Matsumoto Kenji, Ozawa Tomohiro, Jitsukawa Koichiro, Masuda Hideki
Department of Applied Chemistry, Nagoya Institute of Technology, Gokiso-cho, Showa-ku, Nagoya 466-8555, Japan.
Inorg Chem. 2004 Dec 27;43(26):8538-46. doi: 10.1021/ic048761g.
Previously, an artificial siderophore complex, the iron(III) complex with tris[2-[(N-acetyl-N-hydroxy)glycylamino]ethyl]amine (TAGE), was constructed in order to understand the effect of intramolecular hydrogen bonding interaction on the siderophore function, and its structural characterization in the solid state was reported (Inorg. Chem. 2001, 40, 190). In this paper, the solution behavior of the M(III)-TAGE (M = Fe, Ga) system has been investigated using (1)H NMR, UV-vis, and FAB mass spectroscopies in efforts to characterize the biological implication of hydrogen bonding networks between the amide hydrogens and coordinating aminohydroxy oxygens of the complex. The temperature dependence of (1)H NMR spectra for Ga(III) complex of TAGE indicates that hydrogen bonding networks are maintained in polar solvents such as DMSO-d(6) and D(2)O. The UV-vis spectra of the Fe(III)-TAGE system under various pH conditions have shown that TAGE forms a tris(hydroxamato)iron(III) complex in an aqueous solution in the pH range 4-8. By contrast, tris[2-[(N-acetyl-N-hydroxy)propylamido]ethyl]amine (TAPE; TAGE analogue that is difficult to form intramolecular hydrogen bonding networks), which has been synthesized as a comparison of TAGE, forms both of bis- and tris(hydroxamato)iron(III) complexes in the same pH range. Both the stability constants (log beta(FeTAGE) = 28.6; beta(FeTAGE) = [Fe(III)TAGE]/([Fe(3+)][TAGE(3)(-)])) and pM (-log[Fe(3+)]) value for Fe(III)TAGE (pM 25) are comparable to those of a natural siderophore ferrichrome (log beta = 29.1 and pM 25.2). The kinetic study of the TAGE-Fe(III) system has given the following rate constants: the rate of the ligand exchange reaction between Fe(III)TAGE and EDTA is 6.7 x 10(-4) s(-1), and the removal rates of iron from diferric bovine plasma transferrin by TAGE are 2.8 x 10(-2) and 6.0 x 10(-3) min(-1). These values are also comparable to those of a natural siderophore desferrioxamine B under the same conditions. In a biological activity experiment, TAGE has promoted the growth of the siderophore-auxotroph Gram-positive bacterium Microbacterium flavescens, suggesting that TAGE mimics the activity of ferrichrome. These results indicate that the artificial siderophore with intramolecular hydrogen bonding networks, TAGE, is a good structural and functional model for a natural ferrichrome.
此前,为了了解分子内氢键相互作用对铁载体功能的影响,构建了一种人工铁载体配合物,即铁(III)与三[2-[(N-乙酰基-N-羟基)甘氨酰氨基]乙基]胺(TAGE)的配合物,并报道了其固态结构表征(《无机化学》,2001年,40卷,190页)。在本文中,使用(1)H NMR、紫外可见光谱和快原子轰击质谱对M(III)-TAGE(M = Fe、Ga)体系的溶液行为进行了研究,旨在表征配合物中酰胺氢与配位氨基羟基氧之间氢键网络的生物学意义。TAGE的Ga(III)配合物的(1)H NMR谱的温度依赖性表明,在极性溶剂如DMSO-d(6)和D(2)O中氢键网络得以维持。Fe(III)-TAGE体系在不同pH条件下的紫外可见光谱表明,TAGE在pH范围为4至8的水溶液中形成三(异羟肟酸根)铁(III)配合物。相比之下,作为TAGE的对照物合成的三[2-[(N-乙酰基-N-羟基)丙酰胺基]乙基]胺(TAPE;难以形成分子内氢键网络的TAGE类似物)在相同pH范围内形成双(异羟肟酸根)铁(III)和三(异羟肟酸根)铁(III)配合物。Fe(III)TAGE的稳定常数(logβ(FeTAGE)=28.6;β(FeTAGE)=[Fe(III)TAGE]/([Fe(3+)][TAGE(3)(-)]))和pM(-log[Fe(3+)])值(pM 25)与天然铁载体高铁色素的相应值(logβ = 29.1和pM 25.2)相当。TAGE-Fe(III)体系的动力学研究得出以下速率常数:Fe(III)TAGE与EDTA之间配体交换反应的速率为6.7×10^(-4) s^(-1),TAGE从二价铁牛血浆转铁蛋白中去除铁的速率分别为2.8×10^(-2)和6.0×10^(-3) min^(-1)。这些值在相同条件下也与天然铁载体去铁胺B的值相当。在生物活性实验中,TAGE促进了铁载体营养缺陷型革兰氏阳性细菌微黄微杆菌的生长,表明TAGE模拟了高铁色素的活性。这些结果表明,具有分子内氢键网络的人工铁载体TAGE是天然高铁色素的良好结构和功能模型。