Lendzian Friedhelm, Bittl Robert, Telfer Alison, Lubitz Wolfgang
Max-Volmer-Laboratorium für Biophysikalische Chemie, Technische Universität Berlin, PC14, Strasse des 17. Juni 135, D-10623, Berlin, Germany.
Biochim Biophys Acta. 2003 Aug 18;1605(1-3):35-46. doi: 10.1016/s0005-2728(03)00062-8.
The triplet states in plant photosystem II (PS II), 3P680, and from chlorophyll a, 3Chl a, in organic solution have been investigated using pulse ENDOR combined with repetitive laser excitation at cryogenic temperature with the aim to obtain their hyperfine (hf) structure. The large zero field splitting (ZFS) tensor of 3P680 enabled orientation selection via the electron spin resonance (EPR) field setting along the ZFS tensor axes. ENDOR spectra have been obtained for the first time also for the in-plane X- and Y-orientations of the ZFS tensor. This allowed a full determination of the hf-tensors of the three methine protons and one methyl group of 3P680. Based on the orientations of the axes of these hf-tensors, a unique orientation of the axes of the ZFS tensor of 3P680 in the Chl a molecular frame was obtained. These data serve as a structural basis for determining the orientation of 3P680 in the PS II protein complex by EPR on single crystals (see M. Kammel et al. in this issue). The data obtained represent the first complete set of the larger hf-tensors of the triplet state 3P680. They reflect the spin density distribution both in the highest occupied (HOMO) and lowest unoccupied (LUMO) orbitals. The data clearly confirm that 3P680 is a monomeric Chl a species at low temperature (T=10 K) used, as has been proposed earlier based on D- and E-values obtained from EPR and optically detected magnetic resonance (ODMR) studies. Comparison with the hf data for the cation and anion radicals of Chl a indicates a redistribution of spin densities in particular for the LUMO orbital of the triplet states. The electron spin distribution in the LUMO orbital is of special interest since it harbours the excited electron in the excited P680 singlet state, from which light-induced electron transfer proceeds. Observed shifts of hf couplings from individual nuclei of 3P680 as compared with 3Chl a in organic solution are of special interest, since they indicate specific protein interactions, e.g. hydrogen bonding, which might be used in future studies for assigning 3P680 to a particular chlorophyll molecule in PS II.
利用脉冲电子核双共振(ENDOR)结合低温下的重复激光激发,对植物光系统II(PS II)中的三重态3P680以及有机溶液中的叶绿素a三重态3Chl a进行了研究,目的是获得它们的超精细(hf)结构。3P680的大零场分裂(ZFS)张量使得能够通过沿ZFS张量轴设置电子自旋共振(EPR)场来进行取向选择。首次还获得了ZFS张量平面内X和Y取向的ENDOR谱。这使得能够全面确定3P680的三个次甲基质子和一个甲基的hf张量。基于这些hf张量轴的取向,在叶绿素a分子框架中获得了3P680的ZFS张量轴的唯一取向。这些数据为通过单晶EPR确定PS II蛋白复合物中3P680的取向提供了结构基础(见本期M. Kammel等人的文章)。所获得的数据代表了三重态3P680较大hf张量的第一组完整数据。它们反映了最高占据(HOMO)和最低未占据(LUMO)轨道中的自旋密度分布。数据清楚地证实,在所用的低温(T = 10 K)下,3P680是单体叶绿素a物种,正如先前基于从EPR和光探测磁共振(ODMR)研究获得的D值和E值所提出的那样。与叶绿素a阳离子和阴离子自由基的hf数据比较表明,特别是在三重态的LUMO轨道中自旋密度发生了重新分布。LUMO轨道中的电子自旋分布特别令人感兴趣,因为它在激发的P680单重态中包含激发电子,光诱导电子转移由此开始。与有机溶液中的3Chl a相比,观察到3P680单个原子核的hf耦合位移特别令人感兴趣,因为它们表明了特定的蛋白质相互作用,例如氢键,这可能在未来的研究中用于将3P680指定到PS II中的特定叶绿素分子。