• Title/Summary/Keyword: Nanofibrous scaffold

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Preparation of PHBV/Collagen Nanofibrous Mats and their Tissue Compatibility Compatibilscaffolds for tissue engineering

  • Meng, Wan;Kim, Se-Yong;Yuan, Jiang;Kim, Jung-Chul;Kwon, Oh-Hyeong;Ito, Yoshihiro;Kang, Inn-Kyu
    • Proceedings of the Polymer Society of Korea Conference
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    • 2006.10a
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    • pp.50-51
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    • 2006
  • The nanofibrous scaffolds were obtained by co-electrospinning PHBV and collagen Type I in HIFP. The resulting fiber diameters were in the range between 300 and 600 nm. The nanofiber surfaces were characterized by ATR-FTIR, ESCA and AFM. The PHBV and collagen components of the PHBV-Col nanofibrous scaffold were biodegraded by PHB depolymerase and a collagenase Type I aqueous solution, respectively. It was found, from the cell-culture experiment, that the PHBV-Col nanofibrous scaffold accelerated the adhesion of the NIH 3T3 cell compared to the PHBV nanofibrous scaffold, thus showing a good tissue engineering scaffold.

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Acrylic Acid-Grafted Hydrophilic Electrospun Nanofibrous Poly(L-lactic acid) Scaffold

  • Park, Kwi-Deok;Jung, Hyun-Jung;Kim, Jae-Jin;Ahn, Kwang-Duk;Han, Dong-Keun;Ju, Young-Min
    • Macromolecular Research
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    • v.14 no.5
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    • pp.552-558
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    • 2006
  • Biodegradable nanofibrous poly(L-lactic acid) (PLLA) scaffold was prepared by an electrospinning process for use in tissue regeneration. The nanofiber scaffold was treated with oxygen plasma and then simultaneously in situ grafted with hydrophilic acrylic acid (AA) to obtain PLLA-g-PAA. The fiber diameter, pore size, and porosity of the electrospun nanofibrous PLLA scaffold were estimated as $250\sim750nm,\;\sim30{\mu}m$, and 95%, respectively. The ultimate tensile strength was 1.7 MPa and the percent elongation at break was 120%. Although the physical and mechanical properties of the PLLA-g-PAA scaffold were comparable to those of the PLLA control, a significantly lower contact angle and significantly higher ratio of oxygen to carbon were notable on the PLLA-g-PAA surface. After the fibroblasts were cultured for up to 6 days, cell adhesion and proliferation were much improved on the nanofibrous PLLA-g-PAA scaffold than on either PLLA film or unmodified nanofibrous PLLA scaffold. The present work demonstrated that the applications of plasma treatment and hydrophilic AA grafting were effective to modify the surface of electrospun nanofibrous polymer scaffolds and that the altered surface characteristics significantly improved cell adhesion and proliferation.

Growth and Osteoblastic Differentiation of Mesenchymal Stem Cells on Silk Scaffolds

  • Cho, Hee-Yeon;Baik, Young-Ae;Jeon, Suyeon;Kwak, Yoon-Hae;Kweon, Hae Yong;Jo, You Young;Lee, Kwang Gill;Park, Young Hwan;Kang, Dongchul
    • International Journal of Industrial Entomology and Biomaterials
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    • v.27 no.2
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    • pp.303-311
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    • 2013
  • In this study, we compared the efficiency of osteoblast differentiation media (ODM) containing three distinct reagent combinations in osteoblastic differentiation of human bone marrow-derived mesenchymal stem cells (hBMSCs) in monolayer culture. In addition, we analyzed growth and differentiation of hBMSCs on silk scaffolds and examined the bone-forming activity of a nanofibrous silk scaffold in a tibia diaphysis defect model of a rat hind limb with intramedullary nailing. Although all three ODM increased alkaline phosphatase activity to a comparable extent, the ODM containing bone morphogenetic protein-2 (BMP-2) was found to be significantly less effective in promoting mineral deposition than the others. Growth of hBMSCs on sponge-form silk scaffolds was faster than on nanofibrous ones, while osteoblastic differentiation was apparent in the cells grown on either type of scaffold. By contrast, bone formation was observed only at the edge of the nanofibrous scaffold implanted in the tibia diaphysis defect, suggesting that use of the silk scaffold alone is not sufficient for the reconstitution of the long bone defect. Since silk scaffolds can support cell growth and differentiation in vitro, loading MSCs on scaffolds might be necessary to improve the bone-forming activity of the scaffold in the long bone defect model.

3-D Rat Hepatocytes' Culture on Polystyrene Nanofibrous Scaffold (폴리스티렌 나노섬유상에서의 간세포의 3차원 배양)

  • Kim, Young-Jin;Ahn, Chang-Hyun;Oh, Hwan-Hee;Kim, Young-Jin;Yoon, Kwan-Han;Kang, Inn-Kyu;Kwon, Oh-Hyeong
    • Polymer(Korea)
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    • v.32 no.2
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    • pp.131-137
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    • 2008
  • We have fabricated polystyrene (PS) nanofibrous scaffold for hepatocyte culture by electrospinning method and subsequently coated with specific ligand of Poly[N-p-vinylbenzyl-O-$\beta$-D-galactopyranocyl-($1{\rightarrow}4$)-D-gluconamide](PVLA) to enhance hepatocytes attachment. Rat hepatocytes behavior on the PVLA-coated and non-coated PS nanofibrous matrices have been investigated. Electrospun PS nanofiber structures revealed randomly aligned fibers with average diameter of 500 nm. It is observed that PS nanofibrous matrix could incorporate many cells into the interior of the matrix probably due to the suitable pore size. Cell viabilities cultured on PVLA-coated PS nanofibrous mats were maintained for 3 weeks, while it was decreased rapidly on PVLA-coated PS dishes. High hepatic functions especially for albumin secretion and ammonia removal were maintained at least for 2 weeks on nanofibrous mats but rapidly decreased on flat PS dishes. These results indicate that nanofibrous structure enabled 3-D culture with high level of cell-cell contact results in providing cell-cell communications and subsequent long-term maintenance of specific cell functions.

Electrohydrodynamic Jet Process for Pore-Structure-Controlled 3D Fibrous Architecture As a Tissue Regenerative Material: Fabrication and Cellular Activities

  • Kim, Minseong;Lee, Hyeongjin;Kim, GeunHyung
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2017.05a
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    • pp.134.1-134.1
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    • 2017
  • In this study, we propose a new scaffold fabrication method, "direct electro-hydrodynamic jet process," using the initial jet of an electrospinning process and ethanol media as a target. The fabricated threedimensional (3D) fibrous structure was configured with multilayered microsized struts consisting of randomly entangled micro/nanofibrous architecture, similar to that of native extracellular matrixes. The fabrication of the structure was highly dependent on various processing parameters, such as the surface tension of the target media, and the flow rate and weight fraction of the polymer solution. As a tissue regenerative material, the 3D fibrous scaffold was cultured with preosteoblasts to observe the initial cellular activities in comparison with a solid-freeform fabricated 3D scaffold sharing a similar structural geometry. The cell-culture results showed that the newly developed scaffold provided outstanding microcellular environmental conditions to the seeded cells (about 3.5-fold better initial cell attachment and 2.1-fold better cell proliferation).

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Micro-and nanofibrous scaffold for enhanced cartilage regeneration

  • Lee, Myung-Hee;Shim, In-Kyong;Hwang, Jung-Hyo;Ahn, Hyun-Jung;Lee, Sang-Hoon;Lee, Myung-Chul;Lee, Seung-Jin
    • Proceedings of the PSK Conference
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    • 2003.10b
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    • pp.229.2-230
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    • 2003
  • Extracellular matrix(ECM) is composed of the ground materials(proteoglycan) and nano size diameter fibrous proteins(ex. collagens) that together form a composite-like structure. In this study, fibrous scaffold with biomimetic architecture based on collagen nanofibers interpenetrated in PLGA/chitosan microfibrous matrix. Chitosan was selected for its structure similarity to glycosaminoglycan and neutralizing capacity for PLGA acidic metabolite. Collagen nanofiber were prepared by electrospinning. (omitted)

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Preparation and Characterization of Gelatin-immobilized Bacterial Cellulose Scaffold for Tissue Engineering Using Gamma-ray Irradiation (감마선을 이용한 조직공학용 젤라틴이 개질된 미생물 셀룰로오스 지지체의 제작 및 특성)

  • Choi, Jong-Bae;Jeong, Sung In;Gwon, Hui-Jeong;Park, Jong-Seok;Nho, Young-Chang;Choi, Young-Hun;Park, Kyung Jin;Park, Man Yong;Shin, Heungsoo;Lim, Youn-Mook
    • Journal of Radiation Industry
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    • v.6 no.2
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    • pp.159-164
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    • 2012
  • Bacterial cellulose (BC) is generated from citrus gel by Gluconacetobacter hansenii TL-2C. BC has good properties such as high-burst pressure, high-water contact and the ultrafine highly nanofibrous structure of mimic natural extracellular matrix (ECM) for tissue engineering. In this study, acrylic acid (AAc) was grafted onto BC surfaces under aqueous conditions using gamma-ray irradiation, and then immobilized gelatin onto AAc-g-BC. The characterization of scaffolds was performed by scanning electron microscopy (SEM), attenuated total reflectance-Fourier transform infrared spectroscopy (ATR-FTIR), toluidine blue O (TBO) assay. Morphology of gelatin and AAc incorporation onto BC nanofibers did not changed. Our study suggests that gelatin-immobilized BC nanofibers scaffold has a potentiality to fabricate 3D nanofibrous scaffolds for tissue engineering.

Beneficial Effects of Microwave-Induced Argon Plasma Treatment on Cellular Behaviors of Articular Chondrocytes Onto Nanofibrous Silk Fibroin Mesh

  • Jin, Soo-Chang;Baek, Hyun-Sook;Woo, Yeon-I;Lee, Mi-Hee;Kim, Jung-Sung;Park, Jong-Chul;Park, Young-Hwan;Rah, Dong-Kyun;Chung, Kie-Hyung;Lee, Seung-Jin;Han, In-Ho
    • Macromolecular Research
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    • v.17 no.9
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    • pp.703-708
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    • 2009
  • Silk fibroin scaffolds were examined as a biomaterial option for tissue-engineered cartilage-like tissue. In tissue engineering for cartilage repair using a scaffold, initial chondrocyte-material interactions are important for the following cell behaviors. In this study, the surface of nanofibrous silk fibroin (NSF) meshes was modified by a microwave-induced argon plasma treatment in order to improve the cytocompatibility of the meshes used as cartilaginous grafts. In addition, the effects of a plasma treatment on the cellular behavior of chondrocytes on NSF were examined. The plasma treatment resulted in an increase in the hydrophilicity of NSF meshes suggesting that the cytocompatibility of the mesh might be improved. Furthermore, the human articular chondrocytes showed higher viability on the surface-modified NSF meshes. These results suggest that the surface modification of NSF meshes by plasma can enhance the cellular behavior of chondrocytes and may be used in tissue engineering.