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Updated: May 17, 2026

Experimental Strategies to Bridge Large Tissue Gaps in the Injured Spinal Cord after Acute and Chronic Lesion
Published on: April 5, 2016
MRI in Sheep Model for Myelomeningocele Repair Using a Novel Polymer and Other Dural Patches
Usha D Nagaraj1,2, Marc Oria2,3, Soner Duru3
1Department of Radiology and Medical Imaging at Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio, USA.
Objective:
To compare postnatal MRI outcomes after prenatal myelomeningocele repair using three different dural substitutes.
Method:
32 sheep fetuses were included, with 34.3%(11/32) serving as healthy controls and the remaining undergoing prenatal spinal lumbar defect creation to recreate a myelomeningocele in the fetus. 90.5% (19/21) of sheep fetuses with surgically created MMC underwent repair using traditional collagen (Durapair) patch (n = 6), HUC matrix (NEOX RT) patch (n = 6), or a novel PLA/PCL patch (n = 7). All sheep underwent brain and spine MRI within 24 h after delivery. Images were reviewed in Research PACS by a pediatric neuroradiologist and were assessed for ventricle size, degree of hindbrain herniation, spinal cord integrity, and fluid collection at the repair site.
Results:
There was a significant reduction in hindbrain herniation in all three intervention groups when compared with MMC without prenatal intervention. There was increased incidence of complete spinal cord defect (3/7), pseudomeningocele (5/7) and intraspinal cyst (2/7) at the repair site of the PLA/PCL patch compared with the Durapair and NEOX RT patches.
Conclusions:
This study demonstrates equal efficacy in reducing hindbrain herniation in MMC repair by Durapair, NEOX RT, and PLA/PCL patches by MRI. Future studies analyzing the interaction of the patches with the host tissue in animal models and clinical trials will help to better determine the true safety and efficacy of these novel patches for clinical use.

