Rickhaus Michel, Unke Oliver T, Mannancherry Rajesh, Bannwart Linda M, Neuburger Markus, Häussinger Daniel, Mayor Marcel
Department of Chemistry, University of Basel, St. Johanns-Ring 19, 4056 Basel (Switzerland).
Institute for Nanotechnology (INT), Karlsruhe Institute of Technology (KIT), P.O. Box 3640, 76021 Karlsruhe (Germany).
Chemistry. 2015 Dec 7;21(50):18156-67. doi: 10.1002/chem.201503202. Epub 2015 Nov 5.
Conceptually and experimentally, a new set of helical model compounds is presented herein that allow correlations between structural features and their expression in the secondary structure to be investigated. A cross-linked oligomer with two strands of mismatching lengths connected in a ladder-type fashion serves as a model system. Compensation for the dimensional mismatch leads to the adoption of a helical arrangement. A strategically placed relay ensures the continuity and uniformity of the helix. Upon exchanging the heteroatomic linkage, the helix responds by increasing or decreasing the torsion of the backbone. Inversion of the relay's substitution pattern causes a distortion of the structure, while maintaining the directionality of the helix. Based on a short synthetic protocol with a modular precursor, four closely related "Geländer" oligomers (Geländer is the German word for bannister) were accessed and fully characterized. XRD analysis for one representative of each helical arrangement and complementary computational studies for the remaining derivatives allowed the impact of the alterations on the secondary structures to be studied. Isolation of pure enantiomers of all new Geländer oligomers provided insight into the racemization kinetics and estimation of the racemization barrier. In silico simulation of the electronic circular dichroism spectra of the model compounds enabled the helicity of the isolated samples to be assigned.
在概念和实验方面,本文提出了一组新的螺旋模型化合物,可用于研究结构特征与其在二级结构中的表现之间的相关性。一种具有两条长度不匹配链且以梯型方式连接的交联低聚物用作模型系统。对尺寸不匹配的补偿导致采用螺旋排列。一个精心放置的中继确保了螺旋的连续性和均匀性。交换杂原子连接时,螺旋会通过增加或减少主链的扭转来做出响应。中继取代模式的反转会导致结构变形,同时保持螺旋的方向性。基于一个带有模块化前体的简短合成方案,获得了四种密切相关的“Geländer”低聚物(Geländer在德语中意为栏杆)并对其进行了全面表征。对每种螺旋排列的一个代表进行XRD分析,并对其余衍生物进行补充计算研究,从而能够研究这些改变对二级结构的影响。分离所有新的Geländer低聚物的纯对映体,有助于深入了解外消旋动力学并估算外消旋势垒。对模型化合物的电子圆二色光谱进行计算机模拟,能够确定分离样品的螺旋度。