Loading...
Research Project
Not Available
Funder
Authors
Publications
Localized cancer photodynamic therapy approach based on core–shell electrospun nanofibers
Publication . Costa, Sofia M.; Lourenço, Leandro M.O.; Calhelha, Ricardo C.; Calejo, Isabel; Barrias, Cristina C.; Fangueiro, Raul; Ferreira, Diana P.
Photodynamic therapy (PDT) has been considered a promising treatment for several types of cancer,
including cervical cancer. Localized drug delivery systems (DDSs) based on nanofibers produced by
electrospinning have emerged as a powerful platform to carry and deliver photosensitizers (PSs) onto or
adjacent to the tumor site, thereby promoting higher therapeutic efficacy and reducing the side effects
to healthy tissues associated with systemic administration. In this work, core–shell electrospun nanofibers
were produced using biodegradable polymers, such as poly(vinyl alcohol) (PVA) and gelatin (Gel),
to act as a localized DDS for the treatment of cervical cancer using PDT. The synthesized porphyrin
(Por) was able to generate singlet oxygen (FD = 0.62) and displayed higher phototoxicity against
tumor cells compared with healthy cells. The developed PVA–Gel membranes were fully characterized,
revealing defect-free nanofibers with a core–shell structure. Different Por concentrations were added to
the fibers’ core, and their presence and uniform distribution within the nanofibers were confirmed. The
Por release profile from nanofibers showed an initial fast release stage, followed by continuous release
for at least 9 days. The PVA–Gel + Por core–shell nanofibers exhibited a higher inhibition of cancer cell
proliferation under light irradiation when compared to dark and a higher phototoxic effect against tumor
cells compared with non-tumor cells. Overall, this study demonstrates the great potential of core–shell
nanofibers to be used as localized DDSs of PSs for the treatment of cervical cancer.
Chitosan/nanocellulose electrospun fibers with enhanced antibacterial and antifungal activity for wound dressing applications
Publication . Ribeiro, Ana S.; Costa, Sofia M.; Ferreira, Diana P.; Calhelha, Ricardo C.; Barros, Lillian; Stojković, Dejan; Soković, Marina; Ferreira, Isabel C.F.R.; Fangueiro, Raul
The combination of biodegradable fibers at nanoscale with plant-based extracts is attracting increasing attention to produce wound dressing systems. In this work, nanofibers based on chitosan (CS), poly(ethylene oxide) (PEO), cellulose nanocrystals (CNC) and acacia plant-based extract were developed by electrospinning. Firstly, the polymeric formulations and electrospinning parameters were optimized, resulting in nanofibers with average diameters of 80 nm. CNC were successfully introduced into the optimized CS/PEO blend and the membranes were characterized by FESEM, ATR-FTIR, TGA, XRD, WVTR and WCA. The CNC incorporation improved the nanofibers' physical integrity, morphology, diameters, water vapor transmission rate and thermal properties. After acacia introduction into the best CS/PEO/CNC system, the antibacterial effect was relatively maintained while the antifungal activity was enhanced for some fungi, demonstrating its great effect against a wide range of microorganisms, which is crucial to prevent or treat infections. All the developed systems exhibited absence of cytotoxicity in non-tumor cells, suggesting their biocompatibility. Finally, a continuous release of the acacia extract was observed for 24 h, showing its prolonged action, which contributes to the healing process while reduces the frequency of dressing's replacement. Overall, the developed nanofibers are very promising to act as localized drug delivery systems for wound care applications.
Organizational Units
Description
Keywords
Contributors
Funders
Funding agency
Fundação para a Ciência e a Tecnologia
Funding programme
CEEC IND 2017
Funding Award Number
CEECIND/02803/2017/CP1458/CT0003