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A new drug carrier:Magnetite nanoparticles coated with amphiphilic block copolymer 被引量:6

A new drug carrier:Magnetite nanoparticles coated with amphiphilic block copolymer
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摘要 This paper reports on the synthesis and characterization of 4 nm magnetite nanoparticles coated with amphiphilic block copolymers of poly(ethyl methacrylate)-b-poly(2-hydroxyethyl methacrylate) (PEMA- b-PHEMA) by surface-initiated atom transfer radical polymerization (ATRP), which can act as new potential carriers for hydrophobic targeted drug delivery. Vibrating sample magnetometer analysis indi-cated that the magnetite nanoparticles were superparamagnetic at room temperature. Thermogravim-etric analysis (TGA) was applied to studying the property of surface of magnetite nanoparticles, and the surface density of macromolecules was calculated. The grafting density of oleic acid, BrMPA and PEMA was 5.8, 3.9, 0.16 chain/nm2 respectively, which indicates that the initiation efficiency decreases due to the influence of large space of oleic acid molecules. In vitro progesterone and (-)-isoproterenol hy-drochloride release in phosphate buffered saline (PBS) at pH 7.0 and 37℃ was conducted in order to demonstrate the function of drug loading and release. The results showed that the amount of drug carried into the core-shell Fe3O4@PEMA-b-PHEMA depends on the length of hydrophobic segment of block copolymer. The release of progesterone (37% after 22 h in our previous work) was compared with the release of (-)-isoproterenol hydrochloride (80% after 50 min), demonstrating that the strong hy-drophobic interaction between hydrophobic segment and drug can effectively control the release of hydrophobic drugs. This paper reports on the synthesis and characterization of 4 nm magnetite nanoparticles coated with amphiphilic block copolymers of poly(ethyl methacrylate)-b-poly(2-hydroxyethyl methacrylate) (PEMA- b-PHEMA) by surface-initiated atom transfer radical polymerization (ATRP), which can act as new potential carriers for hydrophobic targeted drug delivery. Vibrating sample magnetometer analysis indicated that the magnetite nanoparticles were superparamagnetic at room temperature. Thermogravimetric analysis (TGA) was applied to studying the property of surface of magnetite nanoparticles, and the surface density of macromolecules was calculated. The grafting density of oleic acid, BrMPA and PEMA was 5.8, 3.9, 0.16 chain/nm^2 respectively, which indicates that the initiation efficiency decreases due to the influence of large space of oleic acid molecules. In vitro progesterone and (-)-isoproterenol hydrochloride release in phosphate buffered saline (PBS) at pH 7.0 and 37℃ was conducted in order to demonstrate the function of drug loading and release. The results showed that the amount of drug carried into the core-shell Fe3O4@PEMA-b-PHEMA depends on the length of hydrophobic segment of block copolymer. The release of progesterone (37% after 22 h in our previous work) was compared with the release of (-)-isoproterenol hydrochloride (80% after 50 min), demonstrating that the strong hydrophobic interaction between hydrophobic segment and drug can effectively control the release of hydrophobic drugs.
出处 《Chinese Science Bulletin》 SCIE EI CAS 2009年第7期1190-1196,共7页
基金 Supported by the National Natural Science Foundation of China (Grant No. 50573040) Major State Basic Research Development Program of China (Grant No. 2007CB935601)
关键词 双亲嵌段共聚物 纳米涂层 药物载体 磁铁矿 原子转移自由基聚合 甲基丙烯酸乙酯 盐酸异丙肾上腺素 磁性纳米粒子 atom transfer radical polymerization (ATRP), block copolymers, core-shell-corona, drug carriers, magnetite nanoparticles
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参考文献10

  • 1Ranquin A,Versees W,Meier W, et al.Therapeutic nanoreactors: Combining chemistry and biology in a novel triblock copolymer drug delivery system[].Nano Letters.2005
  • 2Ai H,Flask C,Weinberg B, et al.Magnetite-loaded polymeric mi-celles as ultrasensitive magnetic-resonance probes[].Advanced Materials.2005
  • 3Bai Y P,Teng B,Chen S Z, et al.Preparation of magnetite nanoparticles coated with an amphiphilic block copolymer: A potential drug carrier with a core-shell-corona structure for hydrophobic drug de- livery[].Macromolecular Rapid Communications.2006
  • 4Jones MC,Leroux JC.Polymeric micelles-a new generation of colloidal drug carriers[].European Journal of Pharmaceutics and Biopharmaceutics.1999
  • 5KAKIZAWA Y,KATAOKA K.Block copolymer micelles for delivery of gene and related compounds[].Advanced Drug Delivery Reviews.2002
  • 6Soo P L,Luo L,Maysinger D,et al.Incorporation and Release of Hydrophobic Probes in Biocompatible Polycaprolactone-Block- Poly[ethylene oxide] Micelles: Implications for Drug Delivery[].Langmuir.2002
  • 7Kataoka K,Harada A,Nagasaki Y.Block copolymer micelles for drug delivery: design, characterization and biological significance[].Advanced Drug Delivery Reviews.2001
  • 8Giacomelli,C.,Le,Men,L.,Borsali,R.,Lai-Kee-Him,J.,Brisson,A.,Armes,S. P.,Lewis,A. L.Phosphorylcholine-based ph-responsive diblock copolymer micelles as drug delivery vehicles: light scattering, electron microscopy, and fluorescence experiments[].Biomacromolecules.2006
  • 9Liu,M.,Kono,K.,Frechet,J. M. J.Water-soluble dendritic unimolecular micelles: their potential as drug delivery agents[].J Control Rel.2000
  • 10Dhanikula RS,Hildgen P.Synthesis and evaluation of noveldendrimers with a hydrophilic interior as nanocarriers for drugdelivery[].Bioconjugate Chemistry.2006

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  • 2FAN CaiLing,LI Wei,LI Xin,ZHAO ShiJu,ZHANG Ling,MO YuJun,CHENG RongMing.Efficient photo-assisted Fenton oxidation treatment of multi-walled carbon nanotubes[J].Chinese Science Bulletin,2007,52(15):2054-2062. 被引量:4
  • 3Lu AH,Salabas EL,Schüth F.Magnetic nanoparticles: synthesis, protection,functionalization,and application. Angewandte Chemie International Edition . 2007
  • 4Hu F X,Neoh KG,Kang ET.Synthesis of Folic acid functionalized PLLA-b-PPEGMA nanoparticles for cancer cell targeting. Macromolecular Rapid Communications . 2009
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  • 7Lu J,Ma S,Sun JY,Xia CC,Liu C,Wang ZY,Zhao X,Gao FB,Gong QY,Song B,Shuai XT,Ai H,Gu ZW.Manganese ferrite nanoparticle micellar nanocomposites as MRI contrast agent for liver imaging. Biomaterials . 2009
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  • 10Santra S,Tapec R,Theodoropoulou N,et al.Synthesis and characterization of silica-coated iron oxide nanoparticles in microemulsion: the effect of nonionic surfactants. Langmuir . 2001

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