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Synergetic Use of Neural Precursor Cells and Self-assembling Peptides in Experimental Cervical Spinal Cord Injury
Published on: February 23, 2015
Tea egg-inspired high mechanical strength hydrogel microneedle patch combined with tea polyphenol-magnesium
Lin Lin1, Jingze Li2, Guosong Han1
1Department of Orthopedics, The Third Affiliated Hospital of Anhui Medical University (The First People's Hospital of Hefei), 390 Huaihe Road, Luyang District, Hefei, Anhui, 230001, China.
Abstract:
Restoring motor function remains a primary goal in the treatment of spinal cord injury (SCI). However, the inflammatory microenvironment that develops after injury poses a significant barrier to effective neural repair. Addressing this challenge requires the development of bioactive scaffolds with potent anti-inflammatory and antioxidant properties, as well as reduced implantation-induced damage. In this study, we created a novel composite biomaterial scaffold with high mechanical strength and excellent anti-inflammatory and antioxidant capabilities by dispersing in situ self-assembled tea polyphenol-magnesium nanoparticles (TPs-Mg NPs) into gelatin methacryloyl hydrogel (GelMA) microneedle patches (TPs-Mg MN). Our results demonstrate that TPs-Mg MN effectively modulates the inflammatory response by promoting macrophage polarization through suppression of the NF-κB signaling pathway, thereby alleviating reactive oxygen species (ROS)-mediated oxidative damage. Following implantation in a rat SCI model, TPs-Mg MN significantly enhanced motor functional recovery. Behavioral analyses revealed that this recovery was achieved through multiple mechanisms, including reduced oxidative stress, inflammation, and scar formation at the injury site, as well as enhanced angiogenesis and neurogenesis within the spinal cord tissue. This study presents a multifunctional combinatorial strategy for mitigating ROS-induced oxidative stress, offering broad potential applications in SCI and other central nervous system disorders.
