Eletsky Alexander, Heinz Tim, Moreira Osvaldo, Kienhöfer Alexander, Hilvert Donald, Pervushi Konstantin
Laboratorium für Physikalische Chemie, Swiss Federal Institute of Technology, ETH Hönggerberg, Zürich.
J Biomol NMR. 2002 Sep;24(1):31-9. doi: 10.1023/a:1020697627485.
A hydrogen bond between the amide backbone of Arg7 and the remote imidazole side chain of HisIO6 has been directly observed by improved TROSY-NMR techniques in the 44 kDa trimeric enzyme chorismate mutase from Bacillus subtilis. The presence of this hydrogen bond in the free enzyme and its complexes with a transition state analog and the reaction product was demonstrated by measurement of 15N-15N and 1H-15N trans-hydrogen bond scalar couplings, (2h)J(NN) and (lh)J(HN), and by transfer of nuclear polarization across the hydrogen bond. The conformational dependences of these coupling constants were analyzed using sum-over-states density functional perturbation theory (SOS-DFPT). The observed hydrogen bond might stabilize the scaffold at the active site of BsCM. Because the Arg7-His 106 hydrogen bond has not been observed in any of the high resolution crystal structures of BsCM, the measured coupling constants provide unique information about the enzyme and its complexes that should prove useful for structural refinement of atomic models.
利用改进的TROSY-NMR技术,在来自枯草芽孢杆菌的44 kDa三聚体酶分支酸变位酶中直接观察到了精氨酸7的酰胺主链与组氨酸106的远程咪唑侧链之间的氢键。通过测量15N-15N和1H-15N跨氢键标量耦合常数(2h)J(NN)和(1h)J(HN),以及通过核极化在氢键上的转移,证明了该氢键在游离酶及其与过渡态类似物和反应产物的复合物中的存在。使用态叠加密度泛函微扰理论(SOS-DFPT)分析了这些耦合常数的构象依赖性。观察到的氢键可能稳定了枯草芽孢杆菌分支酸变位酶活性位点处的支架结构。由于在分支酸变位酶的任何高分辨率晶体结构中都未观察到精氨酸7-组氨酸106氢键,因此所测量的耦合常数提供了有关该酶及其复合物的独特信息,这对于原子模型的结构优化应该是有用的。