Tetreault M, Cusanovich M, Meyer T, Axelrod H, Okamura M Y
Department of Physics 0319, 9500 Gilman Drive, University of California at San Diego, La Jolla, California 92093, USA.
Biochemistry. 2002 May 7;41(18):5807-15. doi: 10.1021/bi012053e.
Cytochrome c2 (cyt) is the mobile electron donor to the reaction center (RC) in photosynthetic bacteria. The electrostatic interactions involved in the dynamics of docking of cyt onto the RC were examined by double mutant studies of the rates of electron transfer between six modified Rhodobacter sphaeroides RCs in which negatively charged acid residues were replaced with Lys and five modified Rhodobacter capsulatus Cyt c2 molecules in which positively charged Lys residues were replaced with Glu. We measured the second-order rate constant, k2, for electron transfer from the reduced cyt to the oxidized primary donor on the RC, which reflects the energy of the transition state for the formation of the active electron transfer complex. Strong interactions were found between Lys C99 and Asp M184/Glu M95, and between Lys C54 and Asp L261/Asp L257. The interacting residues were found to be located close to each other in the recently determined crystal structure of the cyt-RC complex [Axelrod, H., et al. (2002) J. Mol. Biol. (in press)]. The interaction energies were approximately inversely proportional to the distances between charges. These results support earlier suggestions [Tetreault, M., et al. (2001) Biochemistry 40, 8452-8462] that the structure of the transition state in solution resembles the structure of the cyt-RC complex in the cocrystal and indicate that specific electrostatic interactions facilitate docking of the cyt onto the RC in a configuration optimized for both binding and electron transfer. The specific interaction between Asp M184 and Lys C99 may help to nucleate short-range hydrophobic contacts.
细胞色素c2(cyt)是光合细菌中反应中心(RC)的移动电子供体。通过对六个修饰的球形红细菌RC(其中带负电荷的酸性残基被赖氨酸取代)与五个修饰的荚膜红细菌细胞色素c2分子(其中带正电荷的赖氨酸残基被谷氨酸取代)之间电子转移速率的双突变研究,考察了cyt与RC对接动力学中涉及的静电相互作用。我们测量了从还原型cyt到RC上氧化型初级供体的电子转移二级速率常数k2,它反映了活性电子转移复合物形成的过渡态能量。发现赖氨酸C99与天冬氨酸M184/谷氨酸M95之间,以及赖氨酸C54与天冬氨酸L261/天冬氨酸L257之间存在强相互作用。在最近确定的cyt-RC复合物晶体结构中[阿克塞尔罗德,H.等人(2002年)《分子生物学杂志》(即将发表)],发现相互作用的残基彼此靠近。相互作用能与电荷之间的距离大致成反比。这些结果支持了早期的推测[泰特罗,M.等人(2001年)《生物化学》40,8452 - 8462],即溶液中过渡态的结构类似于共晶体中cyt-RC复合物的结构,并表明特定的静电相互作用有助于cyt以一种对结合和电子转移均优化的构型与RC对接。天冬氨酸M184与赖氨酸C99之间的特定相互作用可能有助于形成短程疏水接触。