Tokihiro K, Irie T, Uekama K
Faculty of Pharmaceutical Sciences, Kumamoto University, Japan.
Chem Pharm Bull (Tokyo). 1997 Mar;45(3):525-31. doi: 10.1248/cpb.45.525.
Maltosyl-beta-cyclodextrin (G2-beta-CyD) suppressed the aggregation of insulin in neutral solution, while the sulfate of beta-CyD (S-beta-CyD) accelerated the aggregation. On the other hand, the sulfobutyl ether of beta-CyD (SBE-beta-CyD) showed varying effects on insulin aggregation, depending on the degree of substitution of the sulfobutyl group: i.e., the inhibition at relatively low substitution and acceleration at higher substitution. Differential scanning calorimetric studies indicate that the self-association of insulin stabilized the native conformation of the peptide, as indicated by an increase in the mean unfolding temperature (Tm). G2-beta-CyD and SBE-beta-CyD decreased the Tm value of insulin oligomers, while S-beta-CyD increased the Tm value. 1H-Nuclear magnetic resonance spectroscopic studies suggest that G2-beta-CyD includes accessible hydrophobic side chains of insulin within the CyD cavity, and hence perturbs the intermolecular hydrophobic contacts between aromatic side chains across the monomer-monomer interfaces. By contrast, the electrostatic interaction between the positive charges of insulin and the concentrated negative charges of the sulfate and sulfonate groups of the anionic beta-CyDs seems to be more of a factor than the inclusion effects. These results suggest proper use of the CyD derivatives could be effective in designing rapid or long-acting insulin preparations.
麦芽糊精基-β-环糊精(G2-β-CyD)可抑制胰岛素在中性溶液中的聚集,而β-环糊精硫酸盐(S-β-CyD)则会加速其聚集。另一方面,β-环糊精磺丁基醚(SBE-β-CyD)对胰岛素聚集表现出不同的影响,这取决于磺丁基的取代程度:即在相对低取代度时起抑制作用,而在高取代度时起促进作用。差示扫描量热法研究表明,胰岛素的自缔合稳定了肽的天然构象,这表现为平均解折叠温度(Tm)升高。G2-β-CyD和SBE-β-CyD降低了胰岛素寡聚体的Tm值,而S-β-CyD则提高了Tm值。1H-核磁共振光谱研究表明,G2-β-CyD将胰岛素可及的疏水侧链包合在环糊精腔内,从而扰乱了跨单体-单体界面的芳香族侧链之间的分子间疏水接触。相比之下,胰岛素的正电荷与阴离子型β-环糊精的硫酸盐和磺酸盐基团的集中负电荷之间的静电相互作用似乎比包合作用更重要。这些结果表明,合理使用环糊精衍生物可能对设计速效或长效胰岛素制剂有效。