Che Ye, Marshall Garland R
Center for Computational Biology and Department of Biochemistry and Molecular Biophysics, Washington University, St. Louis, Missouri 63110, USA.
J Org Chem. 2004 Dec 24;69(26):9030-42. doi: 10.1021/jo0487303.
The amino acid analog azaproline (azPro) contains a nitrogen atom in place of the C(alpha) of proline. Peptides containing azPro were shown to stabilize the cis-amide conformer for the acyl-azPro bond and prefer type VI beta-turns both in crystals and in organic solvents by NMR. The increased stability for cis-amide conformers was relatively minor with respect to the trans-conformers. Further, their conformational preferences were depended on solvent. To elucidate the impact of azPro substitution on amide cis-trans isomerism and peptide conformation, this paper reports ab initio studies on azPro derivatives and a comparison with their cognate Pro derivatives: 1-acetyl-2-methyl pyrrolidine (1), 1-acetyl-2-methyl pyrazolidine (2), Ac-Pro-NHMe (3), Ac-azPro-NHMe (4), Ac-azPro-NMe(2) (5), Ac-azAzc-NHMe (6), and Ac-azPip-NHMe (7). Conformational preferences were explored at the MP2/6-31+G** level of theory in vacuo. Solvation effects for 1 and 2 were studied implicitly using the polarizable continuum model and explicitly represented by interactions with a single water molecule. An increase in the conformational preference for the cis-amide conformer of azPro was clearly seen. An intramolecular hydrogen bond occurred solely in the trans-amide conformer that reduced the preference for the cis-conformer by 2.2 kcal/mol. The larger ring homolog aza-pipecolic acid (azPip), in which this internal hydrogen bond was diminished, significantly augmented stabilization of the cis-amide conformer. In aqueous solution, the preference for the cis-amide conformers was greatly reduced, mainly as a result of interaction between water and the lone pair of the alpha-nitrogen in the trans-amide conformer that was 3.8 kcal/mol greater than that in the cis-conformer. In the azPro analog, the energy barrier for cis-trans amide isomerization was 6 kcal/mol less than that in the cognate Pro derivative. Because the azPro derivatives can stabilize the cis-amide bond and mimic a type VI beta-turn without incorporation of additional steric bulk, such a simple chemical modification of the peptide backbone provides a useful conformational constraint when incorporated into the structure of selected bioactive peptides. Such modifications can scan receptors for biological recognition of reverse turns containing cis-amide bonds by the incorporation of type VI beta-turn scaffolds with oriented appended side chains.
氨基酸类似物氮杂脯氨酸(azPro)在脯氨酸的C(α)位置含有一个氮原子。含有azPro的肽在晶体和有机溶剂中通过核磁共振显示能稳定酰基 - azPro键的顺式酰胺构象异构体,并且优先形成VI型β - 转角。相对于反式构象异构体,顺式酰胺构象异构体稳定性的增加相对较小。此外,它们的构象偏好取决于溶剂。为了阐明azPro取代对酰胺顺反异构化和肽构象的影响,本文报道了对azPro衍生物的从头算研究以及与它们相应的Pro衍生物的比较:1 - 乙酰基 - 2 - 甲基吡咯烷(1)、1 - 乙酰基 - 2 - 甲基吡唑烷(2)、Ac - Pro - NHMe(3)、Ac - azPro - NHMe(4)、Ac - azPro - NMe(2)(5)、Ac - azAzc - NHMe(6)和Ac - azPip - NHMe(7)。在MP2/6 - 31 + G**理论水平下在真空中探索构象偏好。使用极化连续介质模型隐式研究了1和2的溶剂化效应,并通过与单个水分子的相互作用明确表示。azPro的顺式酰胺构象异构体的构象偏好明显增加。分子内氢键仅在反式酰胺构象异构体中出现,使顺式构象异构体的偏好降低了2.2千卡/摩尔。较大的环同系物氮杂哌啶酸(azPip)中这种分子内氢键减弱,显著增强了顺式酰胺构象异构体的稳定性。在水溶液中,顺式酰胺构象异构体的偏好大大降低,主要是由于水与反式酰胺构象异构体中α - 氮的孤对之间的相互作用,其比顺式构象异构体中的相互作用大3.8千卡/摩尔。在azPro类似物中,酰胺顺反异构化的能垒比相应的Pro衍生物低6千卡/摩尔。因为azPro衍生物可以稳定顺式酰胺键并模拟VI型β - 转角,而无需引入额外的空间体积,所以当将肽主链进行这种简单的化学修饰并纳入选定的生物活性肽结构中时,可提供有用的构象限制。通过纳入带有定向附加侧链的VI型β - 转角支架,这种修饰可以扫描受体以实现对含有顺式酰胺键的反向转角的生物识别。