Perico Angelo, Ciferri Alberto
National Research Council (CNR), Institute for Macromolecular Studies (ISMAC), Genoa, Italy.
Chemistry. 2009 Jun 22;15(26):6312-20. doi: 10.1002/chem.200900637.
Cohesion matters! The correlation between the conformational rigidity of the polyelectrolyte and the size and stability of the globular assembly is discussed in this review article. Some examples of models for the association of polyelectrolytes to globular assemblies are shown here.Supramolecular complexes of strong polyelectrolytes and oppositely charged ionic micelles or protein assemblies derive their main stabilization from electrostatic interactions that include the counterion condensation/release mechanism and from hydrophobic interactions distributed along apolar sections of the components. The predicted and the experimental behavior of selected complexes differing in the flexibility of the polyelectrolyte and in the cohesion of the complementary assembly is reviewed and analyzed. Depending upon the rigidity of the polyelectrolyte, globular surfactant clusters persist in the final structure or are transformed into elongated assemblies. On the other hand, even the rather rigid DNA molecule is forced to bend by strongly associated cationic protein complexes such as the histone octamers. A general framework should allow the prediction of these structures in terms of the interplay between the persistence length of the polyelectrolyte and the association constant of the protein or the surfactant assembly.
凝聚作用很重要!本文综述讨论了聚电解质的构象刚性与球状聚集体的大小和稳定性之间的相关性。这里展示了一些聚电解质与球状聚集体缔合模型的例子。强聚电解质与带相反电荷的离子胶束或蛋白质聚集体形成的超分子复合物,其主要稳定性源于静电相互作用,包括抗衡离子凝聚/释放机制,以及沿组分非极性部分分布的疏水相互作用。本文对所选复合物的预测行为和实验行为进行了综述与分析,这些复合物在聚电解质的柔韧性和互补聚集体的凝聚性方面存在差异。根据聚电解质的刚性,球状表面活性剂聚集体会保留在最终结构中,或者转变为细长的聚集体。另一方面,即使是相当刚性的DNA分子,也会被如组蛋白八聚体等强缔合的阳离子蛋白质复合物迫使弯曲。一个通用框架应能根据聚电解质的持久长度与蛋白质或表面活性剂聚集体的缔合常数之间的相互作用来预测这些结构。