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      Physicochemical properties and biocompatibility of polypyrrole-coated polycaprolactone nanofibers for guided tissue regeneration

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      https://www.riss.kr/link?id=A109024067

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      다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

      Polycaprolactone (PCL) nanofibers are widely used in the field of tissue regeneration as a biodegradable material.
      However, there is a limitation in that low hydrophilicity and tissue cannot be directly regenerated. Recent studies have shown that polypyrrole (PPy) has potential in the field of tissue engineering due to its electrical conductivity and biocompatibility. Meanwhile, the electrospinning has the advantage of using most polymers and of facilitating a porous structure suitable for tissue regeneration, so the nanofibers were fabricated through electrospinning. The purpose of this study is to evaluate the physicochemical properties and biocompatibility of PCL nanofibers coated with PPy for guided tissue regeneration. To this end, PCL nanofibers coated with four types of concentration groups were prepared. The group was named according to the concentration ratio of PPy, and the control pure PCL containing no PPy and 20PPy, 30PPy, and 40PPy containing 20 wt%, 30 wt%, and 40 wt%, respectively, consisted of the experimental group. The mixed solution of PCL and pyrrole monomer was electrospun. Then precipitate in an iron (III) chloride (FeCl3) solution as an oxidizing agent which contains pyrrole monomer and polymerized. A tensile test was performed to confirm mechanical properties, and surface hydrophilicity was confirmed through measurement of contact angle.
      Electrical conductivity was also confirmed through measurement of resistance values. Lastly, cytotoxicity evaluation was performed using fibroblast (L929) and preosteoblast (MC3T3-E1) cell lines to confirm biocompatibility. The results were evaluated as one-way ANOVA (p -value = 0.05), and post-analysis was performed using Tukey’s post-hoc test. PPy- coated PCL nanofibers showed no statistically significant decrease in mechanical strength compared to PPy-uncoated PCL nanofibers, while electrical conductivity increased significantly at all concentrations. When 30wt% or more of PPy was coated, hydrophilicity was significantly increased compared to the PPy-uncoated PCL nanofibers. Regardless of the concentration of PPy, cytotoxicity was not shown in all groups. Accordingly, it is expected that the PPy-coated PCL fibers may be applied as a material for guided tissue regeneration. This is because of improved hydrophilicity and electrical conductivity without deteriorated physical properties and cytotoxicity.
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      Polycaprolactone (PCL) nanofibers are widely used in the field of tissue regeneration as a biodegradable material. However, there is a limitation in that low hydrophilicity and tissue cannot be directly regenerated. Recent studies have shown that poly...

      Polycaprolactone (PCL) nanofibers are widely used in the field of tissue regeneration as a biodegradable material.
      However, there is a limitation in that low hydrophilicity and tissue cannot be directly regenerated. Recent studies have shown that polypyrrole (PPy) has potential in the field of tissue engineering due to its electrical conductivity and biocompatibility. Meanwhile, the electrospinning has the advantage of using most polymers and of facilitating a porous structure suitable for tissue regeneration, so the nanofibers were fabricated through electrospinning. The purpose of this study is to evaluate the physicochemical properties and biocompatibility of PCL nanofibers coated with PPy for guided tissue regeneration. To this end, PCL nanofibers coated with four types of concentration groups were prepared. The group was named according to the concentration ratio of PPy, and the control pure PCL containing no PPy and 20PPy, 30PPy, and 40PPy containing 20 wt%, 30 wt%, and 40 wt%, respectively, consisted of the experimental group. The mixed solution of PCL and pyrrole monomer was electrospun. Then precipitate in an iron (III) chloride (FeCl3) solution as an oxidizing agent which contains pyrrole monomer and polymerized. A tensile test was performed to confirm mechanical properties, and surface hydrophilicity was confirmed through measurement of contact angle.
      Electrical conductivity was also confirmed through measurement of resistance values. Lastly, cytotoxicity evaluation was performed using fibroblast (L929) and preosteoblast (MC3T3-E1) cell lines to confirm biocompatibility. The results were evaluated as one-way ANOVA (p -value = 0.05), and post-analysis was performed using Tukey’s post-hoc test. PPy- coated PCL nanofibers showed no statistically significant decrease in mechanical strength compared to PPy-uncoated PCL nanofibers, while electrical conductivity increased significantly at all concentrations. When 30wt% or more of PPy was coated, hydrophilicity was significantly increased compared to the PPy-uncoated PCL nanofibers. Regardless of the concentration of PPy, cytotoxicity was not shown in all groups. Accordingly, it is expected that the PPy-coated PCL fibers may be applied as a material for guided tissue regeneration. This is because of improved hydrophilicity and electrical conductivity without deteriorated physical properties and cytotoxicity.

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      참고문헌 (Reference)

      1 Gorna K, "The effect of gamma radiation on molecular stability and mechanical properties of biodegradable polyurethanes for medical applications" 79 (79): 465-474, 2003

      2 Runge MB, "The development of electrically conductive polycaprolactone fumaratepolypyrrole composite materials for nerve regeneration" 31 (31): 5916-5926, 2010

      3 Toledano-Osorio M, "Testing active membranes for bone regeneration : A review" 105 : 103580-, 2021

      4 Liu Y, "Synthesis and application of polypyrrole nanofibers : a review" 5 (5): 3606-3618, 2023

      5 Mohammadpour-Haratbar A, "Simulation of electrical conductivity for polymer silver nanowires systems" 13 (13): 5-, 2023

      6 Abtahi S, "Resorbable Membranes for Guided Bone Regeneration : Critical Features, Potentials, and Limitations" 3 (3): 394-417, 2023

      7 Bharadwaz A, "Recent trends in the application of widely used natural and synthetic polymer nanocomposites in bone tissue regeneration" 110 : 110698-, 2020

      8 Khoee S, "Preparation of PCL/PEG superporous hydrogel containing drug-loaded nanoparticles : the effect of hydrophobic–hydrophilic interface on the physical properties" 58 : 180-190, 2014

      9 Fabbri P, "Porous scaffolds of polycaprolactone reinforced with in situ generated hydroxyapatite for bone tissue engineering" 21 (21): 343-351, 2010

      10 Uzieliene I, "Polypyrrole-based structures for activation of cellular functions under electrical stimulation" 155 : 108585-, 2024

      1 Gorna K, "The effect of gamma radiation on molecular stability and mechanical properties of biodegradable polyurethanes for medical applications" 79 (79): 465-474, 2003

      2 Runge MB, "The development of electrically conductive polycaprolactone fumaratepolypyrrole composite materials for nerve regeneration" 31 (31): 5916-5926, 2010

      3 Toledano-Osorio M, "Testing active membranes for bone regeneration : A review" 105 : 103580-, 2021

      4 Liu Y, "Synthesis and application of polypyrrole nanofibers : a review" 5 (5): 3606-3618, 2023

      5 Mohammadpour-Haratbar A, "Simulation of electrical conductivity for polymer silver nanowires systems" 13 (13): 5-, 2023

      6 Abtahi S, "Resorbable Membranes for Guided Bone Regeneration : Critical Features, Potentials, and Limitations" 3 (3): 394-417, 2023

      7 Bharadwaz A, "Recent trends in the application of widely used natural and synthetic polymer nanocomposites in bone tissue regeneration" 110 : 110698-, 2020

      8 Khoee S, "Preparation of PCL/PEG superporous hydrogel containing drug-loaded nanoparticles : the effect of hydrophobic–hydrophilic interface on the physical properties" 58 : 180-190, 2014

      9 Fabbri P, "Porous scaffolds of polycaprolactone reinforced with in situ generated hydroxyapatite for bone tissue engineering" 21 (21): 343-351, 2010

      10 Uzieliene I, "Polypyrrole-based structures for activation of cellular functions under electrical stimulation" 155 : 108585-, 2024

      11 Folorunso O, "Parametric Analysis of Electrical Conductivity of Polymer-Composites" 11 (11): 2019

      12 Lian H, "Melt electrospinning vs. solution electrospinning : A comparative study of drug-loaded poly(epsilon-caprolactone)fibres" 74 : 117-123, 2017

      13 Ortolani E, "Mechanical qualification of collagen membranes used in dentistry" 51 (51): 229-235, 2015

      14 Barber B, "Intraoperative Brief Electrical Stimulation of the Spinal Accessory Nerve(BEST SPIN)for prevention of shoulder dysfunction after oncologic neck dissection : a double-blinded, randomi zed controlled trial" 47 (47): 7-, 2018

      15 Maharjan B, "In-situ polymerized polypyrrole nanoparticles immobilized poly(epsilon-caprolactone)electrospun conductive scaffolds for bone tissue engineering" 114 : 111056-, 2020

      16 Ehtesabi H, "Improvement of hydrophilicity and cell attachment of polycaprolactone scaffolds using green synthesized carbon dots" 13 : 100075-, 2021

      17 International Organization for Standardization, "ISO 10993-5:2009. Biological evaluation of medical devices, Part 5: Tests for in vitro cytotoxicity"

      18 Chinnappan BA, "Electrospinning of Biomedical Nanofibers/Nanomembranes : Effects of Process Parameters" 14 (14): 2022

      19 Xue J, "Electrospinning and Electrospun Nanofibers : Methods, Materials, and Applications" 119 (119): 5298-5415, 2019

      20 Hosoyama K, "Electroconductive materials as biomimetic platforms for tissue regeneration" 37 (37): 444-458, 2019

      21 Khare D, "Electrical stimulation and piezoelectric biomaterials for bone tissue engineering applications" 258 : 120280-, 2020

      22 Majhy B, "Effect of surface energy and roughness on cell adhesion and growth-facile surface modification for enhanced cell culture" 11 (11): 15467-15476, 2021

      23 Tahmasebi E, "Current Infections of the Orofacial Region : Treatment, Diagnosis, and Epidemiology" 13 (13): 2023

      24 Feng P, "Construction of antibacterial bone implants and their application in bone regeneration" 2023

      25 Wang J, "Biodegradable Polymer Membranes Applied in Guided Bone/Tissue Regeneration : A Review" 8 (8): 2016

      26 Lockhart PB, "Bacteremia associated with toothbrushing and dental extraction" 117 (117): 3118-3125, 2008

      27 Ghasemi-Mobarakeh L, "Application of conductive polymers, scaffolds and electrical stimulation for nerve tissue engineering" 5 (5): e17-e35, 2011

      28 da Silva FA, Jr., "Antibacterial behavior of polypyrrole: The influence of morphology and additives incorporation" 62 : 317-322, 2016

      29 Yang Z, "Advances in Barrier Membranes for Guided Bone Regeneration Techniques" 10 : 921576-, 2022

      30 Gordon T, "Accelerating axon growth to overcome limitations in functional recovery after peripheral nerve injury" 65 (65): A132-A144, 2009

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