Functionalized Collagen/Poly(ethylene glycol) Diacrylate Interpenetrating Network Hydrogel Enhances Beta Pancreatic Cell Sustenance.
Natalia Moreno CastellanosElías Cuartas-GómezÓscar A VargasPublished in: Gels (Basel, Switzerland) (2023)
Three-dimensional matrices are a new strategy used to tackle type I diabetes, a chronic metabolic disease characterized by the destruction of beta pancreatic cells. Type I collagen is an abundant extracellular matrix (ECM), a component that has been used to support cell growth. However, pure collagen possesses some difficulties, including a low stiffness and strength and a high susceptibility to cell-mediated contraction. Therefore, we developed a collagen hydrogel with a poly (ethylene glycol) diacrylate (PEGDA) interpenetrating network (IPN), functionalized with vascular endothelial growth factor (VEGF) to mimic the pancreatic environment for the sustenance of beta pancreatic cells. We analyzed the physicochemical characteristics of the hydrogels and found that they were successfully synthesized. The mechanical behavior of the hydrogels improved with the addition of VEGF, and the swelling degree and the degradation were stable over time. In addition, it was found that 5 ng/mL VEGF-functionalized collagen/PEGDA IPN hydrogels sustained and enhanced the viability, proliferation, respiratory capacity, and functionality of beta pancreatic cells. Hence, this is a potential candidate for future preclinical evaluation, which may be favorable for diabetes treatment.
Keyphrases
- vascular endothelial growth factor
- extracellular matrix
- tissue engineering
- wound healing
- induced apoptosis
- drug delivery
- endothelial cells
- hyaluronic acid
- type diabetes
- cell cycle arrest
- cardiovascular disease
- cell therapy
- quantum dots
- signaling pathway
- endoplasmic reticulum stress
- single cell
- stem cells
- metabolic syndrome
- risk assessment
- mesenchymal stem cells
- adipose tissue
- replacement therapy
- molecularly imprinted
- insulin resistance
- mass spectrometry
- glycemic control
- smooth muscle
- combination therapy
- high resolution
- simultaneous determination
- oxide nanoparticles