Plos iconPlosSep 16, 2026 ~1 min source read

Multiscale computational modeling to quantify how spiral artery remodeling alters wall shear stress on placental villi

by Armita Najmi, Noelia Grande Gutiérrez Proper placental development is essential for a healthy pregnancy. It depends on the remodeling of the maternal uterine vasculature to meet fetal demands while maintaining physiological intervillous space (IVS) hemodynamics for biochemical exchange.

Multiscale computational modeling to quantify how spiral artery remodeling alters wall shear stress on placental villi

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by Armita Najmi, Noelia Grande Gutiérrez Proper placental development is essential for a healthy pregnancy.

It depends on the remodeling of the maternal uterine vasculature to meet fetal demands while maintaining physiological intervillous space (IVS) hemodynamics for biochemical exchange.

Despite this association, the mechanistic link between maternal blood flow and villous development remains unclear.

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by Armita Najmi, Noelia Grande Gutiérrez Proper placental development is essential for a healthy pregnancy. It depends on the remodeling of the maternal uterine vasculature to meet fetal demands while maintaining physiological intervillous space (IVS) hemodynamics for biochemical exchange. Despite this association, the mechanistic link between maternal blood flow and villous development remains unclear.

How it works

  • We propose a novel multiscale computational framework to quantify WSS on placental villi at the end of the second trimester, when WSS may affect terminal villi development.
  • Our results show that IVS velocity is the primary determinant of mean villous WSS, whereas villous type and orientation have comparatively weaker effects.
  • Here, we investigate whether incomplete SA remodeling alters IVS hemodynamics and increases wall shear stress (WSS) on placental villi, potentially impairing terminal villi formation.
  • Computing WSS throughout an entire placentone is challenging due to uncertainty in placental microstructure and the computational cost of resolving microscale hemodynamics.
  • A macroscale placentone model is used to compute IVS velocities, which are coupled with microscale models of intermediate villi to estimate villous WSS across physiologically relevant flow conditions.

What to take from it

We simulate IVS hemodynamics in healthy pregnancy and varying degrees of incomplete SA remodeling. In healthy placentones, most villi experience a mean WSS of 0.001–1 Pa, with higher stresses localized near the free-of-villi cavity. By correlating these estimates with regions naturally devoid of terminal villi, we identify a mean WSS range of approximately 0.71–1.44 Pa that may inhibit terminal villi formation.

Details worth keeping

Terminal villi, the primary sites of feto-maternal exchange, exhibit impaired development in pregnancies complicated by intrauterine growth restriction and preeclampsia, which are also associated with incomplete spiral artery (SA) remodeling.

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