Afonin Sergii, Mikhailiuk Pavel K, Komarov Igor V, Ulrich Anne S
Institute of Biological Interfaces, Forschungszentrum Karlsruhe, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.
J Pept Sci. 2007 Sep;13(9):614-23. doi: 10.1002/psc.854.
The conformation, alignment and dynamic behavior of membrane-bound peptides is readily accessible by solid-state (19)F-NMR spectroscopy, but it has been difficult to incorporate suitable (19)F-labelled amino acids into synthetic peptides. To avoid the drawbacks of previously used labels, we have rationally designed and synthesized a novel amino acid that suits all theoretical and practical requirements for peptide synthesis and subsequent (19)F-NMR structure analysis [Mikhailiuk et. al, Angew. Chem. 2006, 118, 5787-5789]. The enantiomerically pure L-form of 3-(trifluoromethyl)bicyclopent-[1.1.1]-1-ylglycine (CF(3)-Bpg) carries a CF(3) group that is rigidly attached to the peptide backbone and does not racemize during peptide synthesis. It could be demonstrated for several different peptides that their biological activity is usually not affected by a single label, nor the conformation, as monitored by circular dichroism. Here, we carry out a more detailed structure analysis to evaluate the potential and reliability of CF(3)-Bpg for solid-state NMR, using the well-known alpha-helical antimicrobial peptide PGLa as a test case. We have collected several orientational constraints from the anisotropic (19)F--(19)F dipolar couplings of CF(3)-Bpg in various positions of PGLa embedded in lipid bilayers. These resulting structural parameters are then compared with those previously determined from 4-CF(3)-phenylglycine and 3,3,3-d(3)-alanine labels on the same peptide. The analysis confirms that CF(3)-Bpg does not perturb the alpha-helical conformation of PGLa. Likewise, the helix alignment is shown to follow the established concentration-dependent pattern in realigning from a surface-bound S-state to an obliquely tilted T-state. Hence, the advantages of CF(3)-Bpg over all previously used (19)F-labeled side chains are evident, as they combine ease of chemical incorporation and peptide purification with high NMR sensitivity and absent background signals, allowing a straightforward analysis of the dipolar splittings with no need for chemical shift referencing without any ambiguity in the sign of the couplings.
膜结合肽的构象、排列和动态行为可通过固态(19)F-NMR光谱轻松获取,但将合适的(19)F标记氨基酸掺入合成肽一直很困难。为避免先前使用的标记的缺点,我们合理设计并合成了一种新型氨基酸,它满足肽合成及后续(19)F-NMR结构分析的所有理论和实际要求[米哈伊利克等人,《德国应用化学》,2006年,118卷,5787 - 5789页]。对映体纯的L-型3-(三氟甲基)双环戊烷-[1.1.1]-1-基甘氨酸(CF(3)-Bpg)带有一个牢固连接到肽主链上的CF(3)基团,且在肽合成过程中不会消旋。对于几种不同的肽,可以证明它们的生物活性通常不受单个标记的影响,通过圆二色性监测,其构象也不受影响。在此,我们以著名的α-螺旋抗菌肽PGLa为例,进行更详细的结构分析,以评估CF(3)-Bpg用于固态NMR的潜力和可靠性。我们从嵌入脂质双层的PGLa不同位置的CF(3)-Bpg的各向异性(19)F - (19)F偶极耦合中收集了几个取向约束。然后将这些得到的结构参数与先前在同一肽上由4 - CF(3)-苯甘氨酸和3,3,3 - d(3)-丙氨酸标记确定的参数进行比较。分析证实CF(3)-Bpg不会干扰PGLa的α-螺旋构象。同样,螺旋排列显示出遵循既定的浓度依赖性模式,从表面结合的S态重新排列为倾斜的T态。因此,CF(3)-Bpg相对于所有先前使用的(19)F标记侧链的优势显而易见,因为它们兼具化学掺入和肽纯化的简便性、高NMR灵敏度以及无背景信号,无需化学位移参考即可直接分析偶极分裂,且耦合符号无任何歧义。