Poly(ethylene glycol)-oligolactates with monodisperse hydrophobic blocks: Preparation, characterization, and behavior in water

被引:21
作者
Carstens, MG
van Nostrum, CF
Ramzi, A
Meeldijk, JD
Verrijk, R
de Leede, LL
Crommelin, DJA
Hennink, WE
机构
[1] Univ Utrecht, UIPS, Dept Pharmaceut, Fac Pharmaceut Sci, NL-3508 TB Utrecht, Netherlands
[2] Univ Utrecht, Dept Cell Biol, EMU, NL-3584 CH Utrecht, Netherlands
关键词
D O I
10.1021/la051972t
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Methoxypoly(ethylene glycol)-b-oligo-L-lactate (mPEG-b-OLA) diblock oligomers with monodisperse OLA blocks were obtained by fractionation of polydisperse block oligomers using preparative HPLC. The fractionated oligomers were composed of an mPEG block with a molecular weight of 350, 550, or 750 and an OLA block with a degree of polymerization of 4,6, 8, or 10. The diblock oligomers with a low PEG content were fully amorphous, with glass transition temperatures ranging from -60 to -20 degrees C, indicating that the blocks were miscible. Upon heating aqueous dispersions of the block oligomers, cloud points, depending on the PEG/OLA ratio of the block oligomer, were observed at temperatures above 40 degrees C. The monodispersity of the hydrophobic block enabled the amphiphilic molecules to form nanoparticles in water with a hydrodynamic radius of 130-300 nm, at concentrations above the critical aggregation concentration (0.4-1 mg/mL), whereas polydisperse mPEG-b-OLAs gave formation of large aggregates. Static light scattering measurements showed that the nanoparticles have a low density (0.6-25 mg/mL), indicating that the particles are highly hydrated. In agreement herewith, the H-1 NMR spectra of nanoparticles in D2O closely resembled spectra in a good solvent for both blocks (CDCl3). It is therefore suggested that the nanoparticles contain a hydrated core of mPEG-b-OLA block oligomers, stabilized by a thin outer PEG layer. The particles were stable for two weeks, except for the mPEG350 series and mPEG750-b-OLA(4), indicating that both the PEG block size and the PEG weight fraction of the oligomers determine their stability. The evident self-emulsifying properties of mPEG-b-oligo-L-lactates with monodisperse hydrophobic blocks as demonstrated in this study, together with their expected biocompatibility and biodegradability, make these systems well suitable for pharmaceutical applications.
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收藏
页码:11446 / 11454
页数:9
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