从Cnidoscolus aconitifolius (Chaya) 中分离的塔拉克塞隆的形态分析和NMR数据分配
Mónica Díaz-Fernández1,2, Karla Cahun-Uicab1, Viviana Roche-Llerena1
1Departamento de Física Aplicada, Centro de Investigación y de Estudios Avanzados del Instituto Politécnico Nacional, Merida, Mexico.
Magnetic resonance in chemistry : MRC
|October 23, 2025
概括
研究人员从玛雅文化中使用的植物chaya (Cnidoscolus aconitifolius) 中分离出taraxerone. 通过使用先进的2D NMR技术和计算分析实现了完整的NMR数据分配.
科学领域:
- 自然产品化学 自然产品化学
- 有机化学 有机化学
- 频谱学是一种光谱学.
背景情况:
- (Cnidoscolus aconitifolius) 是传统上在玛雅文化中使用的.
- 塔拉克塞隆是一种天然产品,此前已在其他植物物种中发现.
- 缺乏对塔拉克塞隆的完整NMR数据分配.
研究的目的:
- 从chaya中分离并充分描述taraxerone的特性.
- 为塔拉克塞隆分配完整的1H和13CNMR数据.
- 为了研究塔拉克塞隆的结构性行为和立体电子效应.
主要方法:
- 通过从茶叶中提取异醇来分离塔拉克塞龙.
- 2D NMR实验 (COSY,HSQC,HMBC) 用于光谱分配.
- 计算方法包括GIAO,旋转模拟,卡普勒斯方程,NBO计算.
- 可变温度1小时的NMR光谱学.
主要成果:
- 塔拉克塞隆首次成功地从茶叶中分离出来.
- 实现了完整的1H和13CNMR分配.
- 确定了A环的两个构造 (椅子和扭曲的船).
- 观测和解释了包括珀林效应在内的立体电子效应.
结论:
- 这项研究提供了taraxerone的第一个完整的NMR特征.
- 查亚是天然产品塔拉克塞隆的新来源.
- 先进的NMR和计算方法阐明了taraxerone的结构和形状动态.
相关概念视频
¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR
1.7K
The axial and equatorial protons in cyclohexane can be distinguished by performing a variable-temperature NMR experiment. In this process, except for one proton, the remaining eleven protons are replaced by deuterium. The deuterium substitution avoids the possible peak splitting caused by the spin-spin coupling between the adjacent protons. The remaining proton flips between the axial and equatorial positions.
1.7K
¹H NMR of Conformationally Flexible Molecules: Temporal Resolution
1.3K
At room temperature, the chair conformer of cyclohexane undergoes rapid ring flipping between two equivalent chair conformers at a rate of approximately 105 times per second. These two chair conformers are in equilibrium. The rapid ring flipping results in the interconversion of the axial proton to an equatorial proton and an equatorial to the axial proton. Such interconversions are too rapid and cannot be detected on the NMR timescale. Hence, the NMR spectrometer cannot distinguish between the...
1.3K
NMR Spectroscopy of Aromatic Compounds
6.2K
Aromatic compounds can be identified or analyzed using proton NMR and carbon‐13 NMR. Typically, aromatic hydrogens or hydrogens directly bonded to the aromatic rings are strongly deshielded by the aromatic ring current. Therefore, they absorb in the range of 6.5–8.0 ppm in proton NMR spectra. For instance, aromatic hydrogens directly bonded to the benzene ring absorb at 7.3 ppm. However, aromatic hydrogens of larger rings absorb farther upfield or downfield than the ideal range.
6.2K
2D NMR: Heteronuclear Single-Quantum Correlation Spectroscopy (HSQC)
1.4K
Heteronuclear single-quantum correlation spectroscopy (HSQC) is a 2D NMR technique that reveals one-bond correlations between hydrogen and a heteronucleus. The HSQC experiment is similar to the heteronuclear correlation experiment (HETCOR) but is more sensitive. In the HSQC spectrum, the proton chemical shift is plotted on the horizontal F2 axis, while the 13C chemical shift is plotted on the vertical F1 axis. The corresponding proton and 13C spectra are also shown. The HSQC contour plot does...
1.4K
Chair Conformation of Cyclohexane
17.9K
The chair conformation is the most stable form of cyclohexane due to the absence of angle and torsional strain. The absence of angle strain is a result of cyclohexane’s bond angle being very close to the ideal tetrahedral bond angle of 109.5° in its chair conformer. Similarly, the torsional strain is also absent owing to the perfectly staggered arrangement of bonds.
The hydrogen atoms linked to carbons are arranged in two different axial and equatorial orientations to achieve this...
The hydrogen atoms linked to carbons are arranged in two different axial and equatorial orientations to achieve this...
17.9K
¹³C NMR: Distortionless Enhancement by Polarization Transfer (DEPT)
1.6K
When proton-coupled carbon-13 spectra are simplified by a broadband proton decoupling technique, structural information about the coupled protons is lost. Distortionless enhancement by polarization transfer (DEPT) is a technique that provides information on the number of hydrogens attached to each carbon in a molecule. While the DEPT experiment utilizes complex pulse sequences, the pulse delay and flip angle are specifically manipulated. The resulting signals have different phases depending on...
1.6K


