• 제목/요약/키워드: pH-Sensitive Swelling

검색결과 35건 처리시간 0.031초

pH-민감성 삼성분계 공중합체 젤의 합성 및 팽윤 속도론 (Synthesis and Swelling Kinetics of a Cross-Linked pH-Sensitive Ternary Copolymer Gel System)

  • Zafar, Zafar Iqbal;Malana, M.A.;Pervez, H.;Shad, M.A.;Momma, K.
    • 폴리머
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    • 제32권3호
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    • pp.219-229
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    • 2008
  • A pH sensitive ternary copolymer gel was synthesized in the presence of ethylene glycol dimethacrylate (EGDMA) as a crosslinking agent through radical polymerization of vinyl acetate (VA), acrylic acid (AA) and methyl acrylate(MA) with a weight ratio of 1 : 1.3 : 1. A number of experiments were carried out to determine the swelling behavior of the gel under a variety of pH conditions of the swelling medium. As the pH of the swelling medium was changed from 1.0 to 8.0 at $37^{\circ}C$, the gel showed a shift in the pH-dependent swelling behavior from Fickian (n=0.3447) to non-Fickian (n=0.9125). The resulting swelling parameters were analyzed using graphical and statistical methods. The results showed that the swelling of the gel was controlled by the pH of the medium, i.e. $n=n_o{\exp}(S_{C}pH)$, where n is the diffusion exponent, $n_o(=28.9645{\times}10^{-2})$ is the pre-exponential factor and $S_C$(=0.1417) is pH sensitivity coefficient. The swelling behavior of the gel was also examined in aliphatic alcohols. The results showed that the rate of swelling increased with increasing number of carbon atoms in the alcoholic molecular chain.

pH-Sensitive Curdlan Acetate Microspheres를 이용한 Indomethacin의 방출 특성

  • 이창문;이영진;이기영;최춘순
    • 한국생물공학회:학술대회논문집
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    • 한국생물공학회 2003년도 생물공학의 동향(XII)
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    • pp.739-742
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    • 2003
  • 생분해성인 Curdlan을 이용하여 pH 의존성 약물 전달계 개발을 위한 실험을 수행한 결과, pH 1,4에서 약물 방출 보다 pH 7.4에서 약물 방출이 10배 이상 증가하였다. 이러한 결과로 curdlan acetate microsphere는 pH 의존성 약물 전달계로 유용하다고 판단된다.

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Curdlan Acetate Microspheres를 이용한 Indomethacin의 pH 민감성 방출 (pH-Sensitive Release of Indomethacin from Curdlan Acetate Microspheres)

  • 이창문;이영진;김형주;박희정;이기영
    • KSBB Journal
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    • 제20권1호
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    • pp.46-49
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    • 2005
  • 생분해성인 curdlan을 아세틸화하여 소수성 약물인 IND의 치료효과를 증진시킬 수 있는 약물전달시스템 개발을 위한 실험을 수행한 결과, IND가 포함된 CAMs를 제조할 수 있었고, IND의 loading efficiency는 $58.44\%$였다. 약물 방출 거동에 영향을 미치는 요인 중 제조한 CAMs의 swelling 특성은 처음 1시간 동안 pH 1.4에서는 아무런 변화가 없었고 PH 7.4에서는 $30\%$의 swelling을 보였고 pH 1.4에서보다 pH 7.4에서의 swelling이 약 3배 높았다. 또한 CAMs로부터 IND의 방출은 pH 1.4에서보다 pH 7.4에서 약 15배 이상 증가하였다. 이러한 결과로 CAMs는 IND의 약물전달시스템으로 유용할 것이며 특히 pH에 의존하는 약물방출 경향을 보였다.

글루코스를 함유한 음이온 하이드로젤의 pH 감응성 동적 팽윤거동 (pH-Sensitive Dynamic Swelling Behavior of Glucose-containing Anionic Hydrogels)

  • 김범상
    • Korean Chemical Engineering Research
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    • 제43권2호
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    • pp.299-304
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    • 2005
  • 음이온 하이드로젤은 그들이 가지고 있는 pH 감응성 팽윤거동 때문에 단백질 약물의 경구투여용 전달물질로써 많은 주목을 받고 있다. 본 연구에서는 음이온 하이드로젤의 pH 변화에 따른 용매의 침투 메커니즘을 규명하기 위하여 methacrylic acid와 2-methacryloxyehtyl glucoside를 공중합하여 P(MAA-co-MEG) 하이드로젤을 합성한 후 pH 변화에 따른 하이드로젤의 동적 팽윤거동을 관찰하였다. 용매의 침투 메커니즘이 Fickian 또는 non-Fickian 인지를 설명할 수 있는 특성지수 n을 $M_t/M_{\infty}=kt^n$ 관계식으로부터 계산하였다. 하이드로젤에 대한 용매의 침투 메커니즘은 주위 pH의 영향을 많이 받았으며, 젤의 $pK_a$ 보다 높은 pH인 7.0에서는 침투 메커니즘이 상대적으로 고분자사슬의 이완에 의한 지배를 많이 받는다는 것을 알 수 있었다. 한편, pH 7.0에서 고분자 이완에 의한 용매의 침투 메커니즘은 하이드로젤에 존재하는 카르복실산의 이온화에 기인한 것임을 ATR-FTIR 분광분석을 이용하여 확인하였다.

양전하와 음전하를 띄며 pH 감응성인 카본나노튜브-콜라젠 Hydrogel의 합성 (Preparation of Positively and Negatively Charged Carbon Nanotube-Collagen Hydrogels with pH Sensitive Characteristic)

  • 서재원;신원상
    • 대한화학회지
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    • 제60권3호
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    • pp.187-193
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    • 2016
  • 다양한 pH 환경에서 감응 할 수 있는 CNTs/Collagen Hydrogel들을 양이온성 CNT인 CNT-NH2와 그리고 음이온성 CNT인 CNT-COOH를 Collagen(CG)과의 접목을 통하여 양이온성 또는 음이온성 Hydrogel들을 합성하는데 성공하였다. 구체적으로 pH 4에서 크게 Swelling되는 양이온성 CNT-NH2/CG Hydrogel과 pH 10에서 크게 Swelling되는 음이온성 CNT-COOH/CG Hydrogel들을 합성하였다. pH 4~10 범위에서의 제타전위 값 측정을 통해 사용된 CNT(CNT-NH2와 CNT-COOH)들, CG, 합성된 CNT-NH2/CG Hydrogel 및 CNT-COOH/CG Hydrogel들의 표면전하 값 변화를 추적하였다. 서로 다른 pH 조건에서 Swelling 변화 실험을 통해 CG의 Fibril사이 공극 변화를 예측해 약물 방출 가능성을 체크하였다. 양전하성 CNT-NH2/CG Hydrogel의 경우 pH 4에서 가장 높은 Swelling(pH 7 대비 5% 상승)을 보였으며, 반대로 음전하성 CNT-COOH/CG Hydrogel의 경우에는 pH 10에서 가장 높은 Swelling(pH 7 대비 10% 상승)을 보였다. 이러한 결과는 본 연구에서 개발 한 pH 감응성 Hydrogel들이 산성(pH ~2의 위장) 또는 알칼리성(pH ~9의 소장)에서 특이적으로 확장된 다공성 구조를 통해 약물을 쉽게 방출 할 수 있는 pH 감응성 약물전달 시스템에 적용 가능함을 확인 하였다.

Drug Release from the Enzyme-Degradable and pH-Sensitive Hydrogel Composed of Glycidyl Methacrylate Dextran and Poly{acrylic acid)

  • Kim In-Sook;Oh In-Joon
    • Archives of Pharmacal Research
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    • 제28권8호
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    • pp.983-987
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    • 2005
  • Hydrogels composed of glycidyl methacrylate dextran (GMD) and poly(acrylic acid, PM) were prepared by UV irradiation method for colon-specific drug delivery. GMD was synthesized by coupling of glycidyl methacrylate to dextran in the presence of 4-(N,N-dimethylamino)pyridine. GMD was photo-polymerized by ammonium peroxydisulfate as initiating system in phosphate­buffered solution (0.1 M, pH 7.4). And then, acrylic acid monomer was added and subsequently heat-polymerized by 2,2'-azobisisobutyronitrile as an initiator. The hydrogels exhibited high swelling ratio (about 20) at $37^{\circ}C$, and showed a pH-dependent swelling behavior. In addition, the swelling ratio of the hydrogel was remarkably enhanced to about 45 times in the presence of dextranase at pH 7.4. The swelling-deswelling behavior proceeded reversibly for the GMD/PM hydrogels between pH 2 and pH 7.4. Release of 5-aminosalicylic acid from the GMD/PAA hydrogels was evaluated in simulated gastrointestinal pH fluids in the absence or presence of dextranase. We concluded that the hydrogels prepared could be used as a dual-sensitive drug carrier for sequential release in gastrointestinal tract.

pH 의존성 Methacrylic acid 공중합체의 팽윤특성 (pH-dependent Swelling Properties of Methacrylic Acid Copolymer Hydrogels)

  • 김경충;이승진
    • 약학회지
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    • 제33권6호
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    • pp.372-376
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    • 1989
  • Equilibrium swelling and pH-sensitivity of a polyelectrolyte copolymer hydrogel were controlled by employing copolymers with different hydrophilic-hydrophobic balances. Model pH-sensitive hydrogels, e.g., poly(methacrylic acid), poly(methacrylic acid-co-acrylamide), poly(methacrylic acid-co-2-hydroxyethylmethacrylate), poly(methacrylic acid-co-styrene) were synthesized at various monomer compositions. As hydrophobicity of the copolymer hydrogels increased, the equilibrium swelling decreased while the pH-sensitivity increased. In the case of poly(methacrylic acid-co-acrylamide), polymer-polymer interaction significantly affected the equilibrium swelling and provided a wide range control of pH-sensitivity.

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핵자기공명 현미영상법을 이용한 약물전달체계의 비파괴연구 (Noninvasive study of Drug Delivery Systems using Nuclear Magnetic Resonance Microimaging)

  • 이동훈;고락길
    • 대한의용생체공학회:의공학회지
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    • 제18권2호
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    • pp.173-178
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    • 1997
  • pH sensitive polymers have long been utilized as one important type among many interesting drug delivery systems. This is due to the reason of different pH environments in human organs, which requires different pH control mechanism depending upon the organs. In the present study the pH sensitivity was investigated for both pH sensitive and pH insensitive biopolymers using the diffusion effect along with the swelling effect. NMR microscopy was performed along with optical microscopy. For the analysis of diffusion effect, UMR Microscopy was perFormed to measure diffusion coefficients for various liquids such as distilled water, acetone and DMSO(dimethyl sulfoxide). Also, this technique is expected to contribute to the studies for many pH drug delivery systems.

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pH- and Temperature-Sensitive Bifunctional Hydrogels of N-Isopropylacrylamide and Sulfadimethoxine Monomer

  • Lee, Jin-Woo;Lee, Doo-Sung;Kim, Sung-Wan
    • Macromolecular Research
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    • 제11권3호
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    • pp.189-193
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    • 2003
  • pH- and temperature-sensitive bifunctional hydrogels composed of N-isopropylacrylamide (NiPAAm) and a sulfadimethoxine monomer (SDM) derived from sulfadimethoxine were prepared. These hydrogels exhibit simultaneous pH- and temperature-induced volume-phase transitions. The pH-induced volume-phase transition behavior is produced by the ionization/deionization of SDM and is very sharp. In the high pH region, the ionization of SDM induces swelling of the hydrogels. In the low pH region, the deionization of SDM induces deswelling of the hydrogels. The temperature-induced volume-phase transition behavior of the bifunctional hydrogels exhibits negative thermosensitivity because of the NiPAAm component. The hydrogels swell even at low pH as the temperature decreases. The hydrogels swell at low temperature and high pH, and deswell at high temperature and low pH. The volume of the hydrogels dependl on the balance of the swelling and deswelling produced by the two competing stimuli, pH and temperature.

pH 진동계 안에서 pH 감응성 자기진동 IPN 하이드로젤의 합성과 분석 (Synthesis and Characterization of pH-sensitive and Self-oscillating IPN Hydrogel in a pH Oscillator)

  • Wang, Liping;Ren, Jie;Zhang, Xiaoyan;Yang, Xiaoci;Yang, Wu
    • 폴리머
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    • 제39권3호
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    • pp.359-364
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    • 2015
  • A self-oscillating interpenetrating polymer network (IPN) poly(acrylic acid)/poly(ethylene glycol) (PAA/PEG) hydrogel was prepared by using radical polymerization with a two-step method. The IPN hydrogel was characterized by FTIR spectroscopy and morphological analysis. The results indicated that the chains of PEG and PAA twined to form porous structure which is beneficial to water molecules entering inside of the hydrogel. In addition, the pH-responsive behavior, salt sensitivity, swelling/de-swelling oscillatory behaviors and self-oscillation in a closed pH oscillator were also studied. The results showed that the prepared hydrogel exhibited pH-sensitivity, good swelling/de-swelling reversibility and excellent salt sensitivity. The self-oscillating behavior of swelling/de-swelling for the prepared hydrogel was caused by pH alteration coupled with the external media. This study may create a new possibility as biomaterial including new self-walking actuators and other related devices.