Wang J, Li Y, Ma D, Kalish H, Balch A L, La Mar G N
Department of Chemistry, University of California, Davis, California 95616, USA.
J Am Chem Soc. 2001 Aug 22;123(33):8080-8. doi: 10.1021/ja010651a.
The highly stereoselective cleavage of hemin in myoglobin by coupled oxidation has been attributed to steric barriers that leave more space near the alpha- than the other meso-positions. The steric barriers near meso positions in myoglobin have been investigated by establishing the thermodynamics and dynamics of possible seatings in the pocket of horse myoglobin of a four-fold symmetric etioheme I modified with a bulky nitro group at a single meso position. The cyanomet complex of this reconstituted myoglobin exhibits three sets of (1)H NMR resonances that are linked dynamically and occur in approximate populations ratios of 0.82:0.10:0.08. Two dimensional (1)H NMR has been used to assign the hemin and heme pocket resonances in the major isomer in solution and to determine that the hemin is oriented with the nitro group at the canonical gamma-meso position of native hemin. The dominance of this isomer is attributed to the solvent exposure of this portion of the hemin which stabilizes the highly polar nitro group. Using a combination of magnetization transfer among methyl groups of the three isomers due to "hopping" of the hemin about its normal, the assigned resonances of an isoelectronic, bis-cyano complex of meso-nitro-etioheme I, and the known essentially constant rhombic perturbation of heme pocket sites on the hyperfine shifts of heme methyl (Kolczak, U.; Hauksson, J. B.; Davis, N. L.; Pande, U.; de Ropp, J. S.; Langry, K. C.; Smith, K. M.; LaMar, G. N. J. Am. Chem. Soc. 1999, 121, 835-843); the two minor isomers are shown to place their bulky nitro group at the canonical delta-meso (8%) and alpha-meso positions (10%). The comparable population of the isomers with nitro groups at the hydrophobic alpha- and delta-meso positions dictates that, while the static crystal structure finds more room near the alpha-meso position, the deformation at minimal energetic expense near the alpha- and delta-meso positions is comparable. These results argue that factors other than simple steric influences control the selectivity of the ring cleavage in myoglobin.
通过偶联氧化作用,肌红蛋白中血红素的高度立体选择性裂解归因于空间位垒,该位垒使得α-中位附近比其他中位附近有更多空间。通过建立在单个中位位置带有庞大硝基的四倍对称初卟啉I在马肌红蛋白口袋中可能定位的热力学和动力学,研究了肌红蛋白中中位位置附近的空间位垒。这种重组肌红蛋白的氰化高铁配合物表现出三组(1)H NMR共振信号,它们动态相连,且出现的近似丰度比为0.82:0.10:0.08。二维(1)H NMR已用于确定溶液中主要异构体的血红素和血红素口袋共振信号,并确定血红素的取向为硝基位于天然血红素的标准γ-中位位置。这种异构体占主导地位归因于血红素这部分的溶剂暴露,它稳定了高极性的硝基。利用由于血红素围绕其法线“跳跃”导致的三种异构体甲基之间的磁化转移、中位硝基-初卟啉I的等电子双氰基配合物的指定共振信号,以及血红素口袋位点对血红素甲基超精细位移的已知基本恒定的菱形扰动(科尔恰克,U.;豪克松,J. B.;戴维斯,N. L.;潘德,U.;德罗普,J. S.;兰格里,K. C.;史密斯,K. M.;拉马尔,G. N.《美国化学会志》1999年,121卷,835 - 843页);已表明两种次要异构体将其庞大的硝基置于标准δ-中位(8%)和α-中位位置(10%)。硝基位于疏水的α-和δ-中位位置的异构体具有相当的丰度,这表明,虽然静态晶体结构在α-中位位置附近发现有更多空间,但在α-和δ-中位位置附近以最小能量消耗发生的变形是相当的。这些结果表明,除了简单的空间影响之外,其他因素控制着肌红蛋白中环裂解的选择性。