Pardo L, Sepulcre F, Cladera J, Duñach M, Labarta A, Tejada J, Padrós E
Laboratori de Medicina Computacional, Unitat de Bioestadística, Facultat de Medicina, Universitat Autònoma de Barcelona, 08193 Bellaterra, Barcelona, Spain.
Biophys J. 1998 Aug;75(2):777-84. doi: 10.1016/S0006-3495(98)77567-8.
Binding of Mn2+ or Mg2+ to the high-affinity site of the purple membrane from Halobacterium salinarium has been studied by superconducting quantum interference device magnetometry or by ab initio quantum mechanical calculations, respectively. The binding of Mn2+ cation, in a low-spin state, to the high-affinity site occurs through a major octahedral local symmetry character with a minor rhombic distortion and a coordination number of six. A molecular model of this binding site in the Schiff base vicinity is proposed. In this model, a Mg2+ cation interacts with one oxygen atom of the side chain of Asp85, with both oxygen atoms of Asp212 and with three water molecules. One of these water molecules is hydrogen bonded to both the nitrogen of the protonated Schiff base and the Asp85 oxygen. It could serve as a shuttle for the Schiff base proton to move to Asp85 in the L-M transition.
分别通过超导量子干涉仪磁力测定法或从头算量子力学计算,研究了Mn2+或Mg2+与盐生盐杆菌紫膜高亲和力位点的结合情况。处于低自旋态的Mn2+阳离子通过主要的八面体局部对称特征与高亲和力位点结合,伴有轻微的菱形畸变,配位数为6。提出了席夫碱附近该结合位点的分子模型。在该模型中,Mg2+阳离子与Asp85侧链的一个氧原子、Asp212的两个氧原子以及三个水分子相互作用。其中一个水分子与质子化席夫碱的氮原子和Asp85的氧原子都形成氢键。它可以作为席夫碱质子在L-M跃迁中转移到Asp85的载体。