Structural Biology Research Center, Nagoya University, Furo-cho, Chikusa-ku, Japan.
J Biomol NMR. 2010 Jan;46(1):45-9. doi: 10.1007/s10858-009-9360-9. Epub 2009 Aug 7.
The extensive collection of NOE constraint data involving the aromatic ring signals is essential for accurate protein structure determination, although it is often hampered in practice by the pervasive signal overlapping and tight spin couplings for aromatic rings. We have prepared various types of stereo-array isotope labeled phenylalanines (epsilon- and zeta-SAIL Phe) and tyrosine (epsilon-SAIL Tyr) to overcome these problems (Torizawa et al. 2005), and proven that these SAIL amino acids provide dramatic spectral simplification and sensitivity enhancement for the aromatic ring NMR signals. In addition to these SAIL aromatic amino acids, we recently synthesized delta-SAIL Phe and delta-SAIL Tyr, which allow us to observe and assign delta-(13)C/(1)H signals very efficiently. Each of the various types of SAIL Phe and SAIL Tyr yields well-resolved resonances for the delta-, epsilon- or zeta-(13)C/(1)H signals, respectively, which can readily be assigned by simple and robust pulse sequences. Since the delta-, epsilon-, and zeta-proton signals of Phe/Tyr residues give rise to complementary NOE constraints, the concomitant use of various types of SAIL-Phe and SAIL-Tyr would generate more accurate protein structures, as compared to those obtained by using conventional uniformly (13)C, (15)N-double labeled proteins. We illustrated this with the case of an 18.2 kDa protein, Escherichia coli peptidyl-prolyl cis-trans isomerase b (EPPIb), and concluded that the combined use of zeta-SAIL Phe and epsilon-SAIL Tyr would be practically the best choice for protein structural determinations.
广泛收集涉及芳环信号的 NOE 约束数据对于准确确定蛋白质结构至关重要,尽管在实践中,由于芳环信号的普遍重叠和紧密自旋偶合,通常会受到阻碍。我们已经制备了各种类型的立体阵列同位素标记苯丙氨酸(epsilon- 和 zeta-SAIL Phe)和酪氨酸(epsilon-SAIL Tyr),以克服这些问题(Torizawa 等人,2005 年),并证明这些 SAIL 氨基酸为芳环 NMR 信号提供了显著的谱简化和灵敏度增强。除了这些 SAIL 芳族氨基酸外,我们最近还合成了 delta-SAIL Phe 和 delta-SAIL Tyr,这使我们能够非常有效地观察和分配 delta-(13)C/(1)H 信号。各种类型的 SAIL Phe 和 SAIL Tyr 分别为 delta-、epsilon-或 zeta-(13)C/(1)H 信号产生了很好分辨的共振,可以通过简单而稳健的脉冲序列轻松分配。由于 Phe/Tyr 残基的 delta-、epsilon-和 zeta-质子信号产生互补的 NOE 约束,因此与使用常规均匀(13)C、(15)N 双标记蛋白相比,同时使用各种类型的 SAIL-Phe 和 SAIL-Tyr 可以生成更准确的蛋白质结构。我们通过一个 18.2 kDa 蛋白质,大肠杆菌肽基脯氨酰顺反异构酶 b(EPPIb)的情况说明了这一点,并得出结论,对于蛋白质结构测定,zeta-SAIL Phe 和 epsilon-SAIL Tyr 的联合使用将是实际的最佳选择。