(2025) Piezoelectric bilayer fibrous conduit with gellan/curcumin encapsulated alginate infilling for promotion of sciatic nerve regeneration in the rat models. International Journal of Biological Macromolecules. ISSN 01418130
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Abstract
The peripheral nerve regeneration has a limited innate capacity for self-repair and thus it urgently necessitates designing a smart nerve guidance conduit. Considering the electrophysiological features of nerve tissues, a piezoelectric bilayer fibrous conduit filled with drug-encapsulated gellan was developed in this study and its ability to promote neural growth was assessed in vivo. To fabricate such conduit, bilayer fibrous mats were prepared from poly ε-caprolactone/BaTiO3 and poly-L-lactic acid -chitosan-gelatin-polyaniline/graphene via an electrospinning process. After rolling the fibrous mat, the inside of the hollow conduit was filled with gellan containing Curcumin-loaded alginate (Alg) particles. All intermediate and final products were characterized using various analytical techniques. Encapsulation of Curcumin into the Alg particles and loaded in the gellan could effectively enhance sustained release of drug during the healing process, following Higuchi model. Four weeks post-surgery, such an engineered conduit revealed much better nerve regeneration results than the control group and showed desirable outcomes in terms of sciatic function indices and formation of the perineurium as well as axon number. Such developed conduit has a high potency to repair the injured nerve tissue due to their capacity to sustain the release of drugs over a long period and transfer self-stimulated electrical signals between cells. The in vivo assay revealed the feasibility of exploiting such conduit in nerve tissue engineering. © 2024 Elsevier B.V.
Item Type: | Article |
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Keywords: | Alginates; Animals; Curcumin; Disease Models, Animal; Drug Liberation; Male; Nerve Regeneration; Polysaccharides, Bacterial; Rats; Rats, Sprague-Dawley; Sciatic Nerve; Tissue Scaffolds; Cell engineering; Controlled drug delivery; Encapsulation; Functional neural stimulation; Neurons; Targeted drug delivery; Tissue regeneration; alginic acid; cellulose; chitosan; collagen; curcumin; dextran; gelatin; gellan; gold nanoparticle; graphene; hydrogel; hydroxyapatite; ketamine; lactic acid; macrogol; nanocomposite; nanofiber; polycaprolactone; polymer; polyvinyl alcohol; xylazine; zinc; bacterial polysaccharide; curcumin; gellan; Bi-layer; Conduit; Curcumin; In-vivo; In-vivo assay; Nerve regeneration; Nerve tissue; Piezoelectric; Piezoelectric property; Vivo assays; adult; animal experiment; animal model; animal tissue; Article; audiometry; axon; bilayer fibrous conduit; biocompatibility; bone regeneration; cell proliferation; chemical reaction kinetics; controlled study; crystal structure; dispersity; drug delivery system; drug release; drug synthesis; electrophysiology; electrospinning; electrostimulation; encapsulation; epineurium; extracellular matrix; Fourier transform infrared spectroscopy; hydrophobicity; infrared spectroscopy; laryngectomy; male; micelle; nerve fiber regeneration; nerve regeneration; nonhuman; oxidative stress; particle size; perineurium; physical chemistry; piezoelectricity; rat; scanning electron microscopy; sciatic nerve; signal transduction; surface property; sustained drug release; tensile strength; thermogravimetry; tissue engineering; transmission electron microscopy; wettability; wound healing; X ray diffraction; Young modulus; zeta potential; animal; chemistry; disease model; drug effect; physiology; Sprague Dawley rat; tissue scaffold; Piezoelectricity |
Divisions: | Education Vice-Chancellor Department > Faculty of Medicine > Department of Basic Education |
Journal or Publication Title: | International Journal of Biological Macromolecules |
Journal Index: | Scopus |
Volume: | 286 |
Publisher: | Elsevier B.V. |
Identification Number: | https://doi.org/10.1016/j.ijbiomac.2024.137833 |
ISSN: | 01418130 |
Depositing User: | dr mehdi mokhtari |
URI: | http://eprints.ssu.ac.ir/id/eprint/34775 |
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