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Drastic induction of MMP-7 by cortisol in the human amnion: implications for membrane rupture at parturition
Lu-Yao Wang1, Wang-Sheng Wang2,3, Ya-Wei Wang1
1Shanghai First Maternity and Infant Hospital, Tongji University School of Medicine, Shanghai, China.
Abstract:
Preterm premature rupture of fetal membranes precedes 30-40% of preterm births. Activation of matrix metalloproteases (MMPs) is the one of the major causes of extracellular matrix (ECM) degradation in membrane rupture. Increased cortisol, regenerated by 11β-hydroxysteroid dehydrogenase 1 in the amnion at parturition, is known to participate in a number of parturition-pertinent events. However, whether cortisol has a role in the regulation of MMPs in the membranes is not known. Here, we addressed this issue using human amnion tissue, the most tensile layer of the membranes. RNA-sequencing revealed that cortisol induced MMP7 expression dramatically in amnion fibroblasts, which was confirmed by real-time quantitative RT-PCR and Western blotting analysis in cortisol-treated amnion explants and fibroblasts. Measurement of collagen IV α5 chain (COL4A5), a substrate for MMP-7, showed that cortisol reduced its extracellular abundance, which was blocked by an antibody against MMP-7. Moreover, increased MMP-7 but decreased COL4A5 abundance was observed in the amnion tissue following labor-initiated spontaneous rupture of membranes. Mechanistic studies showed that cortisol increased the phosphorylation of c-Jun and the expression of c-Fos, the 2 major components of activated protein 1 (AP-1), respectively. The knocking down of c-Fos or c-Jun significantly attenuated the induction of MMP7 expression by cortisol. Chromatin immunoprecipitation assays showed that cortisol stimulated the enrichment of c-Fos and c-Jun at the AP-1 binding site in the MMP7 promoter. The data suggest that induction of MMP7 by cortisol via AP-1 may be a contributing factor to ECM degradation in membrane rupture at parturition.-Wang, L.-Y., Wang, W.-S., Wang, Y.-W., Lu, J.-W., Lu, Y., Zhang, C.-Y., Li, W.-J., Sun, K., Ying, H. Drastic induction of MMP-7 by cortisol in the human amnion: implications for membrane rupture at parturition.
Insights
Cortisol drastically increases matrix metalloproteinase-7 (MMP-7) in human amnion tissue, contributing to extracellular matrix degradation and potential membrane rupture during preterm birth.
Area of Science:
- Reproductive biology and endocrinology
- Biochemistry and molecular biology
- Obstetrics and gynecology
Background:
- Preterm premature rupture of fetal membranes is a major cause of preterm birth.
- Extracellular matrix degradation, mediated by matrix metalloproteinases (MMPs), is implicated in membrane rupture.
- Cortisol levels increase during parturition, but its role in regulating MMPs in fetal membranes is unknown.
Purpose of the Study:
- To investigate the role of cortisol in regulating matrix metalloproteinases (MMPs) in human amnion tissue.
- To elucidate the molecular mechanisms by which cortisol affects MMP expression and extracellular matrix integrity.
Main Methods:
- RNA-sequencing, real-time quantitative RT-PCR, and Western blotting were used to analyze MMP7 expression in human amnion fibroblasts and explants.
- Collagen IV α5 chain (COL4A5) abundance was measured following cortisol treatment.
- Mechanistic studies involved AP-1 component analysis (c-Fos, c-Jun) and chromatin immunoprecipitation assays.
Main Results:
- Cortisol significantly induced MMP7 expression in human amnion fibroblasts and tissue.
- Cortisol treatment reduced extracellular COL4A5 abundance, a substrate for MMP-7, an effect blocked by an MMP-7 antibody.
- Cortisol upregulated MMP7 via the AP-1 pathway by increasing c-Fos and c-Jun phosphorylation and binding to the MMP7 promoter.
Conclusions:
- Cortisol induction of MMP-7 in the human amnion contributes to extracellular matrix degradation.
- This cortisol-mediated pathway, involving AP-1 activation, may play a significant role in membrane rupture during parturition.
- Findings highlight a novel mechanism linking maternal cortisol to fetal membrane integrity.
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