Feng Xin-Tian, Yu Jian-Guo, Lei Ming, Fang Wei-Hai, Liu Shubin
Department of Chemistry, Beijing Normal University, Beijing 100875, PR China.
J Phys Chem B. 2009 Oct 8;113(40):13381-9. doi: 10.1021/jp905885y.
Porphyrin is a key cofactor of hemoproteins. The complexes it forms with divalent metal cations such as Fe, Mg, and Mn compose an important category of compounds in biological systems, serving as a reaction center for a number of essential life processes. Employing density functional theory (DFT) and conceptual DFT approaches, the structural properties and reactivity of (pyridine)(n)-M-porphyrin complexes were systematically studied for the following selection of divalent metal cations: Mg, Ca, Cr, Mn, Co, Ni, Cu, Zn, Ru, and Cd with n varying from 0, 1, to 2. Metal selectivity and porphyrin specificity were investigated from the perspective of both structural and reactivity properties. Quantitative structural and reactivity relationships have been discovered between bonding interactions, charge distributions, and DFT chemical reactivity descriptors. These results are beneficial to our understanding of the chemical reactivity and metal cation specificity for heme-containing enzymes and other metalloproteins alike.
卟啉是血红素蛋白的关键辅因子。它与二价金属阳离子(如铁、镁和锰)形成的配合物是生物系统中一类重要的化合物,充当许多基本生命过程的反应中心。采用密度泛函理论(DFT)和概念性DFT方法,对(吡啶)(n)-M-卟啉配合物的结构性质和反应活性进行了系统研究,其中二价金属阳离子的选择如下:镁、钙、铬、锰、钴、镍、铜、锌、钌和镉,n取值范围为0、1至2。从结构和反应活性性质的角度研究了金属选择性和卟啉特异性。在键合相互作用、电荷分布和DFT化学反应性描述符之间发现了定量的结构和反应活性关系。这些结果有助于我们理解含血红素的酶和其他金属蛋白的化学反应性和金属阳离子特异性。