Comprehensive LC-HRMS metabolomics analyses for the estimation of environmental inputs of altrenogest in pig breeding

被引:7
作者
Liesenfeld, Sabrina [1 ,2 ]
Steliopoulos, Panagiotis [1 ]
Wenig, Svenja [1 ]
Gottstein, Vera [1 ]
Hamscher, Gerd [2 ]
机构
[1] CVUA Karlsruhe, Dept Vet Drug Residue Anal, Weissenburger Str 3, D-76187 Karlsruhe, Germany
[2] Justus Liebig Univ, Inst Food Chem & Food Biotechnol, Heinrich Buff Ring 17, D-35392 Giessen, Germany
关键词
Altrenogest; Metabolites; Urine; Environmental input; Non-targeted LC-HRMS; Metabolomics; MASS-SPECTROMETRY; MENSTRUAL-CYCLE; GONADOTROPINS; PROGESTERONE; SURFACE; URINE; WATER;
D O I
10.1016/j.chemosphere.2021.132353
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Altrenogest (ALT), a synthetic progestogen, is used in pig farming for estrus synchronization in gilts. Residues of ALT and its metabolites may reach the aquatic environment via the spread of liquid manure and may present a risk for fish and other higher aquatic organisms due to its endocrine disrupting potential. A pilot study was conducted in which spot urine samples from ALT-treated and non-medicated gilts were collected. We applied LCHRMS analysis to perform targeted analysis of ALT and known metabolites as well as non-targeted metabolomics analyses to find previously unknown metabolites. The targeted investigation showed that glucuronide conjugates of ALT and its photo-isomerization product are main urinary metabolites of ALT in gilts. Furthermore, an unknown isomerization product of ALT was observed at trace level, whereas ALT and ALT sulfate were not found. The chemometric analysis of non-targeted data revealed a clear difference between ALT-treated gilts and control animals. Furthermore, a hydroxylated ALT glucuronide was identified as highly significant in the ALT-treated group. Additional biomarker annotation and pathway mapping revealed changes in the metabolism of ALTtreated animals which can be explained by ALT's hormonal action. This study illustrates the exceptional potential of LC-HRMS and metabolomics for the detection of potentially new environmental contaminants with high biological activity. Further advantages of the method described are the sampling during routine breeding conditions, a relatively small number of animals required and no particular stress for the animals.
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页数:9
相关论文
共 36 条
[31]  
Steliopoulos P, 2013, J VERBRAUCH LEBENSM, V8, P71, DOI 10.1007/s00003-013-0812-5
[32]   Use of in vitro technologies to study phase II conjugation in equine sports drug surveillance [J].
Taylor, Polly ;
Scarth, James P. ;
Hillyer, Lynn L. .
BIOANALYSIS, 2010, 2 (12) :1971-1988
[33]   Variation in LH pulsatility during 24 h after a postweaning altrenogest treatment in relation to follicle development in primiparous sows [J].
van Leeuwen, J. J. J. ;
Martens, M. R. T. M. ;
Jourquin, J. ;
Driancourt, M. A. ;
Kemp, B. ;
Soede, N. M. .
ANIMAL REPRODUCTION SCIENCE, 2011, 126 (1-2) :101-107
[34]   Environmental Photochemistry of Altrenogest: Photoisomerization to a Bioactive Product with Increased Environmental Persistence via Reversible Photohydration [J].
Wammer, Kristine H. ;
Anderson, Kyler C. ;
Erickson, Paul R. ;
Kliegman, Sarah ;
Moffatt, Marianna E. ;
Berg, Stephanie M. ;
Heitzman, Jackie A. ;
Pflug, Nicholas C. ;
McNeill, Kristopher ;
Martinovic-Weigelt, Dalma ;
Abagyan, Ruben ;
Cwiertny, David M. ;
Kolodziej, Edward P. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2016, 50 (14) :7480-7488
[35]   Sorption, desorption, and transformation of synthetic progestins in soil and sediment systems [J].
Yang, Xingjian ;
Dai, Xiong ;
Zhang, Yulong ;
Lin, Hang ;
Wang, Jinjin ;
He, Zhili ;
Li, Yongtao .
GEODERMA, 2020, 362
[36]  
Yang XJ, 2019, ENVIRON SCI-PROC IMP, V21, P1650, DOI [10.1039/c9em00305c, 10.1039/C9EM00305C]