A Hyaluronic Acid Demilune Scaffold and Polypyrrole-Coated Fibers Carrying Embedded Human Neural Precursor Cells and Curcumin for Surface Capping of Spinal Cord Injuries.
Hoda ElkhenanyPablo BonillaEsther GiraldoAna AlastrueMichael J EdelMaría Jesus VicentFernando Gisbert RocaCristina Martínez RamosLaura Rodríguez DobladoManuel Monleón PradasVictoria Moreno ManzanoPublished in: Biomedicines (2021)
Tissue engineering, including cell transplantation and the application of biomaterials and bioactive molecules, represents a promising approach for regeneration following spinal cord injury (SCI). We designed a combinatorial tissue-engineered approach for the minimally invasive treatment of SCI-a hyaluronic acid (HA)-based scaffold containing polypyrrole-coated fibers (PPY) combined with the RAD16-I self-assembling peptide hydrogel (Corning ® PuraMatrix™ peptide hydrogel (PM)), human induced neural progenitor cells (iNPCs), and a nanoconjugated form of curcumin (CURC). In vitro cultures demonstrated that PM preserves iNPC viability and the addition of CURC reduces apoptosis and enhances the outgrowth of Nestin-positive neurites from iNPCs, compared to non-embedded iNPCs. The treatment of spinal cord organotypic cultures also demonstrated that CURC enhances cell migration and prompts a neuron-like morphology of embedded iNPCs implanted over the tissue slices. Following sub-acute SCI by traumatic contusion in rats, the implantation of PM-embedded iNPCs and CURC with PPY fibers supported a significant increase in neuro-preservation (as measured by greater βIII-tubulin staining of neuronal fibers) and decrease in the injured area (as measured by the lack of GFAP staining). This combination therapy also restricted platelet-derived growth factor expression, indicating a reduction in fibrotic pericyte invasion. Overall, these findings support PM-embedded iNPCs with CURC placed within an HA demilune scaffold containing PPY fibers as a minimally invasive combination-based alternative to cell transplantation alone.
Keyphrases
- tissue engineering
- spinal cord injury
- hyaluronic acid
- spinal cord
- combination therapy
- cell migration
- particulate matter
- minimally invasive
- growth factor
- neuropathic pain
- air pollution
- endothelial cells
- cell therapy
- heavy metals
- single cell
- polycyclic aromatic hydrocarbons
- cell cycle arrest
- poor prognosis
- stem cells
- oxidative stress
- cell death
- high glucose
- induced pluripotent stem cells
- liver failure
- water soluble
- risk assessment
- pluripotent stem cells
- mass spectrometry
- drug delivery
- extracorporeal membrane oxygenation
- bone marrow
- long non coding rna
- flow cytometry
- subarachnoid hemorrhage
- brain injury
- drug induced
- molecularly imprinted
- hepatitis b virus
- cell proliferation