• 제목/요약/키워드: Nanoparticle drug delivery system

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Recent advances in utilization of photochemical internalization (PCI) for efficient nano carrier mediated drug delivery

  • Park, Wooram;Park, Sin-Jung;Lee, Jun;Na, Kun
    • Biomaterials and Biomechanics in Bioengineering
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    • 제2권1호
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    • pp.1-13
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    • 2015
  • Despite recent progresses in nanoparticle-based drug delivery systems, there are still many unsolved limitations. Most of all, a major obstacle in current nanoparticle-based drug carrier is the lack of sufficient drug delivery into target cells due to various biological barriers, such as: extracellular matrix, endolysosomal barrier, and drug-resistance associated proteins. To circumvent these limitations, several research groups have utilized photochemical internalization (PCI), an extension of photodynamic therapy (PDT), in design of innovative and efficient nano-carriers drug delivery. This review presents an overview of a recent research on utilization of PCI in various fields including: anti-cancer therapy, protein delivery, and tissue engineering.

Evaluation of the cytotoxicity of gold nanoparticle-quercetin complex and its potential as a drug delivery vesicle

  • Pak, Pyo June;Go, Eun Byeol;Hwang, Min Hee;Lee, Dong Gun;Cho, Mi Ju;Joo, Yong Hoon;Chung, Namhyun
    • Journal of Applied Biological Chemistry
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    • 제59권2호
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    • pp.145-147
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    • 2016
  • Recently, conjugates of medicinal herb-derived bioflavonoids, such as quercetin, and gold nanoparticles (GNPs) have gained attention as targeted drug delivery systems. In the present study, because quercetin is an important flavonoid with anti-cancer, anti-inflammatory, and anti-oxidant properties, GNP-quercetin complexes (GNPQs) were synthesized to investigate possible adverse effects such as cytotoxicity. We found that while quercetin was cytotoxic, GNPQs were not cytotoxic towards the RAW 264.7 and THP-1 cell lines. Therefore, GNPQs may serve as a potential drug delivery system for cancer treatment.

Doxorubicin-loaded PEI-silica Nanoparticles for Cancer Therapy

  • Heekyung Park;Seungho Baek;Donghyun Lee
    • Korean Chemical Engineering Research
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    • 제61권4호
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    • pp.570-575
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    • 2023
  • Targeted anticancer drug delivery systems are needed to enhance therapeutic efficacy by selectively delivering drugs to tumor cells while minimizing off-target effects, improving treatment outcomes and reducing toxicity. In this study, a silica-based nanocarrier capable of targeting drug delivery to cancer cells was developed. First, silica nanoparticles were synthesized by the Stöber method using the surfactant cetyltrimethylammonium bromide (CTAB). Increasing the ratio of EtOH in the solvent produced uniformly spherical silica nanoparticles. Washing the nanoparticles removed unreacted residues, resulting in a non-toxic carrier for drug delivery in cells. Upon surface modification, the pH-responsive polymer, polyethyleneimine (PEI) exhibited slow doxorubicin release at pH 7.4 and accelerated release at pH 5.5. By exploiting this feature, we developed a system capable of targeted drug release in the acidic tumor microenvironment.

Poly(vinyl pyrrolidone) Conjugated Lipid System for the Hydrophobic Drug Delivery

  • Lee, Hye-Yun;Yu, Seol-A;Jeong, Kwan-Ho;Kim, Young-Jin
    • Macromolecular Research
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    • 제15권6호
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    • pp.547-552
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    • 2007
  • Water soluble polymer, poly(vinyl pyrrolidone) was chosen to conjugate with 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine-N-(succinyl) (N-succinyl DPPE) to make a new drug delivery system. PVP with an amine group (amino-PVP) was polymerized by free radical polymerization. The amine group of amino-PVP was conjugated with the carboxylic group of N-succinyl DPPE. The resultant conjugate could form nanoparticles in the aqueous solution; these nanoparticles were termed a lipid-polymer system. The critical aggregation concentration was measured with pyrene to give a value of $1{\times}10^{-3}g/L$. The particle size of the lipid-polymer system, as measured by DLS, AFM and TEM, was about 70 nm. Lipophilic component in the inner part of the lipid-polymer system could derive the physical interaction with hydrophobic drugs. Griseofulvin was used as a model drug in this study. The loading efficiency and release profile of the drug were measured by HPLC. The loading efficiency was about 54%. The release behavior was sustained for a prolonged time of 12 days. The proposed lipid-polymer system with biodegradable and biocompatible properties has promising potential as a passive-targeting drug delivery carrier because of its small particle size.

독시사이클린 나노입자가 함유된 치주용 키토산 스트립의 제조 및 특성 (Preparation and Characterization of Periodontal Chitosan Strip Containing Doxycycline Nanoparticle)

  • 송경숙;양재헌;김영일;정규호
    • Journal of Pharmaceutical Investigation
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    • 제31권4호
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    • pp.233-239
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    • 2001
  • Local drug delivery by using biocompatible polymers has been developed in the treatment of periodontitis for many years. In the field of dental therapy, doxycycline is usually a first choice because of its broad-spectrum antibiotic activity. The strip releases antibiotics for a week, and the polymer should be degradable after a week. In this study, we prepared and evaluated the chitosan strips and nanoparticle strips containing doxycycline hydrochloride, and studied their antiacterial activity, dissoultion, and degrability in vitro. The weight of cast strip containing a 5 mg of doxycycline hydrochloride and a 45 mg of chitosan polymer was $57.67{\pm}0.17\;mg$. The release rate of doxycycline hydrochloride from the strip was measured by HPLC. The drug released from chitosan strip and nanoparticle strip was shown to be $50\;{\mu}g/mL$ in first 24 hours. In antibacterial test showed growth inhibitory activity after 24 hrs anaerobic incubation. In vitro degradability showed demolished weight of $93.74{\pm}0.08%$ chitosan strip, $82.48{\pm}1.29%$ chitosan nanoparticle strip, $2.47{\pm}1.99%$ polycarprolactione strip (control). These results showed that, with this doxycycline hydrochloride strip, it is feasible to obtain a sustained release of the drug within the periodontal pocket for seven days which may be improve for local drug delivery system for treatment of periodontal disease.

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다양한 금속 이온을 이용한 카세인 단백질 나노입자 형성 및 약물 전달체 특성 연구 (Preparation and Characterization of Casein Nanoparticles with Various Metal Ions as Drug Delivery Systems)

  • 김민주;이슬기;최준식
    • 공업화학
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    • 제34권2호
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    • pp.121-125
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    • 2023
  • 카세인(casein)은 포유류의 우유에서 발견되는 단백질로 우유에서는 80% 이상 함유되어 있다. 사람의 모유에는 약 20~45%가 포함되어 있으며 생체 적합성이 높아 의료 및 산업 소재로 사용되고 있다. 카세인은 양친매성 구조로 내부는 소수성이기 때문에 수용액에서 마이셀로 자가 조립이 가능하여 난용성 약물을 봉입할 수 있다. 또한, 단백질 고분자 소재로 생분해성을 갖고 있어 약물의 전달체로서 적합한 특징을 가진다. 본 연구에서는 칼슘 이온 외에 마그네슘, 아연, 철 등 생체 내 존재하는 다양한 금속 이온들을 사용하여 각각 효과적인 카세인 나노입자 형성 조건을 규명하였다. 동적 광산란 측정기와 제타 전위 측정을 통해 150 nm 이하의 균일한 사이즈를 유지하고 음전하를 띠는 나노입자가 형성됨을 확인하였다. 또한, 각각의 카세인 나노입자가 HeLa 세포주에서 80% 이상의 생존율을 나타내 낮은 세포 독성을 확인하였고, 카세인 나노입자 내부에 시험 약물로서 나일 레드를 봉입하여 세포 내부로 효과적으로 유입됨을 공초점 현미경으로 입증하였다. 본 실험들을 통해 제조된 카세인 나노입자의 약물 전달체로서의 가능성을 확인하였다.

효과적인 약물전달 시스템을 위한 나노입자 유도 장치 (Nanoparticle Inducing Device for Effective Drug Delivery System)

  • 이총명;한현호;장병한;오은설;기재홍
    • 대한의용생체공학회:의공학회지
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    • 제38권3호
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    • pp.102-110
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    • 2017
  • 본 논문은 자석을 회전시켜 실시간으로 자기장을 변화시키고 그로 인해 특정 조건에서 산화철 나노입자를 side point(피부)보다 center point(심부)에서 더 많이 유도할 수 있다는 가능성을 제시하였다. 향후 연구로 유속에 따른 Critical Magnetic flux density, 시간에 따른 나노입자 축적량, 자기장과 산화철 나노입자의 상호작용을 고려한 실험 설계, 전자석 등을 이용한 자기장조절을 연구하여 실질적인 혈관에서 본 실험을 진행할 계획이다.

나노의학: 나노물질을 이용한 약물전달시스템과 나노입자의 표적화 (Nanomedicine: Drug Delivery Systems and Nanoparticle Targeting)

  • 윤혜원;강건욱;정준기;이동수
    • Nuclear Medicine and Molecular Imaging
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    • 제42권5호
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    • pp.337-346
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    • 2008
  • Applications of nanotechnology in the medical field have provided the fundamentals of tremendous improvement in precise diagnosis and customized therapy. Recent advances in nanomedicine have led to establish a new concept of theragnosis, which utilizes nanomedicines as a therapeutic and diagnostic tool at the same time. The development of high affinity nanoparticles with large surface area and functional groups multiplies diagnostic and therapeutic capacities. Considering the specific conditions related to the disease of individual patient, customized therapy requires the identification of disease target at the cellular and molecular level for reducing side effects and enhancing therapeutic efficiency. Well-designed nanoparticles can minimize unnecessary exposure of cytotoxic drugs and maximize targeted localization of administrated drugs. This review will focus on major pharmaceutical nanomaterials and nanoparticles as key components of designing and surface engineering for targeted theragnostic drug development.

Poly((R)-3-hydroxybutyric acid)/Poly(ethylene glycol) 양친성 블록 공중합체를 이용한 약물전달체용 고분자 미셀 (Polymeric Micelle Using Poly((R)-3-hydroxybutyric acid)/Poly(ethylene glycol) Amphiphilic Block Copolymer for Drug Delivery System)

  • 정관호;김영진
    • 폴리머
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    • 제30권6호
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    • pp.512-518
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    • 2006
  • 양친성 블록공중합체는 생분해성 고분자인 poly((R)-3-hydroxybutyrie acid), PHB와 친수성 고분자인 poly(ethylene glycol), PEG를 이용하여 제조되었다. 미생물에 의해 생산된 분자량이 수십만인 PHB는 약물전달용 재료로 적합하지 않으므로 산 촉매 가수분해를 통해 분자량이 $3000{\sim}30000$을 가지도록 조절되었다. 공중합체를 수용액에 넣으면, 고분자들은 자기 조립에 의해 친수성인 PEG가 소수성인 PHB를 감싸는 형태의 고분자 미셀을 형성한다. 형성된 고분자 미셀은 생분해성과 생체적합성을 가지면서 생체 내에서 낮은 독성과 환자 친화적인 특성을 가지므로 약물 전달체로의 이용이 가능하다. 양친성 블록 공중합체는 PHB에 PEG를 도입한 것으로 에스테르교환(transesterification) 반응을 통해 유도되었다. PEG는 친수성 블록의 형성과 반응성을 향상시키기 위해 말단의 작용기를 개질한 후 사용되었다. 양친성 블록 공중합체 형성에 대한 열적 특성과 화학적 구조 분석은 DSC, FTIR, $^1H-NMR$을 사용하여 알아보았다. 임계 미셀 농도(critical micelle concentration, CMC)는 고분자 미셀이 형성되는 시점으로 형광 분광기를 사용하여 분석한 결과 $5{\times}10^{-5}g/L$ 부근에서 측정되었다. 수용액 상의 고분자 미셀은 냉동 건조 후, 분말형태의 나노입자를 얻었다. 고분자 미셀의 크기는 dynamic light scattering으로 측정한 결과 약 130 nm 정도로 나타났다. 또한 atomic force microscopy 측정을 통해 크기가 약 130 nm 정도인 구형 입자를 확인하였다. 나노입자가 형성된 고분자 미셀은 소수성 약물을 담지하여 수동적 표적지향형 약물 전달용 수송체로 이용이 가능할 것이다.

Local Drug Delivery System Using Biodegradable Polymers

  • Khang, Gil-Son;Rhee, John M.;Jeong, Je-Kyo;Lee, Jeong-Sik;Kim, Moon-Suk;Cho, Sun-Hang;Lee, Hai-Bang
    • Macromolecular Research
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    • 제11권4호
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    • pp.207-223
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    • 2003
  • For last five years, we are developing the novel local drug delivery devices using biodegradable polymers, especially polylactide (PLA) and poly(D,L-lactide-co-glycolide) (PLGA) due to its relatively good biocompatibility, easily controlled biodegradability, good processability and only FDA approved synthetic degradable polymers. The relationship between various kinds of drug [water soluble small molecule drugs: gentamicin sulfate (GS), fentanyl citrate (FC), BCNU, azidothymidine (AZT), pamidronate (ADP), $1,25(OH)_2$ vitamin $D_3$, water insoluble small molecule drugs: fentanyl, ipriflavone (IP) and nifedipine, and water soluble large peptide molecule drug: nerve growth factor (NGF), and Japanese encephalitis virus (JEV)], different types of geometrical devices [microspheres (MSs), microcapsule, nanoparticle, wafers, pellet, beads, multiple-layered beads, implants, fiber, scaffolds, and films], and pharmacological activity are proposed and discussed for the application of pharmaceutics and tissue engineering. Also, local drug delivery devices proposed in this work are introduced in view of preparation method, drug release behavior, biocompatibility, pharmacological effect, and animal studies. In conclusion, we can control the drug release profiles varying with the preparation, formulation and geometrical parameters. Moreover, any types of drug were successfully applicable to achieve linear sustained release from short period ($1{\sim}3$ days) to long period (over 2 months). It is very important to design a suitable formulation for the wanting period of bioactive molecules loaded in biodegradable polymers for the local delivery of drug. The drug release is affected by many factors such as hydrophilicity of drug, electric charge of drug, drug loading amount, polymer molecular weight, the monomer composition, the size of implants, the applied fabrication techniques, and so on. It is well known that the commercialization of new drug needs a lot of cost of money (average: over 10 million US dollar per one drug) and time (average: above 9 years) whereas the development of DDS and high effective generic drug might be need relatively low investment with a short time period. Also, one core technology of DDS can be applicable to many drugs for the market needs. From these reasons, the DDS research on potent generic drugs might be suitable for less risk and high return.