TY - JOUR
T1 - Tepraloxydim metabolite exposure disrupts placental function revealed by single-cell sequencing and metabolomics
AU - Teng, Yunfei
AU - Qi, Zhou
AU - Han, Jie
AU - Duan, Zhao
AU - Cheng, Dong
AU - Xia, Ji
AU - Wang, Aiqin
AU - Yang, Liuxu
AU - Li, Huixia
AU - Zhang, Tingting
N1 - Publisher Copyright:
© 2026
PY - 2026/8/20
Y1 - 2026/8/20
N2 - The impact of pesticide exposure on pregnancy outcomes is of increasing concern, yet the effects of a metabolite of the relatively new herbicide tepraloxydim (DMP) on placental development remain poorly understood. This study combining single-cell RNA sequencing with metabolomics, to systematically investigate the effects of DMP on placental cellular composition, transcriptional programs, and metabolic homeostasis in a mouse model. We found that DMP crosses the placental barrier and is detected in placental tissue with subcellular distribution patterns suggestive of endoplasmic reticulum association, inducing extensive reprogramming of the placental metabolic network, with the branched-chain amino acid (BCAA) degradation pathway emerging as a central node of metabolic disruption. Single-cell transcriptomic analysis further revealed that DMP exposure altered the differentiation trajectories and functional states of major placental cell types, including fibroblasts, trophoblasts, endothelial cells, and macrophages. Specifically, fibroblasts exhibited a pro-fibrotic phenotypic shift, trophoblast differentiation pathways were redirected, endothelial cells showed reduced metabolic plasticity, and macrophages underwent pro-inflammatory polarization. Key metabolic genes such as Cyb5a, LDHA, and MDH1 were upregulated in their respective cell types, suggesting their potential role in DMP-induced placental dysfunction. This study provides the first systematic evidence of the mechanisms by which DMP disrupts placental structure and function through metabolic reprogramming and altered cell fate, offering important experimental basis for assessing its health risks during pregnancy.
AB - The impact of pesticide exposure on pregnancy outcomes is of increasing concern, yet the effects of a metabolite of the relatively new herbicide tepraloxydim (DMP) on placental development remain poorly understood. This study combining single-cell RNA sequencing with metabolomics, to systematically investigate the effects of DMP on placental cellular composition, transcriptional programs, and metabolic homeostasis in a mouse model. We found that DMP crosses the placental barrier and is detected in placental tissue with subcellular distribution patterns suggestive of endoplasmic reticulum association, inducing extensive reprogramming of the placental metabolic network, with the branched-chain amino acid (BCAA) degradation pathway emerging as a central node of metabolic disruption. Single-cell transcriptomic analysis further revealed that DMP exposure altered the differentiation trajectories and functional states of major placental cell types, including fibroblasts, trophoblasts, endothelial cells, and macrophages. Specifically, fibroblasts exhibited a pro-fibrotic phenotypic shift, trophoblast differentiation pathways were redirected, endothelial cells showed reduced metabolic plasticity, and macrophages underwent pro-inflammatory polarization. Key metabolic genes such as Cyb5a, LDHA, and MDH1 were upregulated in their respective cell types, suggesting their potential role in DMP-induced placental dysfunction. This study provides the first systematic evidence of the mechanisms by which DMP disrupts placental structure and function through metabolic reprogramming and altered cell fate, offering important experimental basis for assessing its health risks during pregnancy.
KW - Cell differentiation trajectory
KW - Metabolomics
KW - Placental development
KW - Reproductive toxicology
KW - Single-cell RNA sequencing
KW - Tepraloxydim metabolite
UR - https://www.scopus.com/pages/publications/105040541223
U2 - 10.1016/j.bbrc.2026.154073
DO - 10.1016/j.bbrc.2026.154073
M3 - 文章
AN - SCOPUS:105040541223
SN - 0006-291X
VL - 827
JO - Biochemical and Biophysical Research Communications
JF - Biochemical and Biophysical Research Communications
M1 - 154073
ER -