6533b871fe1ef96bd12d26f2
RESEARCH PRODUCT
Vascular Endothelial Growth Factor-Releasing Microspheres Based on Poly(ε-Caprolactone-PEG-ε-Caprolactone)-b-Poly(L-Lactide) Multiblock Copolymers Incorporated in a Three-Dimensional Printed Poly(Dimethylsiloxane) Cell Macroencapsulation Device
Karina C ScheinerFergal CoulterRoel F Maas-bakkerGiulio GhersiThanh T NguyenRob SteendamGarry P DuffyWim E HenninkEoin D O'cearbhaillRobbert J KokAfd PharmaceuticsPharmaceuticssubject
Vascular Endothelial Growth Factor APDMS implantsTime FactorsDrug CompoundingPolyestersPharmaceutical Science02 engineering and technology030226 pharmacology & pharmacyPolyethylene Glycols03 medical and health scienceschemistry.chemical_compound0302 clinical medicinePEG ratioHyaluronic acidHuman Umbilical Vein Endothelial CellsmedicineHumansDimethylpolysiloxanesHyaluronic Aciddiabetes type 1Cells CulturedCell Proliferationmultiblock copolymersDrug ImplantsDrug CarriersPancreatic isletsartificial pancreasBiomaterial021001 nanoscience & nanotechnologyControlled releaseVEGFMicrospheres3. Good healthVascular endothelial growth factorDrug Liberationmedicine.anatomical_structurechemistryPrinting Three-DimensionalAngiogenesis Inducing AgentsPancreatic islet transplantationcontrolled release PDMS implants VEGF multiblock copolymers diabetes type 1 artificial pancreas0210 nano-technologycontrolled releaseCaprolactoneBiomedical engineeringdescription
Pancreatic islet transplantation is a promising advanced therapy that has been used to treat patients suffering from diabetes type 1. Traditionally, pancreatic islets are infused via the portal vein, which is subsequently intended to engraft in the liver. Severe immunosuppressive treatments are necessary, however, to prevent rejection of the transplanted islets. Novel approaches therefore have focused on encapsulation of the islets in biomaterial implants which can protect the islets and offer an organ-like environment. Vascularization of the device’s surface is a prerequisite for the survival and proper func- tioning of transplanted pancreatic islets. We are pursuing a prevascularization strategy by incorporation of vascular endothelial growth factor (VEGF)-loaded microspheres in 3-dimensional printed poly(dimethylsiloxane)-based devices prior to their prospective loading with transplanted cells. Micro- spheres (~50 mm) were based on poly(ε-caprolactone-PEG-ε-caprolactone)-b-poly(L-lactide) multiblock copolymers and were loaded with 10 mg VEGF/mg microspheres, and subsequently dispersed in a hy- aluronic acid carrier liquid. In vitro release studies at 37C demonstrated continuous release of fully bioactive VEGF for 4 weeks. In conclusion, our results demonstrate that incorporation of VEGF-releasing microspheres ensures adequate release of VEGF for a time window of 4 weeks, which is attractive in view of the vascularization of artificial pancreas implants.
year | journal | country | edition | language |
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2020-01-01 |