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Updated: Aug 20, 2026

Modeling Ascending Vaginal Infection, Preterm Birth, and Neonatal Morbidity in Mice
Published on: October 10, 2025
Bacteria and inflammatory cells in fetal membranes do not always cause preterm labor
Jennifer H Steel1, Sotiris Malatos, Nigel Kennea
1Department of Obstetrics & Gynaecology, Wolfson and Weston Research Centre for Family Health, Institute of Reproductive and Developmental Biology, London W12 0NN, United Kingdom.
Abstract:
Intrauterine infection has been frequently linked with preterm labor before 30 wk of human pregnancy. Many different species of organisms have been detected, leading to the suggestion that infection-induced preterm labor is a generic inflammatory response to organisms rather than a specific response to a limited number of pathogens. The detection of organisms by microbiological culture is a laborious and unreliable process, so the aim of this study was to harness modern molecular techniques to detect organisms in tissues from human pregnancy. A DNA probe specific for conserved regions of bacterial 16S ribosomal RNA sequence was designed and labeled with fluorescein for fluorescence in situ hybridization. Organisms were detected in the great majority (>80%) of fetal membranes after prolonged premature rupture of the fetal membranes and after preterm labor, which was consistent with previous data. Organisms were also detected in fetal membranes after preterm delivery without labor and in term deliveries (with or without labour). Inflammatory cells were found frequently in the amnion or chorion of preterm fetal membranes but not in term tissues. Our primary finding is that fluorescence in situ hybridization is an appropriate method to detect organisms in human fetal membranes. In addition, our data show that bacteria may be present in fetal membranes without necessarily causing an inflammatory response, so the mere presence of bacteria may not be sufficient to cause preterm labor.
Insights
Intrauterine bacterial presence is common in pregnancy complications. However, detecting bacteria in fetal membranes using fluorescence in situ hybridization shows their presence doesn't always trigger preterm labor.
Area of Science:
- Microbiology
- Obstetrics
- Molecular Biology
Background:
- Intrauterine infection is a known cause of preterm labor.
- Previous detection methods for organisms are unreliable.
- Preterm labor may be a general inflammatory response to various pathogens.
Purpose of the Study:
- To develop and validate a molecular technique for detecting organisms in human pregnancy tissues.
- To investigate the association between organism presence and preterm labor.
Main Methods:
- Designed a DNA probe for bacterial 16S ribosomal RNA.
- Utilized fluorescence in situ hybridization (FISH) for organism detection in fetal membranes.
- Examined tissues from preterm and term deliveries, with and without labor.
Main Results:
- FISH successfully detected organisms in over 80% of fetal membranes after prolonged premature rupture and preterm labor.
- Organisms were also found in preterm deliveries without labor and in term deliveries.
- Inflammatory cells were prevalent in preterm membranes but absent in term tissues.
- Bacteria were detected in fetal membranes without accompanying inflammatory responses.
Conclusions:
- Fluorescence in situ hybridization is a suitable method for detecting organisms in human fetal membranes.
- The mere presence of bacteria in fetal membranes may not be sufficient to induce preterm labor.
- Further research is needed to understand the mechanisms linking intrauterine infection and preterm birth.
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