|
|
|
|
|
|
Determination of Aluminum in Vaccines by Monochromatic
Excitation-Energy Dispersive X-Ray Fluorescence Spectrometry |
LIU Cong-cong1, 2, WEN Jia-xin1, 3*, LIN Yuan-heng1, 2, LIANG Wei-yang1, 2, YANG Zhi-ye1, 3, DENG Feng1, 3, LUO Xin-yang4, ZHAO Miao-miao5 |
1. Guangdong Institute for Drug Control, Guangzhou 510663, China
2. NMPA Key Laboratory for Quality Control of Blood Products, Guangzhou 510663, China
3. NMPA Key Laboratory for Rapid Testing Technology of Drugs, Guangzhou 510663, China
4. RayKol Group Corp., Ltd., Xiamen 361000, China
5. Suzhou Jiapu Technology Limited Company, Suzhou 215000, China
|
|
|
Abstract The aluminum adjuvant content in vaccines is an important factor affecting the effectiveness and safety of vaccines. Determining the aluminum content in vaccines swiftly and accurately is an urgent requirement for both production enterprises and inspection institutions. In this paper, the monochromatic excitation technology of a doubly curved crystal was applied to energy dispersive X-ray fluorescence spectrometry, and the matrix effect was corrected by the fundamental parameter method. Samples were pretreated by heating in 30% nitric acid solution at 40 ℃ for 25 minutes. A polypropylene film with a thickness of 4 μm was used as the backing material. Detection was carried out for 300 seconds under the excitation conditions of low voltage and high current, and an analytical method for rapidly determining the aluminum content in vaccines was established. The results showed a significant positive correlation between the measured and theoretical values of aluminum in six vaccine matrices. The correlation coefficients of the fitting equations were all greater than 0.998. The detection limit and quantification limit of the method were 0.027 and 0.090 mg·mL-1, respectively. Within spiking levels ranging from 0.3 to 0.7 mg·mL-1, average recovery rates fell between 97.6% and 102%, with precision RSD (n=6) recorded at 2.4% to 6.7%. The coefficient of variation for the same sample measured within 90 days was 4.7%. The accuracy was verified with ICP-OES and ICP-MS as references. The results of 70 batches of vaccine products of six varieties showed good consistency with the reference values, and the absolute values of relative errors did not exceed 10%. This method enables on-site testing without reliance on precision equipment while maintaining accuracy. The research indicates that using monochromatic excitation-energy dispersive X-ray fluorescence spectroscopy offers several advantages, including eliminating the need for standard materials, high accuracy, good precision, and a low detection limit. This technique is suitable for rapid on-site determination of aluminum content in vaccines and holds broad practical significance for widespread application.
|
Received: 2024-12-05
Accepted: 2025-04-15
|
|
Corresponding Authors:
WEN Jia-xin
E-mail: ellawen224@qq.com
|
|
[1] MA Huan, XIAO Zhan-rong, YANG Yi-rao, et al(马 环,肖詹蓉,杨溢尧,等). Drug Standards of China(中国药品标准), 2022, 23(3): 277.
[2] SHAO Tian-shu, LI Xiao, LI Yu-li, et al(邵天舒,李 潇,李玉立,等). Chinese Journal of Biologicals(中国生物制品学杂志), 2024, 37(1): 58.
[3] ZHANG Cheng-zhi, WANG Wen-xi, GUO Jiang-hong, et al(张承志,王文晞,郭江红,等). Chinese Journal of Pharmaceutical Analysis(药物分析杂志), 2023, 43(11): 1909.
[4] Pharmacopoeia of the People's Republic of China 2020. Vol Ⅳ(中华人民共和国药典2020年版. 四部). 2020: 287, 305.
[5] WANG Ping, ZHANG Xue-feng, CHEN Mei-li, et al(王 平,张学峰,陈美丽,等). Chinese Journal of Biologicals(中国生物制品学杂志), 2021, 34(9): 1094.
[6] CHEN Qiong, WANG Jin, SHI Ji-chun, et al(陈 琼,王 瑾,石继春,等). Chinese Journal of Pharmaceutical Analysis(药物分析杂志), 2015, 35(11): 1995.
[7] SU Ying, ZHOU Tao-hong, LIU Jie, et al(苏 莹,周陶鸿,刘 杰,等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2024, 44(4): 1067.
[8] YE Zi-qi, GAN Ting-ting, WU Wen-tao, et al(叶紫琪,甘婷婷,吴文涛,等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2024, 44(9): 2494.
[9] LUO Li-qiang, ZHAN Xiu-chun, LI Guo-hui(罗立强,詹秀春,李国会). X-Ray Fluorescence Spectrometry(X射线荧光光谱分析). Beijing:Chemical Industry Press(北京:化学工业出版社),2015.
[10] LUO Li-Qiang, SHEN Ya-ting, WU Xiao-jun(罗立强,沈亚婷,吴晓军). Metallurgical Analysis(冶金分析), 2021, 41(12): 18.
[11] YANG Jin-kun, SU Ming-yue, LI Quan-bin, et al(杨金坤,苏明跃,李权斌,等). Chinese Journal of Inorganic Analytical Chemistry(中国无机分析化学), 2024, 14(9): 1227.
[12] CHENG Da-wei, LIU Ming-bo, SHEN Xue-jing, et al(程大伟,刘明博,沈学静,等). Metallurgical Analysis(冶金分析), 2022, 42(1): 10.
[13] Xing Yan, Zhang Haihan, Yang Zhen, et al. Metals, 2022, 12(11): 1798.
[14] GAO Xin-hua, SONG Wu-yuan, DENG Sai-wen, et al(高新华,宋武元,邓赛文,等). Practical X Ray Spectrum Analysis(实用X射线光谱分析). Beijing:Chemical Industry Press(北京:化学工业出版社),2017.
[15] WANG Yi-ya, DENG Sai-wen, WANG Yi-min, et al(王祎亚,邓赛文,王毅民,等). Metallurgical Analysis(冶金分析), 2020, 40(10): 12.
[16] HE Peng, HU Zhong-yu(何 鹏,胡忠玉). Chinese Journal of Biologicals(中国生物制品学杂志), 2016, 29(6): 654.
[17] XING Yan, TIAN Wei-hua, LIU Jin-hua, et al(杏 艳,田渭花,刘锦华,等). Environmental Chemistry(环境化学), 2022, 41(10): 3182.
[18] LI Xiao-li, LI Qing-xia, AN Shu-qing, et al(李小莉,李庆霞,安树清,等). Chinese Journal of Analytical Chemistry(分析化学), 2019, 47(11): 1864.
[19] FENG Xian-jin, HAN Wei-dan, TENG Fei, et al(冯先进,韩伟丹,滕 飞,等). Metallurgical Analysis(冶金分析), 2022, 42(7): 1.
[20] YANG Li-kun, MAO Xue-fei, ZHENG Lei, et al(杨立坤,毛雪飞,郑 磊,等). Chinese Journal of Inorganic Analytical Chemistry(中国无机分析化学), 2023, 13(12): 1429.
|
[1] |
LIAO Xian-li1, 2, LAI Wan-chang1*, MA Shu-hao3, TANG Lin2. MC Simulation of Detection Conditions for EDXRF Analysis of Cd
Element in Wastewater Solution[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2025, 45(02): 403-409. |
[2] |
LIAO Xue-liang, LIU Ming-bo, CHENG Da-wei, SHEN Xue-jing. Analysis and Calculation of Escape Peaks in Silicon Drift Detectors[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(05): 1297-1300. |
[3] |
SU Ying1, 2, 3,ZHOU Tao-hong1, 2, 3,LIU Jie1, 2, 3,HUANG Hui1, 2, 3,LIU Di1, 2, 3,WANG Jing-jing4,XIE Yun-fei5*. The Rapid Detection and Identification of KAl(SO4)2 in Fans by Portable EDXRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(04): 1067-1072. |
[4] |
LIN Hong-jian1, ZHAI Juan1*, LAI Wan-chang1, ZENG Chen-hao1, 2, ZHAO Zi-qi1, SHI Jie1, ZHOU Jin-ge1. Determination of Mn, Co, Ni in Ternary Cathode Materials With
Homologous Correction EDXRF Analysis[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(11): 3436-3444. |
[5] |
XU Wei-xuan1, CHEN Wen-bin2, 3*. Determination of Barium in Purple Clay Products for Food Contact by
Energy Dispersive X-Ray Fluorescence Spectrometry[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(02): 475-483. |
[6] |
LIU Ming-bo1, 2, ZHAO Lei1, 2, HU Xue-qiang2, NI Zi-yue1, 2, YANG Li-xia1, 2,JIA Yun-hai1, 2, WANG Hai-zhou1, 2*. Design of High-Throughput μ-EDXRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(09): 2752-2756. |
[7] |
NI Zi-yue1, CHENG Da-wei2, LIU Ming-bo2, YUE Yuan-bo2, HU Xue-qiang2, CHEN Yu2, LI Xiao-jia1, 2*. The Detection of Mercury in Solutions After Thermal Desorption-
Enrichment by Energy Dispersive X-Ray Fluorescence[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(04): 1117-1121. |
[8] |
SHI Ruo-yu1, WEN Rui1*, GAO Xiang2, WANG Wen-xuan1, BAO Li-ge3, ZHAO Xue-feng4, LI Zi-xuan1, CAO Kun1, XIAO Wei1, LI Yu-long1. X-Ray Fluorescence Spectroscopy Combined With SEM-EDS Analysis to Glaze Composition of Glazed Tiles in Yuan Dynasty[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(12): 3808-3814. |
[9] |
NI Zi-yue1, CHENG Da-wei2, LIU Ming-bo2, HU Xue-qiang2, LIAO Xue-liang2, YUE Yuan-bo2, LI Xiao-jia1,2, CHEN Ji-wen3. The Rapid Detection of Trace Mercury in Soil With EDXRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(03): 734-738. |
[10] |
LI Qing-bo1, BI Zhi-qi1, SHI Dong-dong2. The Method of Fishmeal Origin Tracing Based on EDXRF Spectrometry Analysis[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(03): 745-749. |
[11] |
NI Zi-yue1, CHENG Da-wei2, LIU Ming-bo2, HAN Bing2, LI Xiao-jia1,2, CHEN Ji-wen3. The Rapid Detection of La and Ce in Steel Materials by Portable EDXRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2020, 40(09): 2974-2980. |
[12] |
CAI Shun-yan1, 2, ZHOU Jian-bin1*, TUO Xian-guo1, YU Jie1. Optimized Filter Selection for Measuring Copper and Molybdenum Contents by EDXRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2020, 40(06): 1934-1939. |
[13] |
CHEN Ji-wen1,2, NI Zi-yue1, CHENG Da-wei2, LIU Ming-bo2, LIAO Xue-liang2, YANG Bo-zan2, YUE Yuan-bo2, HAN Bing2, LI Xiao-jia1,2. The Rapid Detection of Cadmium in Soil Based on Energy Dispersive X-Ray Flourescence[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(08): 2600-2605. |
[14] |
ZHANG Li-jiao1,2, LAI Wan-chang1, XIE Bo2, 3, HUANG Jin-chu1, LI Dan1, WANG Guang-xi1, YANG Qiang1, CHEN Xiao-li1. The Effect of Filterson on the Determination of Trace Heavy Metal Cd in Light Matrix by Energy Dispersive X-Ray Fluorescence Spectrometry[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2018, 38(06): 1917-1921. |
[15] |
ZHANG Mao-lin1, WANG Li-hua2*, LI Qi-jiang1, WU Jun-ming1. EDXRF and XAFS Analysis on the White Porcelains of Ding Kiln of Successive Dynasties[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2017, 37(05): 1540-1545. |
|
|
|
|