This one-year project was carried out in partnership with three different institutions: the Rudjer Boskovic Institute (RBI, host), the University of Zagreb (Technical Textile Faculty, TTF) and the University of Oxford (NDORMS).
To achieve the aim, three secondary objectives were set:
1. Manufacture electrospun yarns loaded with curcumin at different concentrations
Polymer solutions with various amounts of antioxidant (curcumin) were prepared and were subsequently electrospun into continuous filaments at NDORMS. The main polymer used was polydioxanone (PDO), a degradable polyester already widely used in clinics (mostly as suture material). PDO electrospun filaments were successfully prepared with various amounts of curcumin: 0%, 0.001%, 0.01%, 0.1%, 1% and 10% (weight to weight of PDO).
2. Measure the physicochemical properties of the yarns and determine the release profiles of the antioxidant.
The physio-chemical characterisation of the filaments was performed with the various methods such as electron microscopy, tensile testing and mass spectrometry. We have shown that high concentrations of curcumin (≥1%) led to smaller fibre diameters, resulting in improved mechanical properties of the filament and faster release. Interestingly, smaller concentrations did not influence the main properties of PDO filaments.
3. Evaluate the biocompatibility of electrospun yarns using a human fibroblast model cultured in induced oxidative stress conditions and assess the cellular response.
For this objective, we evaluated the biocompatibility of electrospun yarns by cultured NHDFs in induced oxidative stress conditions. Our results showed that filaments with high concentration of curcumin (1% and 10%) inhibited the proliferation of NHDFs or caused apoptosis. Filaments with 10% curcumin were also shown to increase the cell antioxidant activity, indicating the presence of higher amounts of ROS, a result of curcumin’s toxicity. At lower concentrations (< 0.1% in the filaments), curcumin stimulated the proliferation of NHDFs compared to the no filament control.
Overall, these findings suggested that PDO filament loaded with low amounts of curcumin, in particular below 0.1%, are more promising materials for stimulating tissue repair than those loaded with high concentrations . It also highlighted the need to explore lower concentrations for other polymers (currently researchers are mostly working with values above 1%), in particular those similar to PDO, such as polycaprolactone and other degradable polyesters.
A manuscript presenting these findings has been submitted for publication (January 2017). We have also published an original review in Biomaterials (IF: 8.4) another top ranked journal, in which we highlight the link between oxidative stress and the fate of biomaterials. In addition, we have presented part of our results at two international conferences (BSTE 2016 and Electrospin2016).
It is worth mentioning that NDORMS is about to begin a clinical trial with PDO electrospun sutures (Bioyarn project). This could become a platform for the translation of curcumin-loaded PDO filaments into clinics. We hope to continue the development and evaluation of antioxidant-loaded electrospun materials as a collaboration between RBI, TTF and NDORMS.