Dolidze Tina D, Rondinini Sandra, Vertova Alberto, Waldeck David H, Khoshtariya Dimitri E
Institute of Molecular Biology and Biophysics, Gotua 12, Tbilisi 0160, Georgia (Republic).
Biopolymers. 2007 Sep;87(1):68-73. doi: 10.1002/bip.20789.
We report on the effects of self-assembled monolayer (SAM) dilution and thickness on the electron transfer (ET) event for cytochrome c (CytC) electrostatically immobilized on carboxyl terminated groups. We observed biphasic kinetic behavior for a logarithmic dependence of the rate constant on the SAM carbon number (ET distance) within the series of mixed SAMs of C(5)COOH/C(2)OH, C(10)COOH/C(6)OH, and C(15)COOH/C(11)OH that is in overall similar to that found earlier for the undiluted SAM assemblies. However, in the case of C(15)COOH/C(11)OH and C(10)COOH/C(6)OH mixed SAMs a notable increase of the ET standard rate constant was observed, in comparison with the corresponding unicomponent (omega-COOH) SAMs. In the case of the C(5)COOH/C(2)OH composite SAM a decrease of the rate constant versus the unicomponent analogue was observed. The value of the reorganization free energy deduced through the Marcus-like data analysis did not change throughout the series; this fact along with the other observations indicates uncomplicated rate-determining unimolecular ET in all cases. Our results are consistent with a model that considers a changeover between the alternate, tunneling and adiabatic intrinsic ET mechanisms. The physical mechanism behind the observed fine kinetic effects in terms of the protein-rigidifying omega-COOH/CytC interactions arising in the case of mixed SAMs are also discussed.
我们报告了自组装单分子层(SAM)的稀释和厚度对静电固定在羧基端基上的细胞色素c(CytC)电子转移(ET)事件的影响。我们观察到在C(5)COOH/C(2)OH、C(10)COOH/C(6)OH和C(15)COOH/C(11)OH混合SAM系列中,速率常数对SAM碳原子数(ET距离)呈对数依赖性的双相动力学行为,总体上与早期未稀释SAM组装体中发现的相似。然而,与相应的单组分(ω-COOH)SAM相比,在C(15)COOH/C(11)OH和C(10)COOH/C(6)OH混合SAM的情况下,观察到ET标准速率常数显著增加。在C(5)COOH/C(2)OH复合SAM的情况下,观察到速率常数相对于单组分类似物有所降低。通过类似Marcus的数据分析推导的重组自由能值在整个系列中没有变化;这一事实以及其他观察结果表明,在所有情况下,速率决定的单分子ET都不复杂。我们的结果与一个考虑交替、隧穿和绝热本征ET机制之间转换的模型一致。还讨论了在混合SAM情况下,由于蛋白质刚性化的ω-COOH/CytC相互作用而观察到的精细动力学效应背后的物理机制。