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来自大豆(Glycine max)的高等植物血红素加氧酶同工型-1的光谱表征——血红素复合物的配位结构及血红素的分解代谢

Spectroscopic characterization of a higher plant heme oxygenase isoform-1 from Glycine max (soybean)--coordination structure of the heme complex and catabolism of heme.

作者信息

Gohya Tomohiko, Zhang Xuhong, Yoshida Tadashi, Migita Catharina T

机构信息

Department of Biological Chemistry, Faculty of Agriculture, Yamaguchi University, Japan.

出版信息

FEBS J. 2006 Dec;273(23):5384-99. doi: 10.1111/j.1742-4658.2006.05531.x. Epub 2006 Oct 31.

Abstract

Heme oxygenase converts heme into biliverdin, CO, and free iron. In plants, as well as in cyanobacteria, heme oxygenase plays a particular role in the biosynthesis of photoreceptive pigments, such as phytochromobilins and phycobilins, supplying biliverdin IX(alpha) as a direct synthetic resource. In this study, a higher plant heme oxygenase, GmHO-1, of Glycine max (soybean), was prepared to evaluate the molecular features of its heme complex, the enzymatic activity, and the mechanism of heme conversion. The similarity in the amino acid sequence between GmHO-1 and heme oxygenases from other biological species is low, and GmHO-1 binds heme with 1 : 1 stoichiometry at His30; this position does not correspond to the proximal histidine of other heme oxygenases in their sequence alignments. The heme bound to GmHO-1, in the ferric high-spin state, exhibits an acid-base transition and is converted to biliverdin IX(alpha) in the presence of NADPH/ferredoxin reductase/ferredoxin, or ascorbate. During the heme conversion, an intermediate with an absorption maximum different from that of typical verdoheme-heme oxygenase or CO-verdoheme-heme oxygenase complexes was observed and was extracted as a bis-imidazole complex; it was identified as verdoheme. A myoglobin mutant, H64L, with high CO affinity trapped CO produced during the heme degradation. Thus, the mechanism of heme degradation by GmHO-1 appears to be similar to that of known heme oxygenases, despite the low sequence homology. The heme conversion by GmHO-1 is as fast as that by SynHO-1 in the presence of NADPH/ferredoxin reductase/ferredoxin, thereby suggesting that the latter is the physiologic electron-donating system.

摘要

血红素加氧酶将血红素转化为胆绿素、一氧化碳和游离铁。在植物以及蓝细菌中,血红素加氧酶在光感受色素(如植物光敏色素和藻胆素)的生物合成中发挥着特殊作用,为其提供胆绿素IX(α)作为直接的合成原料。在本研究中,制备了大豆(Glycine max)的一种高等植物血红素加氧酶GmHO - 1,以评估其血红素复合物的分子特征、酶活性以及血红素转化机制。GmHO - 1与其他生物物种的血红素加氧酶之间的氨基酸序列相似性较低,并且GmHO - 1在His30处按1:1化学计量比结合血红素;在序列比对中,该位置与其他血红素加氧酶的近端组氨酸不对应。与GmHO - 1结合的处于高铁高自旋状态的血红素表现出酸碱转变,并在存在NADPH/铁氧化还原蛋白还原酶/铁氧化还原蛋白或抗坏血酸的情况下转化为胆绿素IX(α)。在血红素转化过程中,观察到一种中间体,其吸收最大值与典型的胆绿素 - 血红素加氧酶或一氧化碳 - 胆绿素 - 血红素加氧酶复合物不同,并作为双咪唑复合物被提取出来;它被鉴定为胆绿素血红素。一种具有高一氧化碳亲和力的肌红蛋白突变体H64L捕获了血红素降解过程中产生的一氧化碳。因此,尽管序列同源性较低,但GmHO - 1的血红素降解机制似乎与已知的血红素加氧酶相似。在存在NADPH/铁氧化还原蛋白还原酶/铁氧化还原蛋白的情况下,GmHO - 1的血红素转化速度与SynHO - 1一样快,这表明后者是生理电子供体系统。

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