Xin-Xin Zhang, Ye-Xin Luo, Cheng-Fang Sun, Rui Pan, Yu-Xi Wu, Zhi Yuan, Xin-Run Wang, Xu-Dong Zhang, Lan-Lan Wu, Xiang-Yu Yao, Zhan-Dong Song, Wei Chang, Tian Wei, Pan-Yuan Cai, Tian-Ci Zhang, Yong-Wei Xiong, De-Xiang Xu, Hua Wang, Hua-Long Zhu
The role and underlying mechanisms of placental ferroptosis in fetal growth restriction (FGR) induced by environmental stress remain poorly understood. Our population-based study showed elevated ferroptosis levels in all-cause FGR placentae. Environmental stressor cadmium (Cd) was used to generate an FGR mouse model, which exhibited elevated placental ferroptosis. Ferroptosis inhibitor ferrostatin-1 reversed environmental Cd-induced FGR. Targeted oxidized lipidomics identified the peroxisome as a target organelle for prenatal Cd-induced placental ferroptosis. Furthermore, Cd induced excessive activation of PEX5-dependent pexophagy in placentae. By establishing a placental Pex5-knockdown mouse, pexophagy was confirmed to drive environmental Cd-induced placental ferroptosis. Mechanistically, pexophagy drives the degradation of the H2O2-scavenging enzyme and the fatty-acid β-oxidation enzymes, thereby causing lipid peroxidation and placental ferroptosis. Notably, environmental Cd upregulated PEX2, an E3 ligase mediating PEX5 monoubiquitination, thereby driving pexophagy and placental ferroptosis. Furthermore, METTL14-mediated m6A modification enhanced the stability of placental PEX2 mRNA in an ELAVL1-dependent manner under environmental Cd. SAH, a METTL14 inhibitor, alleviated Cd-induced placental pexophagy, ferroptosis, and FGR. High-temperature also decreased GPX4 and increased PEX2, PEX5, and METTL14 in placentae. Overall, our findings uncover a novel m6A-PEX2-PEX5 axis driving pexophagy-dependent placental ferroptosis, offering placental pexophagy as a therapeutic target for FGR and fetal-origin adult diseases.