【2h】

Helix control in polymers

机译:聚合物中的螺旋控制

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摘要

The helix is a critical conformation exhibited by biological macromolecules and plays a key role in fundamental biological processes. Biological helical polymers exist in a single helical sense arising from the chiral effect of their primary units—for example, DNA and proteins adopt predominantly a right-handed helix conformation in response to the asymmetric conformational propensity of D-sugars and L-amino acids, respectively. In using these homochiral systems, nature blocks our observations of some fascinating aspects of the cooperativity in helical systems, although when useful for a specific purpose, “wrong” enantiomers may be incorporated in specific places. In synthetic helical systems, on the contrary, incorporation of non-racemic chirality is an additional burden, and the findings discussed in this review show that this burden may be considerably alleviated by taking advantage of the amplification of chirality, in which small chiral influences lead to large consequences. Peptide nucleic acid (PNA), which is a non-chiral synthetic DNA mimic, shows a cooperative response to a small chiral effect induced by a chiral amino acid, which is limited, however, due to the highly flexible nature of this oligomeric chimera. The lack of internal stereochemical bias is an important factor which makes PNA an ideal system to understand some cooperative features that are not directly accessible from DNA.
机译:螺旋是生物大分子表现出的关键构象,并且在基本生物学过程中起关键作用。生物螺旋聚合物以其主要单元的手性效应产生的螺旋形式存在,例如,DNA和蛋白质主要采用右旋螺旋构象来响应D糖和L-氨基酸的不对称构象倾向,分别。在使用这些同手性体系时,自然阻碍了我们对螺旋体系中一些令人着迷的合作性的观察,尽管当用于特定目的时,“错误的”对映异构体可能会掺入特定的位置。相反,在合成螺旋系统中,引入非外消旋手性是一个额外的负担,本综述中讨论的发现表明,利用手性的放大可大大减轻这种负担,因为手性的影响较小造成很大的后果。肽核酸(PNA)是一种非手性的合成DNA模仿物,对由手性氨基酸诱导的小手性效应表现出协同反应,但由于这种低聚嵌合体的高度柔性,因此受到限制。内部立体化学偏倚的缺乏是一个重要因素,这使PNA成为了解某些无法直接从DNA获得的合作特征的理想系统。

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