Department of Chemical Engineering, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Department of Chemical Engineering, Indian Institute of Technology Bombay, Powai, Mumbai 400076, India.
Chem Phys Lipids. 2019 Jan;218:47-56. doi: 10.1016/j.chemphyslip.2018.12.001. Epub 2018 Dec 3.
Incorporation of low molecular weight poly-ethylene glycol (PEG) - grafted phospholipids in vesicle bilayers is known to increase the circulation time of liposomal drug delivery vehicles. Mechanical properties of giant unilamellar DPPC vesicles containing varying concentrations of DSPE-PEG (PEG MW: 550, 1000 and 2000) were measured by micropipette aspiration assay or osmotic swelling. While the area compressibility modulus did not change significantly, the bending modulus and water permeability of the bilayer was found to increase with increasing mole fraction of DSPE-PEG. This increase was more pronounced for higher molecular weight PEG. The measured bending modulus agreed with that predicted by scaling theory only at low mole fractions of DSPE-PEG. The water permeability was also measured as a function of the increase in area per lipid (due to steric repulsion between PEG chains), and for the same area per lipid, the PEG chain with MW 550 provided a greater resistance to water transport across the vesicle membrane compared to PEG 1000 and 2000. Lysis tension of the membrane, determined by osmotic lysis method at different loading rates showed a decrease in membrane strength on inclusion of the polymer lipid. These results suggest that liposome lifetime in the circulation and the rate of drug delivery are affected by the molecular weight and concentration of PEG in the bilayer.
将低分子量聚乙二醇(PEG)-接枝磷脂掺入囊泡双层中已知可以增加脂质体药物递送载体的循环时间。通过微量吸管抽吸测定或渗透膨胀法测量含有不同浓度 DSPE-PEG(PEG MW:550、1000 和 2000)的巨大单层 DPPC 囊泡的机械性能。虽然面积压缩模量没有明显变化,但发现双层的弯曲模量和水通透性随 DSPE-PEG 摩尔分数的增加而增加。对于更高分子量的 PEG,这种增加更为明显。测量的弯曲模量仅在 DSPE-PEG 的低摩尔分数下与比例理论预测的相符。水通透性也作为脂质面积增加的函数进行测量(由于 PEG 链之间的空间排斥),对于相同的脂质面积,MW 为 550 的 PEG 链与 1000 和 2000 的 PEG 相比,在跨囊泡膜的水传输中提供更大的阻力。通过不同加载速率的渗透压裂解法测定的膜裂解张力表明,在包含聚合物脂质时,膜强度降低。这些结果表明,双层中 PEG 的分子量和浓度会影响脂质体在循环中的寿命和药物释放速率。