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大鼠血红素加氧酶-1与胆绿素-铁螯合物复合物的晶体结构。血红素裂解反应过程中远端螺旋的构象变化。

Crystal structure of rat heme oxygenase-1 in complex with biliverdin-iron chelate. Conformational change of the distal helix during the heme cleavage reaction.

作者信息

Sugishima Masakazu, Sakamoto Hiroshi, Higashimoto Yuichiro, Noguchi Masato, Fukuyama Keiichi

机构信息

Department of Biology, Graduate School of Science, Osaka University, Toyonaka, Osaka 560-0043, Japan.

出版信息

J Biol Chem. 2003 Aug 22;278(34):32352-8. doi: 10.1074/jbc.M303682200. Epub 2003 Jun 6.

Abstract

The crystal structure of rat heme oxygenase-1 in complex with biliverdin-iron chelate (biliverdin(Fe)-HO-1), the immediate precursor of the final product, biliverdin, has been determined at a 2.4-A resolution. The electron density in the heme pocket clearly showed that the tetrapyrrole ring of heme is cleaved at the alpha-meso edge. Like the heme bound to HO-1, biliverdin-iron chelate is located between the distal and proximal helices, but its accommodation state seems to be less stable in light of the disordering of the solvent-exposed propionate and vinyl groups. The middle of the distal helix is shifted away from the center of the active site in biliverdin(Fe)-HO-1, increasing the size of the heme pocket. The hydrogen-bonding interaction between Glu-29 and Gln-38, considered to restrain the orientation of the proximal helix in the heme-HO-1 complex, was lost in biliverdin(Fe)-HO-1, leading to relaxation of the helix. Biliverdin has a distorted helical conformation; the lactam oxygen atom of its pyrrole ring-A interacted with Asp-140 through a hydrogen-bonding solvent network. Because of the absence of a distal water ligand, the iron atom is five-coordinated with His-25 and four pyrrole nitrogen atoms. The coordination geometry deviates considerably from a square pyramid, suggesting that the iron may be readily dissociated. We speculate that the opened conformation of the heme pocket facilitates sequential product release, first iron then biliverdin, and that because of biliverdin's increased flexibility, iron release triggers its slow dissociation.

摘要

已以2.4埃的分辨率确定了大鼠血红素加氧酶-1与胆绿素-铁螯合物(胆绿素(铁)-HO-1)(最终产物胆绿素的直接前体)复合物的晶体结构。血红素口袋中的电子密度清楚地表明,血红素的四吡咯环在α-中位边缘处裂解。与结合到HO-1上的血红素一样,胆绿素-铁螯合物位于远端和近端螺旋之间,但鉴于溶剂暴露的丙酸酯和乙烯基的无序状态,其容纳状态似乎不太稳定。在胆绿素(铁)-HO-1中,远端螺旋的中部从活性位点的中心移开,增加了血红素口袋的大小。在胆绿素(铁)-HO-1中,被认为可限制血红素-HO-1复合物中近端螺旋取向的Glu-29和Gln-38之间的氢键相互作用丧失,导致螺旋松弛。胆绿素具有扭曲的螺旋构象;其吡咯环-A的内酰胺氧原子通过氢键溶剂网络与Asp-140相互作用。由于缺乏远端水配体,铁原子与His-25和四个吡咯氮原子五配位。配位几何形状与四方锥有很大偏差,表明铁可能很容易解离。我们推测,血红素口袋的开放构象有利于产物的顺序释放,首先是铁,然后是胆绿素,并且由于胆绿素灵活性的增加,铁的释放触发了其缓慢解离。

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