• Title/Summary/Keyword: Biomedical polymer

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Thermomechanical Properties of Poly(D, L-actic-co-glycolic acid) and Graphene Oxide Nanocomposite for Scaffolds

  • Sohn, Il-Yung;Yoon, Ok-Ja;Kim, Duck-Jin;Lee, Nae-Eung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.478-478
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    • 2011
  • The thermomechanical and surface chemical properties of nanocomposite of poly( D, L-actic-co-glycolic acid) (PLGA) were improved significant due to concentration of graphene oxide (GO) nanosheets as nanoscale fillers to PLGA film. Thermomechanical properties of the PLGA/GO (2wt.-%.) nanocomposite were decreased crystallization and melting temperature, weight loss. The storage and loss moduli of the nanocomposite were enhanced by chemical bonding between the oxygenated functional groups of the GO nanosheets and the polymer chains in the PLGA matrix. Enhanced hydrophilicity of nanocomposite caused by embedded GO nanosheets also improved for good biocompatibility. Our findings indicate that thermomechanical properties and biocompatibility of nanocomposite embedded with GO nanosheets are attractive candidates for use in biomedical applications such as scaffolds.

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Properties of Blood Compatible Crosslinked Blends of $Pellethene^{(R)}$/Multiblock Polyurethanes Containing Phospholipid Moiety/C-18 Alkyl Chain

  • Yoo, Hye-Jin;Kim, Han-Do
    • Macromolecular Research
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    • v.16 no.7
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    • pp.596-603
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    • 2008
  • To improve the mechanical properties, dimensional stability and blood compatibility, the biomedical material $Pellethene^{(R)}$ was blended with multiblock polyurethane (MPU) containing phospopholipid/long alkyl chain (C-18) at the various MPU contents and crosslinked using dicumyl peroxide as a crosslinking agent. The maximum MPU content for stable $Pellethene^{(R)}$/MPU blended films was approximately 30 wt%. The optimum crosslinking agent content and crosslinking time with respect to the mechanical properties were 4 wt% and 3 h, respectively. The mechanical properties (tensile strength and elongation at break) and water absorption of the crosslinked blend film increased with increasing MPU content. The test of platelet adhesion on the surfaces of the crosslinked blend film showed a decrease in the level of platelet adhesion from 70% to 6% with increasing MPU content from 0 to 30 wt%. These results suggest that the crosslinked $Pellethene^{(R)}$/MPU-30 (MPU content: 30 wt%) sample has strong potential as a novel material for blood compatible material applications.

A Study on Protein Adsorption-resistant Soft Contact Lens (단백질흡착을 막는 소프트콘택트렌즈에 관한 연구)

  • 조종수;정영일
    • Journal of Biomedical Engineering Research
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    • v.17 no.3
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    • pp.291-296
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    • 1996
  • Poly(ethylene glycol)(PEG) macromers terminated with diacrylate Iyoups and interpenetrating poly- mer networks(IPN) composed of poly(hydroxyethyl methacrylate)(PHEMA) or poly(hydroxyethyl methacrylate-co-hydronypropyl methacrylate-co- N-vinyl pyrrolidone ) [ P( HEM A-co- HPM A-co- NVP) ] and PEG macromer were synthesized with the aim of obtaining protein adsorption resistant soft contact lens. Polymerization of PEC macromer resulted in the formation of cross-linked gels due to the multifunctionality of macromer. Crosslinked P(HEMA) or P(HEMA-co-HPMA-co-WVP) chains were interpenetrated into the cross-linked three-dimensional networks of PEG. It was found that albumin adsorption onto the contact lens prepared by P(HEMA-co-HPMA-co-NVP) /PEG IPW decreases with an increase of molecular weight of PEG. Also, it was found that albumin adsorption onto the both contact lens decreases with an increase of concentration of PEC macromer in the IPN preparation. There are also more adequate in the bioinertnen for the contact lens by P(HEMA)/PEG IPN or P (HEMA-co-HPMA-co-NVP)/PEG IPN than that by P(HEMA) or P(HEMA-co-HPMA-co-NVP)

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Application of NMR Microscopy for the Study of the Swelling Effect in Biopolymers (생체고분자의 팽윤현상연구를 위한 핵자기공명 현미영상법의 응용)

  • 이동훈;김승수
    • Journal of Biomedical Engineering Research
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    • v.18 no.2
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    • pp.167-172
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    • 1997
  • Novel measurement method has been performed for the noninvasive study of the swelling effect detected in hydrophilic polymers using Magnetic Resonance Microscopy. iN NMR images were acquired to measure geometric changes due to the swelling effect occurred in the polymer specimens. In addition to the geometric changes, the water ingress process was visualized noninvgsively. The measurement method performed .in the present study utilized some of NMR's valuable properties, both noninvasiveness and parameter selectivity. It is believed that the method used in the present study may be applicable to the study of biopolymers in which noninvasiveness is particularly important.

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Dynamic Mechanical Behavior of Ultra-High Molecular Weight Polyethylene Irradiated with Gamma Rays

  • Lee, Choon-Soo;Jho, Jae-Young;Park, Kuiwon;Hwang, Tae-Won
    • Macromolecular Research
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    • v.12 no.1
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    • pp.141-143
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    • 2004
  • We have investigated the dynamic mechanical behavior of ultra-high molecular weight polyethylene (UHMWPE) irradiated with varying doses of gamma rays. A relaxation peak in the loss factor curve, which has not been reported previously in the literature, is observed at a temperature above the crystal melting temperature. The peak is unique to UHMWPE and appears to be related to the high degree of entanglement. Because the temperature and intensity of the peak are reduced by irradiation-induced chain scission and crosslinking, respectively, we believe that the peak is associated with disentanglement relaxation. The behavior of the storage modulus in the melt state agrees with the classical theory of rubber elasticity.

Kinetic Features of the Cobalt Dihalide/Methylaluminoxane Catalytic System in 1,3-Butadiene Polymerization

  • Nath Dilip Chandra Deb;Fellows Christopher M.;Shiono Takeshi
    • Macromolecular Research
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    • v.14 no.3
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    • pp.338-342
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    • 2006
  • The kinetic features of polymerization with an active site comprising cobalt dihalides ($CoX_2$, where X=Cl, Br, I) activated by methylaluminoxane (MAO) were investigated in 1,3-butadiene polymerization. The catalytic system exhibited the characteristic features of living polymerization. The initiation ($k_i$) and propagation ($k_p$) rate coefficients were estimated using the kinetic model for slow initiation previously reported by Shiono et al. The energy of activation fur the propagation reaction was calculated to be 27-30 $kJmol^{-1}$. The marked changes in reaction rate observed with different halides could be adequately described in terms of variations in the initiation process, with the same Arrhenius curve fitting propagation rate coeffcients estimated from all three halides, suggesting that the halide does not participate in the growing chain end.

Development of Biopolymer-based Materials Using Ionic Liquids and Its Biotechnological Application (이온성 액체를 이용한 바이오폴리머 기반의 소재 개발 및 생명공학 분야로의 응용)

  • Lee, Sang-Hyun;Park, Tae-Joon
    • KSBB Journal
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    • v.25 no.5
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    • pp.409-420
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    • 2010
  • Biopolymer-based materials recently have garnered considerable interest as they can decrease dependency on fossil fuel. Biopolymers are naturally obtainable macromolecules including polysaccharides, polyphenols, polyesters, polyamides, and proteins, that play an important role in biomedical applications such as tissue engineering, regenerative medicine, drug-delivery systems, and biosensors, because of their inherent biocompatibility and biodegradability. However, the insolubility of unmodified biopolymers in most organic solvents has limited the applications of biopolymer-based materials and composites. Ionic liquids (ILs) are good solvents for polar organic, nonpolar organic, inorganic and polymeric compounds. Biopolymers such as cellulose, chitin/chitiosan, silk, and DNA can be fabricated from ILs into films, membranes, fibers, spheres, and molded shapes. Various biopolymer/biopolymer and biopolymer/synthetic polymer composites also can be prepared by co-dissolution of polymers into IL mixtures. Heparin/biopolymer composites are especially of interest in preparing materials with enhanced blood compatibility.

Micropatterning of Peptides to Solid Surface by Deep-UV Lithography using N-hydroxysuccinimidyl phenol azide (N-hydroxysuccinimidyl phenyl azide와 광반응을 이용한 펩타이드의 마이크로형태 고정화)

  • 김진희;김현정;김종원;장준근;민병구;최태부
    • Journal of Biomedical Engineering Research
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    • v.19 no.5
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    • pp.441-448
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    • 1998
  • Defined spatial localization of biomolecules on the polymer surface Is potentially powerful method to generate biocompatible surface. Photolithography and photochemistry can be used to immobilize peptides only al a given region of the surface. In this study, peptide RGDS, one of the endothelial cells recognition sites of fibronectin, was covalently immobilized on the polystyrene coated surface with micropattern. It was performed by photochemical reactivity of a synthesized N-hydroxysuccinimidyl phenyl azide. The micropatterning was confirmed by staining with fluorescent dye, aminoacetamido fluorescein. Endothelial cell adhesion was observed only on the RGDS immobilized areas.

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Investigation of Thermal Fusion Bonding and Separation of PMMA Substrates by using Molecular Dynamics Simulations (분자동역학을 이용한 PMMA 평판의 열접합 및 분리에 대한 연구)

  • Yi, Taeil
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.17 no.5
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    • pp.111-116
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    • 2018
  • Thermal fusion bonding is a method to enclose open microchannels fabricated on polymer chips for use in lab-on-a-chip (LOC) devices. Polymethyl methacrylate (PMMA) is utilized in various biomedical-microelectromechanical systems (bio-MEMS) applications, such as medical diagnostic kits, biosensors, and drug delivery systems. These applications utilize PMMAs biochemical compatibility, optical transparency, and mold characteristics. In this paper, we elucidate both the conformational entanglement of PMMA molecules at the contact interfacial regime, and the qualitative nature of the thermal fusion bonding phenomena through systematic molecular dynamics simulations.

Up-regulation of inducible nitric oxide synthase expression and inflammatory cytokines by collagen and gelatin in murine macrophages

  • Kim, Ji-Young;Lee, Kyung-Jin;Oh, Duk-Hee;Jung, Kyung-Sik;Shin, Dong-Weon;Cho, Young-Rhan;Jeong, Hye-Gwang
    • Proceedings of the PSK Conference
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    • 2003.10b
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    • pp.121.2-121.2
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    • 2003
  • Synthetic polymers, biological polymer such as collagen and gelatin are employed extensively as backbones in the construction of hydrogels or cell/tissue scaffoldings for various biomedical applications. In the present study, we investigated the effect of collagen and gelatin on the inducible nitric oxide synthase (iNOS) gene expression in the mouse macrophage cell line RAW 264.7. The production of nitric oxide and expression level of iNOS mRNA were induced by both of collagen and gelatin in dose-dependent manner. (omitted)

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