five

Atomic levers control pyranose ring conformations

收藏
PubMed Central1999-07-06 更新2026-04-25 收录
下载链接:
https://pmc.ncbi.nlm.nih.gov/articles/PMC22158/
下载链接
链接失效反馈
官方服务:
资源简介:
Atomic force microscope manipulations of single polysaccharide molecules have recently expanded conformational chemistry to include force-driven transitions between the chair and boat conformers of the pyranose ring structure. We now expand these observations to include chair inversion, a common phenomenon in the conformational chemistry of six-membered ring molecules. We demonstrate that by stretching single pectin molecules (1 → 4-linked α-d-galactouronic acid polymer), we could change the pyranose ring conformation from a chair to a boat and then to an inverted chair in a clearly resolved two-step conversion: (4)C(1) ⇄ boat ⇄ (1)C(4). The two-step extension of the distance between the glycosidic oxygen atoms O(1) and O(4) determined by atomic force microscope manipulations is corroborated by ab initio calculations of the increase in length of the residue vector O(1)O(4) on chair inversion. We postulate that this conformational change results from the torque generated by the glycosidic bonds when a force is applied to the pectin molecule. Hence, the glycosidic bonds act as mechanical levers, driving the conformational transitions of the pyranose ring. When the glycosidic bonds are equatorial (e), the torque is zero, causing no conformational change. However, when the glycosidic bond is axial (a), torque is generated, causing a rotation around C—C bonds and a conformational change. This hypothesis readily predicts the number of transitions observed in pyranose monomers with 1a-4a linkages (two), 1a-4e (one), and 1e-4e (none). Our results demonstrate single-molecule mechanochemistry with the capability of resolving complex conformational transitions.
提供机构:
National Academy of Sciences
创建时间:
1999-07-06
5,000+
优质数据集
54 个
任务类型
进入经典数据集
二维码
社区交流群

面向社区/商业的数据集话题

二维码
科研交流群

面向高校/科研机构的开源数据集话题

数据驱动未来

携手共赢发展

商业合作