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Updated: May 28, 2026

Development of Combinatorial Therapeutics for Spinal Cord Injury using Stem Cell Delivery
Published on: June 7, 2024
Modeling Release Scaffolds for Spinal Cord Tissue Regeneration After Injury Using COMSOL Simulation
Tasnim Hasan Al Dabbas1, Ayat Bozeya1, Ali Al Dabbas2
1Institute of Nanotechnology, Jordan University of Science and Technology, Irbid 22110, Jordan.
Abstract:
The current study illustrates the modeling of a biocompatible poly γ-glutamic acid (PGA)-chitosan-rGO nanocomposite hydrogel scaffold, which showed a promising novel scaffold for stimulating central nerve regeneration that addresses the shortcomings of recent therapies and improves tissue engineering, controls inflammation, and restores lost functions after spinal cord injuries (SCIs). In the implementation part of the study, the COMSOL program's top-notch modeling of a detailed investigation of how a scaffold's in vivo diffusion affects injured neurons. Michaelis-Menten kinetics is used to characterize the enzyme process of releasing the outer covering shell of the scaffold, PGA, from a biomaterial matrix to the nerve cell. Results suggested that the injectable hydrogel scaffold theoretically reduces extracellular glutamate concentrations, presenting a potential mechanism to mitigate localized excitotoxicity. Future in vivo experimental validation is required to determine if this reduction prevents neural cell death.

