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  1. NTU Theses and Dissertations Repository
  2. 公共衛生學院
  3. 環境與職業健康科學研究所
Please use this identifier to cite or link to this item: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/90243
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???org.dspace.app.webui.jsptag.ItemTag.dcfield???ValueLanguage
dc.contributor.advisor陳保中zh_TW
dc.contributor.advisorPau-Chung Chenen
dc.contributor.author陳茗祥zh_TW
dc.contributor.authorMing-Siang Chenen
dc.date.accessioned2023-09-24T16:10:32Z-
dc.date.available2023-11-09-
dc.date.copyright2023-09-23-
dc.date.issued2023-
dc.date.submitted2023-08-10-
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/90243-
dc.description.abstract研究背景
本研究旨在確定台灣一般人口尿液中金屬的濃度分佈情況。使用人體生物監測來評估來自不同來源和通過不同途徑暴露於化學物質的內部累積暴露量。通過與美國國家健康和營養調查(NHANES)的比較,確定台灣人體生物監測中濃度較高的金屬。
研究方法
本研究於2019年全國範圍內收集了1748名7歲及以上的受試者,收集尿液樣本並進行問卷訪問。研究設計採用分層多階段群集抽樣設計的橫斷面研究。通過電感耦合等離子體譜儀(ICP-MS)分析了20種環境的金屬濃度,包括砷(As)、鋇(Ba)、鎘(Cd)、鈷(Co)、鉻(Cr)、銫(Cs)、銅(Cu)、鐵(Fe)、鎵(Ga)、銦(In)、錳(Mn)、鎳(Ni)、鉛(Pb)、硒(Se)、錫(Sn)、鍶(Sr)、鈦(Ti)、鉈(Tl)、釩(V)以及鋅(Zn)。
研究結果
尿液中金屬濃度分佈呈現20種金屬的幾何平均濃度和25%、50%、75%及95%的濃度值。發現男性的鋅濃度(358.3 µg/g肌酐)高於女性(357.0 µg/g肌酐),而其他金屬的濃度則女性顯著高於男性(p < 0.05)。每個年齡組(07-12歲、13-18歲、19-39歲、40-64歲和65歲以上)的金屬濃度分佈呈現U型趨勢,並且每個年齡組的濃度均存在顯著差異(p < 0.05)。比較不同地區我們觀察到金屬濃度存在顯著差異。相比非吸菸者,我們發現吸菸者尿液中的鎘和鋅濃度顯著較高(鎘:0.60 µg/g 肌酐,p =0.01;鋅:376.15 µg/g 肌酐,p =0.04)。喝咖啡者的尿液中鎘濃度顯著高於不喝咖啡者(鎘:0.51 vs. 0.45 µg/g 肌酐,p <0.01)。
結論
本研究確定了台灣一般人口尿液中金屬的濃度分佈情況。研究結果顯示基於性別、年齡、地區和生活習慣,2019年台灣一般人口的尿液中金屬濃度存在差異。與NHANES結果相比,台灣人尿中的砷、鋇、鎘、鉻、錳、鎳、鉈和鉛等金屬的基準值濃度較高。
zh_TW
dc.description.abstractBackground
Human beings are often exposed to metals and metalloid elements in our daily life. Human biomonitoring can be used to determine internal aggregate exposures to chemicals from all different sources and through all exposure routes. The aim of this study was to establish the concentration distributions of metals in urine among the general population in Taiwan. Compared with the National Health and Nutrition Examination Survey (NHANES), find out the metals with higher concentration in Taiwan human biomonitoring.
Methods
The research population was collected nationwide in 2019, recruiting a total of 1748 subjects aged 7 and over, collecting urine samples and conducting questionnaire interviews. The study design was a cross-sectional study with a stratified multistage cluster sampling design. The concentrations of 20 environmental metals, including arsenic (As), barium (Ba), cadmium (Cd), cobalt (Co), chromium (Cr), cesium (Cs), copper (Cu), iron (Fe), gallium (Ga), indium (In), manganese (Mn), nickel (Ni), lead (Pb), selenium (Se), tin (Sn), strontium (Sr), titanium (Ti), thallium (Tl), vanadium (V), and zinc (Zn), were analyzed using Inductively Coupled Plasma Mass Spectrometry (ICP-MS).
Results
The distribution of metal concentrations in urine showed the geometric mean concentrations and the 25th, 50th, 75th, and 95th percentile values for 20 metals. Zinc concentration in males (358.3 µg/g creatinine) was higher than in females (357.0 µg/g creatinine), while the concentrations of other metals were significantly higher in females than in males (p < 0.05). The concentration distribution of metals in each age group (07-12 years, 13-18 years, 19-39 years, 40-64 years, and 65 years and above) exhibited a U-shaped trend, and significant differences were found among the concentrations in each age group (p < 0.05). We observed significant differences in metal concentrations across different regions. Compared to non-smokers, smoking participants had significantly higher concentrations of cadmium and zinc in urine (Cd: 0.60 µg/g creatinine, p = 0.01; Zn: 376.15 µg/g creatinine, p = 0.04). Individuals who consumed coffee had significantly higher cadmium concentrations in urine compared to non-coffee drinkers (Cd: 0.51 vs. 0.45 µg/g creatinine, p < 0.01).
Conclusions
This study determined the distribution of metal concentrations in urine among the general population of Taiwan. The results of the study showed variations in urinary metal concentrations based on gender, age, region, and lifestyle habits among the general population in Taiwan in 2019. Compared to the results from NHANES, the reference values of metals such as arsenic, barium, cadmium, chromium, manganese, nickel, thallium, and lead in Taiwanese urine are relatively high.
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dc.description.tableofcontents誌謝 i
中文摘要 ii
Abstract iv
Contents vii
List of Figures x
List of Tables xi
Chapter 1 Introduction 1
1.1 Metals 2
1.1.1 Arsenic (As) 2
1.1.2 Cadmium (Cd) 3
1.1.3 Chromium (Cr) 4
1.1.4 Manganese (Mn) 4
1.1.5 Lead (Pb) 5
1.1.6 Trace elements 6
1.2 Human biomonitoring (HBM) 6
1.3 Objective 9
Chapter 2 Material and Methods 10
2.1 Study population and design 10
2.2 Data collection and storage 11
2.3 Measurement of urinary metal levels 12
2.4 Statistical analysis 14
Chapter 3 Results 15
3.1 Basic demographic characteristics 15
3.2 Urinary metal concentrations in different sex groups of the population 15
3.3 Urinary metal concentrations in different age groups of the population 16
3.4 Urinary metal concentrations in different regional groups of the population 17
3.5 Urinary metal concentrations in different lifestyles of the population 18
3.6 RVs of urinary metal concentrations 19
3.7 Exceedances of HBM-GVs in Taiwan HBM for urinary metal 20
Chapter 4 Discussion 21
Chapter 5 Conclusions 26
Reference 27
Appendix 64
Supplementary Table 1. HBM-GVs for urinary cadmium in the general population 64
Supplementary Table 2. The PSUs (primary sampling units) sampled for each county and city in Taiwan in the year 2019. 65
Supplementary Table 3. The planned sample size for national/counties and cities/PSUs visits in 2019. 66
Supplementary Table 4. Urinary metals measured in the Taiwan Human biomonitoring at 2019, limit of detection and percent detection rates. 67
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dc.language.isoen-
dc.subject人體生物監測zh_TW
dc.subject金屬zh_TW
dc.subject環境流行病學zh_TW
dc.subject基準值(RVs)zh_TW
dc.subject尿液zh_TW
dc.subjectMetalsen
dc.subjectUrineen
dc.subjectHuman biomonitoringen
dc.subjectEnvironmental epidemiologyen
dc.subjectReference values (RVs)en
dc.title台灣2019年人體生物監測尿中金屬濃度分析和流行病學研究zh_TW
dc.titleAnalysis of Urinary Metal Levels in Taiwan's 2019 Human Biomonitoring and Epidemiology Studyen
dc.typeThesis-
dc.date.schoolyear111-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee林嬪嬪;黃耀輝;陳美惠;林靜君zh_TW
dc.contributor.oralexamcommitteePin-Pin Lin;Yaw-Huei Hwang;Mei-Huei Chen ;Ching-Chun Linen
dc.subject.keyword金屬,人體生物監測,尿液,基準值(RVs),環境流行病學,zh_TW
dc.subject.keywordMetals,Human biomonitoring,Urine,Reference values (RVs),Environmental epidemiology,en
dc.relation.page67-
dc.identifier.doi10.6342/NTU202303751-
dc.rights.note同意授權(限校園內公開)-
dc.date.accepted2023-08-11-
dc.contributor.author-college公共衛生學院-
dc.contributor.author-dept環境與職業健康科學研究所-
Appears in Collections:環境與職業健康科學研究所

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