Collman James P, Dey Abhishek, Yang Ying, Ghosh Somdatta, Decréau Richard A
Department of Chemistry, Stanford University, Stanford, CA 94305, USA.
Proc Natl Acad Sci U S A. 2009 Jun 30;106(26):10528-33. doi: 10.1073/pnas.0904634106. Epub 2009 Jun 16.
O(2) reactivity of a functional NOR model is investigated by using electrochemistry and spectroscopy. The electrochemical measurements using interdigitated electrodes show very high selectivity for 4e O(2) reduction with minimal production of partially reduced oxygen species (PROS) under both fast and slow electron flux. Intermediates trapped at cryogenic temperatures and characterized by using resonance Raman spectroscopy under single-turnover conditions indicate that an initial bridging peroxide intermediate undergoes homolytic O--O bond cleavage generating a trans heme/nonheme bis-ferryl intermediate. This bis ferryl species can oxygenate 2 equivalents of a reactive substrate.
通过电化学和光谱学研究了功能性NOR模型的O(2)反应活性。使用叉指电极进行的电化学测量表明,在快速和慢速电子通量下,对4e O(2)还原具有非常高的选择性,同时部分还原氧物种(PROS)的产生极少。在低温下捕获并在单周转条件下通过共振拉曼光谱表征的中间体表明,最初的桥连过氧化物中间体经历均裂O--O键断裂,生成反式血红素/非血红素双铁中间体。这种双铁物种可以氧化2当量的反应性底物。