Abstract
Objective: To develop a proof-of-concept MRI-based biomechanical framework for assessing full-field amniotic membrane responses under contraction-induced, fluid-mediated loading and preliminarily exploring their relevance to PROM/PPROM rupture risk. Methods: Subject-specific amniotic sac geometries were reconstructed from MRI data using semi-automated segmentation and incorporated into an integrated finite element model of the gravid abdomen. Amniotic fluid was modeled as nearly incompressible, and time-varying uterine contraction pressures were transmitted to the amniotic membrane under quasi-static conditions. Strain energy density(SED) and maximum principal stress were quantified, and robust z-scores were used to preliminarily assess inter-subject rupture-risk patterns. Results: In five pregnant women, SED and maximum principal stress showed pronounced spatial heterogeneity and were substantially amplified by coupled uterine contraction–amniotic fluid loading. Compared with equal-volume ellipsoidal models, MRI-based individualized models produced distinct response magnitudes and spatial localizations. Higher robust z-score–based mechanical metrics tended to occur in subjects with earlier gestational ages at delivery, suggesting preliminary consistency with clinical risk-related status. Conclusion: This proof-of-concept MRI-based framework demonstrates the feasibility of assessing spatially heterogeneous amniotic membrane mechanics under contraction-induced, fluid-mediated loading. The derived metrics may inform future PROM/PPROM risk assessment but require validation in larger clinical cohorts.
| Original language | English |
|---|---|
| Pages (from-to) | 144-151 |
| Number of pages | 8 |
| Journal | Placenta |
| Volume | 181 |
| DOIs | |
| State | Published - 24 Jun 2026 |
Keywords
- Amniotic fluid
- Amniotic membrane
- MRI-Based modeling
- Prelabor rupture of membranes
- Preterm prelabor rupture of membranes
- Uterine contractions
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