Daier Verónica, Biava Hernán, Palopoli Claudia, Shova Sergiu, Tuchagues Jean-Pierre, Signorella Sandra
Departamento de Química, Facultad de Ciencias Bioquímicas y Farmacéuticas, UNR, Suipacha 531, 2000 Rosario, Argentina.
J Inorg Biochem. 2004 Nov;98(11):1806-17. doi: 10.1016/j.jinorgbio.2004.08.007.
The dimanganese(III,III) complexes [Mn(2)(III)(5-NO(2)-salpentO)(mu-AcO)(mu-MeO)(methanol)(2)]Y (1: Y=Br, 2a: Y=I, 2b: Y=I(3)), [Mn(2)(III)(5-NO(2)-salpentO)(mu-AcO)(mu-MeO)(methanol)(ClO(4))] (3) and [Mn(2)(III)(5-Cl-salpentO)(mu-AcO)(mu-MeO)(methanol)(2)]Br (4), where salpentOH is the symmetrical Schiff base ligand 1,5-bis(salicylidenamino)pentan-3-ol, were synthesised and structurally characterized. Complex 2b crystallises in the monoclinic system, space group P2(1)/c, and exhibits Mn. . .Mn separation of 2.911 A. This Mn. . .Mn separation is very close to the other characterized (mu-alkoxo)(2)(mu-acetato)Mn(2)(III) complexes of X-salpentOH (X=MeO, Br and H) and reveals that the aromatic substituent has little influence on the geometric parameters of the bimetallic core. A correlation between the electronic character of the different ring substituents, the redox potentials of the dinuclear complexes and their catalase activity was evidenced. Complexes 1-4 show saturation kinetics with [H(2)O(2)] and the H(2)O(2) disproportionation involves redox cycling between the Mn(2)(III)/Mn(2)(IV) levels. The catalytic activity studies show that bound acetate is required for catalase activity and that the acetato and alkoxo bridges serve as internal bases facilitating the proton transfer coupled to oxidation of the metal centre.
合成并表征了二锰(III,III)配合物[Mn₂(III)(5-NO₂-salpentO)(μ-AcO)(μ-MeO)(甲醇)₂]Y(1:Y = Br,2a:Y = I,2b:Y = I₃)、[Mn₂(III)(5-NO₂-salpentO)(μ-AcO)(μ-MeO)(甲醇)(ClO₄)](3)和[Mn₂(III)(5-Cl-salpentO)(μ-AcO)(μ-MeO)(甲醇)₂]Br(4),其中salpentOH是对称席夫碱配体1,5-双(水杨基亚氨基)戊烷-3-醇。配合物2b以单斜晶系结晶,空间群为P2(1)/c,Mn...Mn间距为2.911 Å。该Mn...Mn间距与其他已表征的X-salpentOH(X = MeO、Br和H)的(μ-烷氧基)₂(μ-乙酸根)Mn₂(III)配合物非常接近,表明芳族取代基对双金属核的几何参数影响很小。不同环取代基的电子特性、双核配合物的氧化还原电位与其过氧化氢酶活性之间的相关性得到了证实。配合物1 - 研究表明,配合物1-4对[H₂O₂]表现出饱和动力学,H₂O₂歧化反应涉及Mn₂(III)/Mn₂(IV)水平之间的氧化还原循环周转。催化活性研究表明,过氧化氢酶活性需要结合的乙酸根,并且乙酸根和烷氧基桥作为内部碱促进与金属中心氧化偶联的质子转移。