Khorshid Neda Khameh, Zhu Kaizheng, Knudsen Kenneth D, Bekhradnia Sara, Sande Sverre Arne, Nyström Bo
Department of Chemistry, University of Oslo, P.O. Box 1033, Blindern, N-0315, Oslo, Norway.
Department of Physics, Institute for Energy Technology, P. O. Box 40, N-2027, Kjeller, Norway.
Macromol Biosci. 2016 Dec;16(12):1838-1852. doi: 10.1002/mabi.201600277. Epub 2016 Oct 14.
The thermoresponsive amphiphilic block copolymer poly(d,l-lactic acid-co-glycolic acid)-block-poly(ethylene glycol)-block-poly(d,l-lactic acid-co-glycolic acid) (PLGA-PEG -PLGA), which exhibits a reversible temperature-induced sol-gel transition at higher polymer concentrations in aqueous solution has attached a great deal of interest because of its potential in biomedical applications. In the present work, the length of the hydrophobic PLGA blocks is kept constant, whereas the length of the hydrophilic PEG block is altered and this variation has a pronounced impact on the phase behavior of the aqueous samples and the structure of the polymer. A short PEG block promotes gelation at a low temperature, whereas a longer PEG block shifts the gelation point to higher temperature. By using a combination of turbidity, rheology, and small angle neutron scattering (SANS) methods, the authors have revealed dramatic temperature effects. In dilute solution, the SANS experiments expose asymmetric ellipsoid structures for the copolymer with the short PEG-spacer, whereas spherical core-shell structure is observed for the polymer with long PEG-spacer. In the semidilute concentration regime, SANS measurements disclose similar profiles for the two copolymers. In a broad temperature interval, the transition from spherical core-shell micelles to cylindrical structure and packing of cylinders is observed.
热响应性两亲性嵌段共聚物聚(d,l-乳酸-共-乙醇酸)-嵌段-聚(乙二醇)-嵌段-聚(d,l-乳酸-共-乙醇酸)(PLGA-PEG-PLGA)在水溶液中较高聚合物浓度下表现出可逆的温度诱导溶胶-凝胶转变,因其在生物医学应用中的潜力而备受关注。在本工作中,疏水性PLGA嵌段的长度保持恒定,而亲水性PEG嵌段的长度发生改变,这种变化对水性样品的相行为和聚合物结构有显著影响。短PEG嵌段促进低温下的凝胶化,而较长的PEG嵌段将凝胶化点移至较高温度。通过结合使用浊度、流变学和小角中子散射(SANS)方法,作者揭示了显著的温度效应。在稀溶液中,SANS实验揭示了具有短PEG间隔基的共聚物的不对称椭球体结构,而对于具有长PEG间隔基的聚合物观察到球形核壳结构。在半稀浓度范围内,SANS测量揭示了两种共聚物的相似轮廓。在较宽的温度区间内,观察到从球形核壳胶束到圆柱形结构以及圆柱堆积的转变。