Max Planck Institute of Molecular Physiology, Otto-Hahn Strasse 11, 44227, Dortmund, Germany.
Org Biomol Chem. 2012 Feb 21;10(7):1365-73. doi: 10.1039/c1ob06422c. Epub 2011 Dec 20.
Many β-peptides fold in a 14-helical secondary structure in organic solvents, but similar 14-helix formation in water requires additional stabilizing elements. Especially the 14-helix stabilization of short β-peptides in aqueous solution is critical, due to the limited freedom for incorporating stabilizing elements. Here we show how a single lactam bridge, connecting two β-amino acid side-chains, can lead to high 14-helix character in short β(3)-peptides in water. A comparative study, using CD and NMR spectroscopy and structure calculations, revealed the strong 14-helix inducing power of a side-chain-to-side-chain cyclization and its optimal position on the β(3)-peptide scaffold with respect to pH and ionic strength effects. The lactam bridge is ideally incorporated in the N-terminal region of the β(3)-peptide, where it limits the conformational flexibility of the peptide backbone. The lactam bridge induces a 14-helical conformation in methanol and water to a similar extent. Based on the presented first high resolution NMR 3D structure of a lactam bridged β(3)-peptide, the fold shows a large degree of high order, both in the backbone and in the side-chains, leading to a highly compact and stable folded structure.
许多β肽在有机溶剂中折叠成 14 螺旋二级结构,但类似的 14 螺旋形成在水中需要额外的稳定元素。特别是短β肽在水溶液中的 14 螺旋稳定是至关重要的,因为掺入稳定元素的自由度有限。在这里,我们展示了如何通过连接两个β-氨基酸侧链的单个内酰胺桥,导致短β(3)-肽在水中具有高 14 螺旋特征。使用 CD 和 NMR 光谱和结构计算的比较研究表明,侧链到侧链环化具有很强的 14 螺旋诱导能力,并且其在β(3)-肽支架上的最佳位置与 pH 和离子强度效应有关。内酰胺桥理想地结合在β(3)-肽的 N 端区域,在那里它限制了肽骨架的构象灵活性。内酰胺桥在甲醇和水中诱导 14 螺旋构象的程度相似。基于所提出的第一个高分辨率 NMR 3D 结构的酰胺桥接β(3)-肽,该折叠显示出很大程度的高有序性,无论是在主链还是侧链中,导致高度紧凑和稳定的折叠结构。