-MS" 43 : 38-45, 2017

      27 Zhang ZW, "Background exposure of urban populations to lead and cadmium: comparison between China and Japan" 69 (69): 273-281, 1997

      28 Park KS, "A study on the determination of lead in whole blood by ICP/MS" 10 (10): 240-245, 1997

      29 White MA, "A comparison of inductively coupled plasma mass spectrometry with electrothermal atomic absorption spectrometry for determination of trace elements in blood and urine from non occupationally exposed populations" 13 (13): 93-101, 1999

      30 Nunes JA, "A Simple Method Based on ICP-MS for Estimation of Background Levels of Arsenic, Cadmium, Copper, Manganese, Nickel, Lead, and Selenium in Blood of the Brazilian Population" 73 (73): 878-887, 2010

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2022 평가예정 계속평가 신청대상 (등재유지)
      2017-01-01 평가 우수등재학술지 선정 (계속평가)
      2013-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-02-15 학술지명변경 외국어명 : Korean Journal of Environmental Health -> JOURNAL OF ENVIRONMENTAL HEALTH SCIENCES KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-09-13 학술지등록 한글명 : 한국환경보건학회지
      외국어명 : Korean Journal Of Environmental Health
      KCI등재
      2005-06-02 학술지등록 한글명 : 한국환경보건학회지
      외국어명 : Korean Journal of Environmental Health
      KCI등재
      2005-01-27 학회명변경 한글명 : 한국환경위생학회 -> 한국환경보건학회
      영문명 : Korean Society Of Environmental Health -> Korean Society of Environmental Health
      KCI등재
      2003-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2002-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.44 0.44 0.4
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.42 0.4 0.605 0.21
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