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Updated: Sep 3, 2026

Assessment of Maternal Vascular Remodeling During Pregnancy in the Mouse Uterus
Published on: December 5, 2015
Structural and Mechanical Changes to The Extracellular Matrix In Human Umbilical Arteries In Pregnancies Complicated
Kara E Peak1, Gajan Dileepan1, Weihua Guan2
1Department of Biomedical Engineering, University of Minnesota, 312 Church St SE 7-230 NHH, Minneapolis, MN 55455.
Abstract:
The umbilical cord serves as a critical lifeline, connecting the fetus to the pregnant individual. Stillbirth, fetal death at or beyond 20 weeks' gestation, can occur due to developmental anomalies or complications of the umbilical cord. Gestational diabetes (GDM), which affects 8% of pregnancies in the United States, is associated with vascular abnormalities of the placenta and umbilical cord. While cellular and microstructural changes in the umbilical vasculature have been observed in pregnancies complicated by gestational diabetes, it is unknown if these influence the macroscale mechanical properties. Human umbilical arteries and veins from healthy pregnancies (n = 10) and from pregnancies with gestational diabetes requiring insulin for glucose management (n = 5) underwent quantitative histological analysis and circumferential ring testing to characterize the intact tissue and decellularized matrix. Collagen birefringence showed healthy umbilical arteries had a higher ratio of thick to thin collagen fibers than GDM. A two-way ANOVA showed the viscoelastic behavior of the decellularized umbilical arteries was significantly affected by disease (p = 0.01) and pin strain (p = 0.02). GDM decellularized umbilical arteries had a significantly (p = 0.04) lower 1st Piola-Kirchhoff stress than healthy at maximum pin strain. However, these differences did not persist within intact umbilical arteries. Additionally, there were no significant differences in the extracellular matrix content or mechanical properties between healthy and GDM umbilical veins. The results indicate umbilical arteries from pregnancies complicated by GDM have altered mechanical properties of the extracellular matrix, possibly due to decreased collagen fiber size.
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