6533b85efe1ef96bd12bfe12

RESEARCH PRODUCT

Collagen-low molecular weight hyaluronic acid semi-interpenetrating network loaded with gelatin microspheres for cell and growth factor delivery for nucleus pulposus regeneration.

Roman TsarykLuigi AmbrosioRonald E. UngerTeresa RussoShahram GhanaatiShahram GhanaatiC. James KirkpatrickAntonio GloriaLaura AnspachRoberto De Santis

subject

MaleMaterials scienceBiomedical EngineeringMice SCIDMesenchymal Stem Cell TransplantationBiochemistryChondrocyteInjectionsBiomaterialsExtracellular matrixchemistry.chemical_compoundTransforming Growth Factor beta3Tissue engineeringImplants ExperimentalElastic ModulusHyaluronic acidmedicineAnimalsHumansRegenerationHyaluronic AcidIntervertebral DiscMolecular BiologyMesenchymal stem cellViscosityRegeneration (biology)Mesenchymal stem cellMesenchymal Stem CellsGeneral MedicineChondrocyteChondrogenesisMicrospheresMolecular WeightHydrogelmedicine.anatomical_structurechemistrySelf-healing hydrogelsGelatinCollagenRheologyChondrogenesisBiotechnologyBiomedical engineering

description

Intervertebral disc (IVD) degeneration is one of the main causes of low back pain. Current surgical treatments are complex and generally do not fully restore spine mobility. Development of injectable extracellular matrix-based hydrogels offers an opportunity for minimally invasive treatment of IVD degeneration. Here we analyze a specific formulation of collagen-low molecular weight hyaluronic acid (LMW HA) semi-interpenetrating network (semi-IPN) loaded with gelatin microspheres as a potential material for tissue engineering of the inner part of the IVD, the nucleus pulposus (NP). The material displayed a gel-like behavior, it was easily injectable as demonstrated by suitable tests and did not induce cytotoxicity or inflammation. Importantly, it supported the growth and chondrogenic differentiation potential of mesenchymal stem cells (MSC) and nasal chondrocytes (NC) in vitro and in vivo. These properties of the hydrogel were successfully combined with TGF-?3 delivery by gelatin microspheres, which promoted the chondrogenic phenotype. Altogether, collagen-LMW HA loaded with gelatin microspheres represents a good candidate material for NP tissue engineering as it combines important rheological, functional and biological features.

10.1016/j.actbio.2015.03.041https://pubmed.ncbi.nlm.nih.gov/25861947