• Title/Summary/Keyword: Poly(DL-lactide-co-glycolide)

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Synthesis of Poly(DL-lactide-co-glycolide) Copolymers and Its Application (I). Release Characteristics of Clonazepam Using Poly(DL-lactide-co-glycolide) (80:20) Copolymers (Poly(DL-lactide-co-glycolide) 공중합체의 합성과 그 응용 (I). Poly(DL-lactide-co-glycolide)(80:20) 공중합체를 이용한 Clonazepam의 방출특성)

  • Nah, Jae Woon;Lee, Dong Byung;Cho, Chong Su;Jeong, Young Il;Kim, Sung Ho;Kim, Sung Hyun
    • Journal of the Korean Chemical Society
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    • v.42 no.1
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    • pp.92-98
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    • 1998
  • Poly(DL-lactide-co-glycolide) (80:20) was synthesized from DL-lactide and glycolide, and the copolymers was made to micelles containing clonazepam for drug delivery system. The release experiments of the drug from micelles were operated at pH 7.4 phosphate buffer solution $37.0{\pm}0.05^{\circ}C$. The linearly-releasing time ranges of the drug from micelles prepared with the copolymer/drug weight ratio of 20:40, 20:20, and 40:20 (mg) were 50, 41, and 29 days, respectively. So the linearly-releasing time of drug showed the order of micelles 20/40 > micelles 20/20 > micelles 40/20. In short, the formulation allows polymeric micelles to suppress the burst effect of the drug release mechanism, which led to the controlled release pattern and the possibility of drug delivery system for veinous injection.

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Norfloxacin Release from Surfactant-Free Nanoparticles of Poly(DL-lactide-co-glycolide) and Biodegradation (계면활성제를 사용하지 않는 Poly(DL-lactide-co-glycolide) 나노입자로부터의 Norfloxacin 방출과 생분해 특성)

  • 권중근;정영일;장미경;이창형;나재운
    • Polymer(Korea)
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    • v.26 no.4
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    • pp.535-542
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    • 2002
  • We have prepared the surfactant-free nanoparticles of poly(DL-lactide-co-glycolide) (PLGA) by dialysis method and their physicochemical properties such as particle size and drug contents were investigated against various solvent. The size of PLGA nanoparticles prepared by using dimethylacetamide (DMAc), dimethylformamide (DMF), and dimethylsulfoxide (DMSO) was smaller than that from acetone. Also, the order of drug contents was DMAc>DMF>DMSO=acetone. These phenomena could be expected from the fact that solvent affects the size of nanoparticles and drug contents. The PLGA nanoparticles have a good spherical shapes as observed from scanning electron microscopy (SEM) and transmission electron microscopy (TEM). Also, surfactant-free nanoparticles entrapping norfloxacin (NFx) have a good drug loading capacity without free-drug on the surface of nanoparticles confirmed by the analysis of X-ray powder diffraction. Release kinetics of NFx used as a model drug was governed not only by drug contents but also by particle size. Also, the biodegradation rate of PLGA nanoparticles prepared from DMF was faster than that prepared from acetone, indicating that the biodegradation of PLGA nanoparticles is size-dependent.

Assessment of Biodegradability of Polymeric Microspheres in vivo: Poly(DL-lactic acid), poly(L-lactic acid) and poly(DL-lactide-co-glycolid) microspheres

  • Oh, In-Joon;Oh, Jhin-Yee;Lee, Kang-Choon
    • Archives of Pharmacal Research
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    • v.16 no.4
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    • pp.312-317
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    • 1993
  • To confirm a new evaluation tedhnique for biodegradability of biopolymer microsphers in vivo condition, magnetic microsphere sytem was adopted for tracing the microspheres injected and lodged in micr. Microsphers of poly(DL-lactic acid), poly(L-alctic acid) and poly(DL-lactide-coglycolide)(PLGA) were prepared by solvent-extraction method and their organ distribution and biodegradation in mice was examined. Magnetic microspheres lodged in mice organs were recollected from the homogenates of mice organs with a constant flow magnetic separation apparatus. Recollected microspheres were observed by scanning electron microscopy and also were assayed for their magnetite ocntent by atomic absorption spectrophotometry to evaluate the biodegradability of polymeric microspheres. This method seems to be practical and simple to estimate the biodegradability of biopolymers over the conventional methods.

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Clonazepam Release from Poly(DL-lactide-co-glycolide) Nanoparticles Prepared by Dialysis Method

  • Nah, Jae-Woon;Paek, Yun-Woong;Jeong, Young-Il;Kim, Dong-Woon;Cho, Chong-Su;Kim, Sung-Ho;Kim, Myung-Yul
    • Archives of Pharmacal Research
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    • v.21 no.4
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    • pp.418-422
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    • 1998
  • Aim of this work is to prepare poly(DL-lactide-co-glycolide) (PLGA) nanoparticles by dialysis method without surfactant and to investigate drug loading capacity and drug release. The size of PLGA nanoparticles was 269.9 $\pm$118.7 nm in intensity average and the morphology of PLGA nanoparticies was spherical shape from the observation of SEM and TEM. In the effect of drug loading contents on the particle size distribution, PLGA nanoparticles were monomodal pattern with narrow size distribution in the empty and lower drug loading nanoparticles whereas bi- or trimodal pattern was showed in the higher drug loading ones. Release of clonazepam from PLGA nanoparticles with higher drug loading contents was slower than that with lower loading contents.

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Preparation of Poly(Dt-lactide-co-glycolide) Nanoparticles by PEG-PPG Diblock Copolymer (PEG-PPG 블록 공중합체를 이용한 폴리(DL-락타이드-co-글리콜라이드) 나노입자의 제조)

  • 정택규;오유미;신병철
    • Polymer(Korea)
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    • v.27 no.4
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    • pp.370-376
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    • 2003
  • Poly(DL-lactide-co-glycolide) nanoparticles were prepared by the modified spontaneous emulsification solvent diffusion method. Polymer solution was prepared by two water-soluble organic solvents, such as ethanol and acetone. Because of its biocompatible nature, PEG-PPG diblock copolymer was used as surfactant and stabilizer. The influence of several preparative variables on the nanoparticle formation, such as type and concentration of stabilizing agent, stirring methods, water/oil phase ratio and polymer concentration were investigated in order to control and optimize the process. After preparation of nanoparticles, particle size and distribution were evaluated by the light scattering particle analyzer. As results, the particle size was 50-200 nm and dispersibility was monodisperse. It was found that the appropriate selections of binary solvent mixtures and polymeric concentrations in both organic and aqueous phases could provide a good yield and favorable physical properties of PLGA nanoparticles.

Poly(DL-Lactide-co-Glycolide) Nanoparticles Used PEG-PPG Diblock Copolymer by Surfactant: Preparation and Loading of Water Insoluble Drug (유화제로서 PEG-PPG 블록 공중합체를 이용한 Poly(DL-Lactide-co-Glycolide) 나노입자: 제조 및 지용성 약물의 로딩)

  • Taek Kyu Jung;Sung Soo Kim;Byung Cheol Shin
    • Journal of the Korean Chemical Society
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    • v.47 no.5
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    • pp.479-486
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    • 2003
  • In this study, poly(DL-lactide-co-glycolide) nanoparticles loaded with water-insoluble vitamins such as vitamin A (Retinol) and vitamin E acetate were prepared by the emulsification diffusion method. Polymer solution was prepared by the two water-miscible organic solvent, such as ethanol and acetone. Because of its biocompatible property, polyethyleneglycol-polypropyleneglycol diblock copolymer was used as surfactant and stabilizer. The influence of some preparative variables on the nanoparticle formation and on the loading efficiency of active agents, such as the type and concentration of stabilizing agent, the stirring methods, the water/oil phase ratio and the polymer concentration were investigated in order to control and optimize the process. After preparation of nanoparticles loaded with active agent, particle size and distribution were evaluated by the light scattering particle analyzer. The loading efficiency of active agents was evaluated by the UV-visible spectroscopy. As the results, particle size were 50-200 nm and dispersibility was monodisperse. The optimum loading efficiency of active agents was observed 50-60%. It was found that the appropriate of selections of binary solvent mixtures and polymeric concentrations in both organic and aqueous phases could provide good yield and favorable physical properties of PLGA nanoparticles.

Surface Mmodification of Poly(DL-lactide-co-glycolide) Nanoparticle (Poly(DL-lactide-co-glycolide) 나노입자의 표면 수식)

  • Oh, Yu-Mi;Jung, Taek-Kyu;Chi, Sang-Cheol;Shin, Byung-Cheol
    • Journal of the Korean Chemical Society
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    • v.47 no.6
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    • pp.601-607
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    • 2003
  • We studied on preparation of nanoparticles modified surface using biodegradable polymer, poly(DL-lactide-co-glycolide) (PLGA). Two kinds of PLGA nanoparticles were prepared by a spontaneous emulsification solvent diffusion (SESD) method using cetyltrimethylammonium chloride (CTAC) and tetradecyltrimethylammonium bromide (TTAB) as a cationic surfactant and polyethylene glycol-block-polypropylene glycol copolymer (Lutrol F68) as a nonionic surfactant. Model protein was coated on the surface of nanoparticles by the ionic complexation. The model protein was that influenza vaccine ($H_3N_2,\;H_1N_1$, B strain) labeled with NHS-fluorescein. The sizes of cationic nanoparticles were 140-160 nm and the surface charges were 50-60 mV. The sizes of nonionic nanoprticles were 80-90 nm and the surface charge was -10 mV. After coating vaccine on the surface of nanoparticles, the sizes of cationic nanoparticles were increased to 380-400 nm and the size of nonionic nanoparticles was not increased. The amount of coated vaccine on the cationic nanoparticles was 22.73 ${\mu}g$/mg.

Doxorubicin Release from Core-Shell Type Nanoparticles of Poly(DL-lactide-co-glycolide)-Grafted Dextran

  • Jeong, Young-Il;Choi, Ki-Choon;Song, Chae-Eun
    • Archives of Pharmacal Research
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    • v.29 no.8
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    • pp.712-719
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    • 2006
  • In this study, we prepared core-shell type nanoparticles of a poly(DL-lactide-co-glycolide) (PLGA) grafted-dextran (DexLG) copolymer with varying graft ratio of PLGA. The synthesis of the DexLG copolymer was confirmed by $^1H$ nuclear magnetic resonance (NMR) spectroscopy. The DexLG copolymer was able to form nanoparticles in water by self-aggregating process, and their particle size was around $50\;nm{\sim}300\;nm$ according to the graft ratio of PLGA. Morphological observations using a transmission electron microscope (TEM) showed that the nanoparticles of the DexLG copolymer have uniformly spherical shapes. From fluorescence probe study using pyrene as a hydrophobic probe, critical association concentration (CAC) values determined from the fluorescence excitation spectra were increased as increase of DS of PLGA. $^1H-NMR$ spectroscopy using $D_2O$ and DMSO approved that DexLG nanoparticles have core-shell structure, i.e. hydrophobic block PLGA consisted inner-core as a drug-incorporating domain and dextran consisted as a hydrated outershell. Drug release rate from DexLG nano-particles became faster in the presence of dextranase in spite of the release rate not being significantly changed at high graft ratio of PLGA. Core-shell type nanoparticles of DexLG copolymer can be used as a colonic drug carrier. In conclusion, size, morphology, and molecular structure of DexLG nanoparticles are available to consider as an oral drug targeting nanoparticles.