Kisspeptin prevents pregnancy loss by modulating the immune microenvironment at the maternal-fetal interface in recurrent spontaneous abortion

Am J Reprod Immunol. 2024 Feb;91(2):e13818. doi: 10.1111/aji.13818.

Abstract

Problem: Immune factors are crucial in the development of recurrent spontaneous abortion (RSA). This study aimed to investigate whether kisspeptin regulates immune cells at the maternal-fetal interface and whether G protein-coupled receptor 54 (GPR54) is involved in this process, through which it contributes to the pathogenesis of RSA.

Method of study: Normal pregnancy (NP) (CBA/J × BALB/c) and RSA (CBA/J × DBA/2) mouse models were established. NP mice received tail vein injections of PBS and KP234 (blocker of kisspeptin receptor), whereas RSA mice received PBS and KP10 (active fragment of kisspeptin). The changes in immune cells in mouse spleen and uterus were assessed using flow cytometry and immunofluorescence. The expression of critical cytokines was examined by flow cytometry, ELISA, Western blotting, and qPCR. Immunofluorescence was employed to detect the coexpression of FOXP3 and GPR54.

Results: The findings revealed that the proportion of Treg cells, MDSCs, and M2 macrophages in RSA mice was lower than that in NP mice, but it increased following the tail vein injection of KP10. Conversely, the proportion of these cells was reduced in NP mice after the injection of KP234. However, the trend of γδT cell proportion change is contrary to these cells. Furthermore, FOXP3 and GPR54 were coexpressed in mouse spleen and uterus Treg cells as well as in the human decidua samples.

Conclusion: Our results suggest that kisspeptin potentially participates in the pathogenesis of RSA by influencing immune cell subsets at the maternal-fetal interface, including Treg cells, MDSC cells, γδT cells, and M2 macrophages.

Keywords: GPR54; MDSCs; Treg; kisspeptin; macrophages; recurrent spontaneous abortion; γδT.

MeSH terms

  • Abortion, Habitual* / metabolism
  • Abortion, Spontaneous*
  • Animals
  • Decidua
  • Female
  • Forkhead Transcription Factors / metabolism
  • Humans
  • Kisspeptins / genetics
  • Kisspeptins / metabolism
  • Mice
  • Mice, Inbred CBA
  • Mice, Inbred DBA
  • Pregnancy

Substances

  • Kisspeptins
  • Forkhead Transcription Factors