Nierengarten Jean-François
Laboratoire de Chimie des Matériaux Moléculaires, Université de Strasbourg et CNRS (UMR 7509), Ecole Européenne de Chimie, Polymères et Matériaux (ECPM), 25 rue Becquerel, 67087 Strasbourg Cedex 2, France.
Chem Commun (Camb). 2017 Oct 31;53(87):11855-11868. doi: 10.1039/c7cc07479d.
Hexa-substituted fullerenes are unique scaffolds for the fast construction of globular dendrimers. Efficient synthetic methodologies based on the post-functionalization of pre-constructed fullerene hexa-adduct derivatives have been reported in recent years and dendrimers difficult or even impossible to prepare by classical fullerene chemistry are now easily accessible. Fullerodendrimers for various applications have been thus prepared. Examples include liquid crystalline materials, non-viral gene delivery systems and bioactive glycoclusters. On the other hand, fullerene hexa-adduct building blocks have been used for the ultra-fast synthesis of giant dendrimers. Indeed, the resulting dendrimers of first generation are already surrounded by 120 peripheral functional groups. This strategy has been used to prepare giant glycoclusters with anti-viral activity and multivalent glycosidase inhibitors.
六取代富勒烯是快速构建球状树枝状大分子的独特支架。近年来,基于预先构建的富勒烯六加成物衍生物的后功能化的高效合成方法已被报道,通过经典富勒烯化学难以甚至无法制备的树枝状大分子现在很容易获得。因此,已制备了用于各种应用的富勒烯树枝状大分子。实例包括液晶材料、非病毒基因递送系统和生物活性糖簇。另一方面,富勒烯六加成物构建块已用于超快速合成巨型树枝状大分子。实际上,第一代所得树枝状大分子已经被120个外围官能团包围。该策略已用于制备具有抗病毒活性的巨型糖簇和多价糖苷酶抑制剂。