The Role of Ferroptosis in Placental-Related Diseases

Reprod Sci. 2023 Jul;30(7):2079-2086. doi: 10.1007/s43032-023-01193-0. Epub 2023 Mar 17.

Abstract

Ferroptosis is a recently identified form of programmed cell death which is different from apoptosis, pyroptosis, necrosis, and autophagy. It is uniquely defined by redox-active iron-dependent hydroxy-peroxidation of polyunsaturated fatty acid (PUFA)-containing phospholipids and a loss of lipid peroxidation repair capacity. Ferroptosis has recently been implicated in multiple human diseases, such as tumors, ischemia-reperfusion injury, acute kidney injury, neurological diseases, and asthma among others. Intriguingly, ferroptosis is associated with placental physiology and trophoblast injury. Circumstances such as accumulation of lipid reactive oxygen species (ROS) due to hypoxia-reperfusion and anoxia-reoxygenation of trophoblast during placental development, the abundance of trophoblastic iron and PUFA, physiological uterine contractions, or pathological placental bed perfusion, cause placental trophoblasts' susceptibility to ferroptosis. Ferroptosis of trophoblast can cause placental dysfunction, which may be involved in the occurrence and development of placenta-related diseases such as gestational diabetes mellitus, preeclampsia, fetal growth restriction, preterm birth, and abortion. The regulatory mechanisms of trophoblastic ferroptosis still need to be explored further. Here, we summarize the latest progress in trophoblastic ferroptosis research on placental-related diseases, provide references for further understanding of its pathogenesis, and propose new strategies for the prevention and treatment of placental-related diseases.

Keywords: Ferroptosis; Iron; Lipid peroxidation; Placenta; Pregnancy.

Publication types

  • Review

MeSH terms

  • Apoptosis
  • Female
  • Ferroptosis*
  • Humans
  • Hypoxia / metabolism
  • Infant, Newborn
  • Iron
  • Lipid Peroxidation
  • Placenta / metabolism
  • Placenta Diseases* / metabolism
  • Pregnancy
  • Premature Birth* / metabolism

Substances

  • Iron