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Determination of Cadmium Content in Pork by Graphite Furnace Atomic Absorption Spectrometry Combined with Matrix Matching Method and Its Health Risk Assessment

DOI: 10.4236/oalib.1111209, PP. 1-13

Subject Areas: Analytical Chemistry

Keywords: Temperature Program, Health Risk, Nemerow Pollution Index Method, Cadmium Exposure, Target Hazard Coefficient Method

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Abstract

Objective: Optimization of the method of graphite furnace atomic absorption in the existing national standard method GB 5009.15-2014 to establish the method for quantitative detection of cadmium and analyze the health risks of cadmium in pork. Methods: The temperature program of the graphite furnace was optimized and was combined with the matrix matching method. The cadmium content and health risk of pork samples from seven producing areas from 2019 to 2020 were evaluated by the single factor pollution index method (Pi) and target hazard coefficient method (THQ) of non-carcinogenic pollutant risk. Results: The optimization method: The correlation coefficient of the standard curve was above 0.999, the recovery rate was 96.9% - 107.1%, and the coefficient of variation was 0.4% - 0.7%. The detection limit was 0.68 μg/Kg. The cadmium content in pork from 2019 to 2020: was 100% qualified, with an average value of 3.05 μg/kg; The range of Pi was 0.0050 - 0.189, the range of cadmium exposure was (0.0004 - 0.01700) μg/(kg?d), and the range of THQ was 0.0005 - 0.0204; The average of cadmium content, Pi, cadmium exposure, and THQ from 2019 to 2020 showed a downward trend, so as the maximum values of them; The cadmium content, Pi, cadmium exposure and THQ: The order of the average of them in the origin product was S5 > S3 > S4 > S1 > S2 > S7 > S6, so as the order of maximum of. Them. Conclusion: The Graphite furnace atomic absorption spectrometry combined with the matrix matching method for the detection of cadmium in pork has good accuracy, high precision and sensitivity, and low detection limit. The method was applied to the analysis of cadmium content in commercially available pork samples. The results showed that 100% of the samples were qualified, and the cadmium content showed a steady downward trend. Its cadmium pollution level is excellent, at a safe level, and there is no intake risk to human health.

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Chen, L. , Zhang, W. , Zhang, G. , Liu, M. , Tian, Y. , Wan, X. and Wang, F. (2024). Determination of Cadmium Content in Pork by Graphite Furnace Atomic Absorption Spectrometry Combined with Matrix Matching Method and Its Health Risk Assessment. Open Access Library Journal, 11, e1209. doi: http://dx.doi.org/10.4236/oalib.1111209.

References

[1]  Xie, A., Sun, D.W., Xu, Z., et al. (2015) Rapid Detection of Frozen Pork Quality without Thawing by Vis-NIR Hyperspectral Imaging Technique. Talanta, 139, 208-215. https://doi.org/10.1016/j.talanta.2015.02.027
[2]  Xu, X., Liu, L., Long, S.F., et al. (2017) Effects of Chromium Methionine Supplementation with Different Sources of Zinc on Growth Performance, Carcass Traits, Meat Quality, Serum Metabolites, Endocrine Parameters, and the Antioxidant Status in Growing-Finishing Pigs. Biological Trace Element Research, 179, 70-78.
https://doi.org/10.1007/s12011-017-0935-0
[3]  蔡继红, 陆海, 潘海燕. 石墨炉原子吸收分光光度法测定粮食中的铅和镉[J]. 甘肃环境研究与监测, 2000, 13(3): 151-152.
[4]  黄秋蝉, 韦友欢, 黎晓峰. 镉对人体健康的危害效应及其机理研究进展[J]. 安徽农业科学, 2007, 35(9): 2528-2531.
[5]  王豫. 浅谈食品中重金属对人体的危害及预防[J]. 青海农技推广, 2010(4): 43-46.
[6]  李智慧, 饶丽丽. 食品重金属元素检测中不同仪器的应用分析[J]. 现代食品, 2023, 29(12): 131-133.
[7]  肖猷雷, 周俊帆, 黄夏, 等. 食品中重金属元素检测方法研究进展[J]. 中国食品, 2023(8): 75-77.
[8]  徐鲁翔. 食品重金属元素检测中不同仪器的应用研究[J]. 现代食品, 2022, 28(7): 103-105. https://doi.org/10.16736/j.cnki.cn41-1434/ts.2022.07.024
[9]  杨洋. 2013-2016年六安市主要膳食食品中重金属铅、镉、汞、砷的暴露量及风险评估[D]: [硕士学位论文]. 合肥: 安徽医科大学, 2019.
[10]  祝白春, 王艳莉, 郭宝福, 等. 2013-2016年南京市民膳食中镉暴露风险评估[J]. 实用预防医学, 2019, 26(9): 1027-1030.
[11]  王彩霞, 刘宇, 郭蓉, 等. 陕西生鲜肉类中重金属污染状况调查及健康风险评估研究[J]. 现代预防医学, 2018, 45(1): 35-39.
[12]  中华人民共和国国家卫生和计划生育委员会. GB5009.15-2014, 食品安全国家标准食品中镉的测定[S]. 北京: 中国标准出版社, 2014.
[13]  中华人民共和国农业部. NY/T763-2004, 中华人民共和国农业猪肉、猪肝、猪尿抽样方法[S]. 北京: 中国农业出版社, 2004.
[14]  中华人民共和国国家质量监督检验检疫总局和中国国家标准化管理委员会. GB/T 20756-2006可食动物肌肉、肝脏和水产品中氯霉素、甲砜霉素和氟苯尼考残留量的测定液相色谱-串联质谱法[S]. 北京: 中国标准出版社, 2006.
[15]  中华人民共和国国家卫生和计划生育委员会. GB5009.12-2017, 食品安全国家标准食品中铅的测定[S]. 北京: 中国标准出版社, 2017.
[16]  聂继云, 匡立学, 李志霞, 等. 中国主要落叶果树果实硒含量及其膳食暴露评估[J]. 中国农业科学, 2015, 48(15): 3015-3026.
[17]  聂继云, 李志霞, 刘传德, 等. 苹果中农药残留风险评估[J]. 中国农业科学, 2014, 47(18): 3655-3667.
[18]  赵敏娴, 王灿楠, 李亭亭, 等. 江苏居民有机磷农药膳食累积暴露急性风险评估[J]. 卫生研究, 2013, 42(5): 844-848.
[19]  中华人民共和国国家卫生健康委员会, 国家市场监督管理总局. GB2762-2022, 食品安全国家标准食品中污染物限量[S]. 北京: 中国标准出版社, 2022.
[20]  国家统计局编委会. 中国统计年签-2020[M]. 北京: 中国统计出版社, 2020.
[21]  卫生和计划生育委员会. 中国居民营养与慢性病状况报告[EB/OL].
https://www.gov.cn/xinwen/2015-06/30/content_2887030.htm, 2024-02-28.
[22]  Storelli, M.M. (2008) Potential Human Health Risks from Metals (Hg, Cd, and Pb) and Polychlorinated Biphenyls (PCBs) via Seafood Consumption: Estimation of Target Hazard Quotients (THQs) and Toxic Equivalents (TEQs). Food & Chemical Toxicology, 46, 2782-2788. https://doi.org/10.1016/j.fct.2008.05.011
[23]  Hough, R.L., Breward, N., Young, S.D., et al. (2004) Assessing Potential Risk of Heavy Metal Exposure from Consumption of Home-Produced Vegetables by Urban Populations. Environmental Health Perspectives, 112, 215-221.
https://doi.org/10.1289/ehp.5589
[24]  Sharma, R.K., Agrawal, M. and Marshall, F.M. (2009) Heavy Metals in Vegetables Collected from Production and Market Sites of a Tropical Urban Area of India. Food and Chemical Toxicology, 47, 583-591.
https://doi.org/10.1016/j.fct.2008.12.016
[25]  任艳军, 马建军. 秦皇岛市蔬菜中重金属污染状况及健康风险分析[J]. 安全与环境学报, 2013, 13(2): 79-84.
[26]  魏军晓. 北京市售食品重金属含量特征与健康风险评估[D]: [博士学位论文]. 北京: 中国地质大学, 2019: 1-130.
[27]  中华人民共和国质监总局, 中国国家标准化管理委员会. GB/T27404-2008实验室质量控制规范食品理化检测[S]. 北京: 中国标准出版社, 2008.
[28]  关伯仁. 评内梅罗的污染指数[J]. 环境科学, 1979, 4(4): 67-71.
[29]  黄芸, 袁洪, 黄志军, 等. 环境重金属暴露对人群健康危害研究进展[J]. 中国公共卫生, 2016, 32(8): 1113-1116.
[30]  陈利平, 张卫东, 张宏雨, 等. 北京市地标产业草莓2019-2020年重金属含量特征及其健康风险分析[J]. 安徽农业科学, 2023, 51(2): 172-176, 195.
[31]  Joint FAO/WHO Expert Committee on Food Additives (2010) Summary and Conclusion of Seventy-Third Meeting. FAO/WHO, Geneva.
[32]  陈利平, 张志勇, 张宏雨, 等. 石墨炉原子吸收法测定草莓中铅的方法优化[J]. 食品安全质量检测学报, 2019, 10(10): 3202-3208.

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