The Role of Danger Associated Molecular Patterns in Human Fetal Membrane Weakening

Justin G Padron1, Chelsea A Saito Reis2, Claire E Kendal-Wright2,3

  • 1Anatomy, Biochemistry and Physiology, John A. Burns School of Medicine, University of Hawai'i at Mānoa, Honolulu, HI, United States.

Insights

Cellular stress and inflammation, involving Danger Associated Molecular Patterns (DAMPs) and Pattern Recognition Receptors (PRRs), contribute to fetal membrane weakening and preterm birth. Understanding these pathways may lead to new treatments.

Area of Science:

  • Obstetrics and Gynecology
  • Immunology
  • Cellular Biology

Background:

  • Cellular stress, particularly from stretch, is increasingly recognized as a factor initiating parturition.
  • Danger Associated Molecular Patterns (DAMPs) are key molecules released during cellular stress, initiating inflammation via Pattern Recognition Receptors (PRRs).
  • Toll-like Receptors (TLRs), a type of PRR, detect both pathogen and danger signals, activating inflammatory pathways like Nuclear Factor Kappa-B (NF-kB).

Purpose of the Study:

  • To review current knowledge on the role of DAMPs and PRRs in the weakening of human fetal membranes.
  • To explore the clinical potential of targeting DAMP-PRR pathways for preventing and treating preterm birth.

Main Methods:

  • Literature review of studies on DAMPs, PRRs, and their role in fetal membrane integrity.
  • Analysis of inflammatory cascades initiated by DAMPs and Pathogen Associated Molecular Patterns (PAMPs) in fetal membranes.
  • Discussion of potential therapeutic strategies targeting these molecular pathways.

Main Results:

  • DAMPs and PAMPs, through PRR activation, can induce inflammation and tissue remodeling, leading to fetal membrane weakening.
  • Inflammation, driven by DAMPs and PAMPs, is implicated in infection-associated preterm birth and preterm Premature Rupture of the Membranes (pPROM).
  • Mesenchymal and epithelial cells in the amnion play a crucial role in maintaining fetal membrane integrity, and their response to DAMPs is significant.

Conclusions:

  • DAMP-PRR signaling is a critical pathway involved in fetal membrane weakening and preterm birth.
  • Targeting sterile inflammation mediated by DAMPs offers potential for novel therapeutic interventions.
  • Further research into these pathways can inform the development of strategies to reduce the incidence of preterm birth and pPROM.