• Title/Summary/Keyword: Poly(ethylene glycol) (PEG)

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Synthesis and Properties of Poly(ethylene 2,6-naphthalate) Copolymer Containing Poly(ethylene glycol) Groups (폴리에틸렌기를 함유한 폴리에틸렌 나프탈레이트 공중합체의 합성 및 특성)

  • 손준식;지동선
    • Proceedings of the Korean Fiber Society Conference
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    • 2003.10b
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    • pp.167-168
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    • 2003
  • Dimethyl-2,6-naphthalenedicarboxylate(2,6-NDC)와 ethylene glycol(EG)로부터 유도되는 폴리에틸렌 나프탈레이트(PEN)는 폴리에틸렌 테레프탈레이트(PET)보다 열적 및 기계적 특성이 우수한 열가소성 고분자이며[1-2], 폴리에틸렌 글리콜(PEG)은 diol기를 함유한 친수성 고분자로서 의약품 및 기타 가공제로 널리 쓰이는 물질이다. 이미 PET는 이러한 PEC를 PET 합성과정에서 공단량체로 사용해 공중합시킴으로서 친수성을 갖는 PET로 개질하고자 하는 연구[3-4]가 다수 보고되어 왔으나, PEN의 경유는 아직 이에 관한 연구보고가 없는 실정이다. (중략)

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Characteristics of PEGylated Polydiacetylene Liposome and its Inclusion Complex Formation with α-Cyclodextrin

  • Choi, Hye;Choi, Joon Sig
    • Bulletin of the Korean Chemical Society
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    • v.34 no.10
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    • pp.3083-3087
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    • 2013
  • Diacetylene lipid monomers possess the capability to self-assemble into vesicles via polymerization under ultraviolet irradiation, resulting in the formation of polydiacetylene (PDA) liposomes. Exposure of the polymerized vesicles to external stimuli is known to induce a unique blue-to-red color transition. The cyclic oligosaccharide ${\alpha}$-cyclodextrin known for its use in many applications, such as drug delivery, purification, and stimulus sensing, is able to form an inclusion complex with poly(ethylene glycol) (PEG) in aqueous solution. In this study, we prepared polymeric liposomes with PEG (PEG-PDA) with the aim of improving the stability of the vesicles and colorimetric response toward ${\alpha}$-cyclodextrin. We demonstrated that PEG-PDA liposome displays unique characteristics compared with native PDA liposome and it also shows apparent chromic properties of the inclusion complex formation with ${\alpha}$-cyclodextrin.

Preparation and Characterization of Solid Dispersions of Eprosartan with Hydrophilic Polymers (친수성 고분자를 이용한 에프로살탄 고체분산체의 제조 및 특성 분석)

  • Hwang, Jun-Seok;Ko, Ji-Eun;Kim, So-Hee;Huh, Kang-Moo
    • Polymer(Korea)
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    • v.36 no.4
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    • pp.500-506
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    • 2012
  • In this study, we developed and optimized hydrophilic polymer based solid dispersion formulations (SDs) for enhancing the aqueous solubility of eprosartan, one of poorly soluble drugs, that has been broadly used for the treatment of high blood pressure. Poly(ethylene glycol) (PEG) and poly(vinyl pyrrolidone) (PVP) based SDs were prepared by hot melting and solvent evaporation methods and the drug/polymer composition varied in the range of 1:1~1:5 with or without poloxamer 407 (P407) as a polymeric surfactant. The SDs prepared by solvent evaporation showed more reduced crystallinity than ones by hot melting, and PVP based SDs showed more enhanced solubility and lower crystallinity than PEG based SDs. Furthermore, it was observed from DSC and PXRD analysis that the SDs with P407 (drug:polymer: P407 = 1:5:1) demonstrated no crystallinity and the most enhanced solubility (more than 3~4 times).

Targeted Drug Delivery Carriers Using Folate Conjugated Poly((R)-3-hydroxy butyrate)-Poly(ethylene glycol) Nanoparticles (Folate가 수식된 Poly((R)-3-hydroxy butyrate)-Poly(ethylene glycol) 나노입자를 이용한 표적지향형 약물전달체)

  • Kwon, Seung-Ho;Kim, Young-Jin
    • Polymer(Korea)
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    • v.33 no.6
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    • pp.515-519
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    • 2009
  • Biodegradable poly((R)-3-hydroxy butyrate) and poly(ethylene glycol) was conjugated to make amphiphilic di-block copolymer. Folate was conjugated at di-block copolymer to target the cancer cells. Copolymer was ready to form the self-assembled micelle whose size was 125~156 nm in aqueous solution. Griseofulvin as a hydrophobic drug was loaded in nanoparticles. Their loading efficiencies were 35~56%. Hydrophobic drug was continuously released for 24 h. Cell viability test showed that folate attached particles were 10% more efficient than the particles without targeting ligands.

Antithrombogenicity of the Surfacfe of Poly(r-benzyl L-glutamate)/ Poly(ethylene glycol) Block Copolymer (Poly(r-benzyl L-glutamate)/ poly(ethylene glycol) block 공중합체 표면의 항혈전성에 관한 연구)

  • 조종수;송수창
    • Journal of Biomedical Engineering Research
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    • v.8 no.2
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    • pp.199-204
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    • 1987
  • ABA type block copolymers composed of r benzyle L-glutamate as the A component and poly(ethylene glycol) as the B components were obtained. Platelet adhesion on their sunfaces was investigated by a column elusion method to examine the effects of microdomain and secondary structure. The number of platelets adhered from whole blood and plasma rich platelet was smaller for the block copolymer systems than for the homopolymers. In the block copolymer system, the number of platelets adrered on their surfaces increased with increasing the content of PEG, that is, with decreasing of a-helix of block copolymers. A thick thrombus formation on the PBLG homopolymer was observed than block copolymer by scanning electron micrographs. The platelets adhesion increased with increasing the critical surface tension of the block copolymer.

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Sulfonated Poly(ethylene glycol) Containing Methacrylate Copolymer Surfaces; Preparation, Characterization and In Vitro Biocompatibility

  • Park, Ki-Dong;Park, Hyung-Dal;Lee, Hee-Jung;Kim, Young-Ha;Tooru Ooya;Nobuhiko Yui
    • Macromolecular Research
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    • v.12 no.4
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    • pp.342-351
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    • 2004
  • Poly(ethylene glycol) (PEG1K) and sulfonated PEG (PEG1K-SO$_3$) methacrylate (MA) copolymers have been prepared and characterized. The structures of the synthesized copolymers were confirmed by $^1$H and $^{13}$ C NMR spectroscopy and elemental analysis. The bulk characteristics of the copolymers were evaluated by viscosity and thermal analysis. The surface properties of the copolymers were investigated using dynamic contact angle measurements and electron spectroscopy for chemical analysis. The hydrophilicity of the surfaces modified with PEG1KMA or PEG1K-SO$_3$MA increased, possibly as a result of the orientation of the hydrophilic PEG1KMA/PEG1K-SO$_3$MA chains into the water phase. Platelets adhered less to the surfaces of the copolymers than they did to a polyurethane control. In addition, adhesion of platelets to the copolymer surfaces decreased upon increasing the chain density of PEG1KMA and sulfonated PEG1KMA in the copolymers. Both bacterial adhesion and protein adsorption were significantly reduced on the copolymer surfaces and their levels differ depending on the kind of surface or media.

Development of a cell-laden thermosensitive chitosan bioink for 3D bioprinting

  • Ku, Jongbeom;Seonwoo, Hoon;Jang, Kyoung-Je;Park, Sangbae;Chung, Jong Hoon
    • Proceedings of the Korean Society for Agricultural Machinery Conference
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    • 2017.04a
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    • pp.107-107
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    • 2017
  • 3D bioprinting is a technology to produce complex tissue constructs through printing living cells with hydrogel in a layer-by-layer process. To produce more stable 3D cell-laden structures, various materials have been developed such as alginate, fibrin and gelatin. However, most of these hydrogels are chemically bound using crosslinkers which can cause some problems in cytotoxicity and cell viability. On the other hand, thermosensitive hydrogels are physically cross-linked by non-covalent interaction without crosslinker, facilitating stable cytotoxicity and cell viability. The examples of currently reported thermosensitive hydrogels are poly(ethylene glycol)/poly(propylene glycol)/poly(ethylene glycol) (PEG-PPG-PEG) and poly(ethylene glycol)/poly(lactic acid-co-glycolic acid) (PEG/PLGA). Chitosan, which have been widely used in tissue engineering due to its biocompatibility and osteoconductivity, can be used as thermosensitive hydrogels. However, despite the many advantages, chitosan hydrogel has not yet been used as a bioink. The purpose of this study was to develop a bioink by chitosan hydrogel for 3D bioprinting and to evaluate the suitability and potential ability of the developed chitosan hydrogel as a bioink. To prepare the chitosan hydrogel solution, ${\beta}-glycerolphosphate$ solution was added to the chitosan solution at the final pH ranged from 6.9 to 7.1. Gelation time decreased exponentially with increasing temperature. Scanning electron microscopy (SEM) image showed that chitosan hydrogel had irregular porous structure. From the water soluble tetrazolium salt (WST) and live and dead assay data, it was proven that there was no significant cytotoxicity and that cells were well dispersed. The chitosan hydrogel was well printed under temperature-controlled condition, and cells were well laden inside gel. The cytotoxicity of laden cells was evaluated by live and dead assay. In conclusion, chitosan bioink can be a candidate for 3D bioprinting.

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Characterizations and Release Behavior of Poly [(R)-3-hydroxy butyrate]-co-Methoxy Poly(ethylene glycol) with Various Block Ratios

  • Jeong, Kwan-Ho;Kwon, Seung-Ho;Kim, Young-Jin
    • Macromolecular Research
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    • v.16 no.5
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    • pp.418-423
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    • 2008
  • Poly[(R)-3-hydroxy butyrate] (PHB) and methoxy poly(ethylene glycol) (mPEG) were conjugated by the transesterification reaction with tin(II)-ethylhexanoate (Sn(Oct)-II) as a catalyst. Hydrophobic PHB and hydrophilic mPEG formed an amphiphilic block copolymer which was formed with the self-assembled polymeric micelle in aqueous solution. In this study, we tried to determine the optimum ratio of hydrophobic/hydrophilic segments for controlled drug delivery. The particle size and shape of the polymeric micelle were measured by atomic force microscopy (AFM) and transmission electron microscopy (TEM). Their size were 61-102 nm with various block ratios. Griseofulvin was loaded in the polymeric micelle as a hydrophobic model drug. The loading efficiency and release profile were measured by high performance liquid chromatography (HPLC). The model drug in our system was constantly released for 48 h.

Encapsulation of CdSe/ZnS Quantum Dots in Poly(ethylene glycol)-Poly(D,L-lactide) Micelle for Biomedical Imaging and Detection

  • Lee, Yong-Kyu;Hong, Suk-Min;Kim, Jin-Su;Im, Jeong-Hyuk;Min, Hyun-Su;Subramanyam, Elango;Huh, Kang-Moo;Park, Sung-Woo
    • Macromolecular Research
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    • v.15 no.4
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    • pp.330-336
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    • 2007
  • Luminescent CdSe/ZnS QDs, with emission in the red region of the spectrum, were synthesized and encapsulated in poly(ethylene glycol)-poly(D,L-lactide) diblock copolymer micelles, to prepare water-soluble, bio-compatible QD micelles. PEG-PLA diblock copolymers were synthesized by ring opening polymerization of D,L-lactide, in the presence of methoxy PEG as a macro initiator. QDs were encapsulated with PEG-PLA polymers using a solid dispersion method in chloroform. The resultant polymer micelles, with encapsulated QDs, were characterized using various analytical techniques, such as UV- Vis measurement, light scattering, fluorescence spectroscopy, transmission electron microscopy (TEM) and atomic forced microscopy (AFM). The polymer micelles, with encapsulated QDs, were spherical and showed diameters in the range of 20-150 nm. The encapsulated QDs were highly luminescent, and have high potential for applications in biomedical imaging and detection.

A Polymeric Micellar Carrier for the Solubilization of Biphenyl Dimethyl Dicarboxylate

  • Chi, Sang-Cheol;Yeom, Dae-Il;Kim, Sung-Chul;Park, Eun-Seok
    • Archives of Pharmacal Research
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    • v.26 no.2
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    • pp.173-181
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    • 2003
  • A polymeric micelle drug delivery system was developed to enhance the solubility of poorly-water soluble drug, biphenyl dimethyl dicarboxylate, DDB. The block copolymers consisting of poly(D,L-lactide) (PLA) as the hydrophobic segment and methoxy poly(ethylene glycol) (mPEG) as the hydrophilic segment were synthesized and characterized by NMR, DSC and MALDI-TOF mass spectroscopy. The size of the polymeric micelles measured by dynamic light scattering showed a narrow monodisperse size distribution with the average diameter less than 50 nm. The MW of mPEG-PLA, 3000 (MW of mPEG, 2 K; MW of PLA, 1K), and the presence of hydrophilic and hydrophobic segments on the polymeric micelles were confirmed by MALDI-TOF mass spectroscopy and NMR, respectively. Polymeric micelle solutions of DDB were prepared by three different methods, i.e. the matrix method, emulsion method and dialysis method. In the matrix method, DDB solubility was reached to 13.29 mg/mL. The mPEG-PLA 2K-1K micelle system was compared with the poloxamer 407 micelle system for their critical micelle concentration, micelle size, solubilizing capacity, stability in dilution and physical state. DDB loaded-polymeric micelles prepared by the matrix method showed a significantly increased aqueous solubility (>5000 fold over intrinsic solubility) and were found to be superior to the poloxamer 407 micelles as a drug carrier.