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A Novel Bioresorbable Device As a Controlled Release System for Protecting Cells from Oxidative Stress from Alzheimer's Disease

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Journal Mol Neurobiol
Date 2016 Oct 22
PMID 27766537
Citations 2
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Abstract

Bioresorbable electrospun fibres have highly functional features that can preserve drug efficacy, avoiding premature degradation, and control drug release rates over long periods. In parallel, it is known that Alzheimer's disease (AD) has been linked to impaired insulin signalling in the brain. Glucagon-like peptide 1 (GLP-1) analogues have beneficial effects on insulin release and possess exceptional neuroprotective properties. Herein, we describe for the first time the incorporation of a GLP-1 analogue, liraglutide, into electrospun poly (lactic acid) (PLA) fibres with in situ gelatin capsules, in order to provide the controlled release of liraglutide, improving neuroprotective properties. In this study, PLA, a bioresorbable polymer in which degradation products have neurogenesis characteristics, was electrospun and loaded with liraglutide. Moreover, PLA/liraglutide fibres were encapsulated with gelatin and were shown to have better properties than the non-encapsulated fibres in terms of the controlled release of liraglutide, which was accomplished in the present study for up to 60 days. We observed that this biodevice was completely encapsulated with gelatin, which made the material more hydrophilic than PLA fibres alone and the biodevice was able to enhance fibroblast interaction and reduce mitochondrial stress in a neuroblastoma cell line. In this manner, this study introduces a new material which can improve neuroprotective properties from AD oxidative stress via the sustained long-lasting release of liraglutide. Graphical Abstract ᅟ.

Citing Articles

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References
1.
Sridhar R, Lakshminarayanan R, Madhaiyan K, Barathi V, Lim K, Ramakrishna S . Electrosprayed nanoparticles and electrospun nanofibers based on natural materials: applications in tissue regeneration, drug delivery and pharmaceuticals. Chem Soc Rev. 2014; 44(3):790-814. DOI: 10.1039/c4cs00226a. View

2.
Mukhopadhyay P, Rajesh M, Yoshihiro K, Hasko G, Pacher P . Simple quantitative detection of mitochondrial superoxide production in live cells. Biochem Biophys Res Commun. 2007; 358(1):203-8. PMC: 2228267. DOI: 10.1016/j.bbrc.2007.04.106. View

3.
Teng F, Ko C, Kuo H, Hu J, Lin J, Lou C . A comparison of epithelial cells, fibroblasts, and osteoblasts in dental implant titanium topographies. Bioinorg Chem Appl. 2012; 2012:687291. PMC: 3263600. DOI: 10.1155/2012/687291. View

4.
Alvarez Z, Mateos-Timoneda M, Hyrossova P, Castano O, Planell J, Perales J . The effect of the composition of PLA films and lactate release on glial and neuronal maturation and the maintenance of the neuronal progenitor niche. Biomaterials. 2013; 34(9):2221-33. DOI: 10.1016/j.biomaterials.2012.12.001. View

5.
Jain K . Nanobiotechnology-based strategies for crossing the blood-brain barrier. Nanomedicine (Lond). 2012; 7(8):1225-33. DOI: 10.2217/nnm.12.86. View