Shcharbin Dzmitry, Shcharbina Natallia, Dzmitruk Volha, Pedziwiatr-Werbicka Elzbieta, Ionov Maksim, Mignani Serge, de la Mata F Javier, Gómez Rafael, Muñoz-Fernández Maria Angeles, Majoral Jean-Pierre, Bryszewska Maria
Institute of Biophysics and Cell Engineering of NASB, Minsk, Belarus.
Clinics at the MAZ Company, Minsk, Belarus.
Colloids Surf B Biointerfaces. 2017 Apr 1;152:414-422. doi: 10.1016/j.colsurfb.2017.01.041. Epub 2017 Jan 31.
Dendrimers are hyperbranched polymers belonging to the huge class of nanomedical devices. Their wide application in biology and medicine requires understanding of the fundamental mechanisms of their interactions with biological systems. Summarizing, electrostatic force plays the predominant role in dendrimer-protein interactions, especially with charged dendrimers. Other kinds of interactions have been proven, such as H-bonding, van der Waals forces, and even hydrophobic interactions. These interactions depend on the characteristics of both participants: flexibility and surface charge of a dendrimer, rigidity of protein structure and the localization of charged amino acids at its surface. pH and ionic strength of solutions can significantly modulate interactions. Ligands and cofactors attached to a protein can also change dendrimer-protein interactions. Binding of dendrimers to a protein can change its secondary structure, conformation, intramolecular mobility and functional activity. However, this strongly depends on rigidity versus flexibility of a protein's structure. In addition, the potential applications of dendrimers to nanomedicine are reviwed related to dendrimer-protein interactions.
树枝状大分子是属于庞大的纳米医疗设备类别的超支化聚合物。它们在生物学和医学中的广泛应用需要了解其与生物系统相互作用的基本机制。综上所述,静电力在树枝状大分子与蛋白质的相互作用中起主要作用,尤其是与带电荷的树枝状大分子。其他类型的相互作用也已得到证实,如氢键、范德华力,甚至疏水相互作用。这些相互作用取决于双方的特性:树枝状大分子的柔韧性和表面电荷、蛋白质结构的刚性以及带电荷氨基酸在其表面的定位。溶液的pH值和离子强度可显著调节相互作用。附着在蛋白质上的配体和辅因子也可改变树枝状大分子与蛋白质的相互作用。树枝状大分子与蛋白质的结合可改变其二级结构、构象、分子内流动性和功能活性。然而,这在很大程度上取决于蛋白质结构的刚性与柔韧性。此外,还综述了树枝状大分子在纳米医学中的潜在应用与树枝状大分子 - 蛋白质相互作用的关系。