Department of Chemistry , New York University , New York , New York 10003 , United States.
J Am Chem Soc. 2018 Nov 28;140(47):16284-16290. doi: 10.1021/jacs.8b10082. Epub 2018 Nov 14.
Helical secondary and tertiary motifs are commonly observed as binding epitopes in natural and engineered protein scaffolds. While several strategies have been described to constrain α-helices or reproduce their binding attributes in synthetic mimics, general strategies to mimic tertiary helical motifs remain in their infancy. We recently described a synthetic strategy to develop helical dimers ( J. Am. Chem. Soc. 2015, 137, 11618-11621). We found that replacement of an interhelical salt bridge with a covalent bond can stabilize antiparallel motifs in short sequences. Here we show that the approach can be generalized to obtain antiparallel and parallel dimers as well as trimer motifs. Helical stabilization requires judiciously designed cross-linkers as well as optimal interhelical hydrophobic packing. We anticipate that these mimics would afford new classes of modulators of biological function.
螺旋二级和三级结构通常作为天然和工程蛋白支架中的结合表位被观察到。虽然已经描述了几种方法来约束α-螺旋或在合成模拟物中再现其结合属性,但模拟三级螺旋结构的一般策略仍处于起步阶段。我们最近描述了一种开发螺旋二聚体的合成策略(J. Am. Chem. Soc. 2015, 137, 11618-11621)。我们发现,用共价键取代螺旋间盐桥可以稳定短序列中的反平行结构。在这里,我们表明该方法可以推广到获得反平行和平行二聚体以及三聚体结构。螺旋稳定需要精心设计的交联剂以及最佳的螺旋间疏水性堆积。我们预计这些模拟物将提供新类别的生物功能调节剂。