Bruno Stefano, Faggiano Serena, Spyrakis Francesca, Mozzarelli Andrea, Abbruzzetti Stefania, Grandi Elena, Viappiani Cristiano, Feis Alessandro, Mackowiak Stephan, Smulevich Giulietta, Cacciatori Elena, Dominici Paola
Dipartimento di Biochimica e Biologia Molecolare, UniversitA degli Studi di Parma, Parma, Italy.
J Am Chem Soc. 2007 Mar 14;129(10):2880-9. doi: 10.1021/ja066638d. Epub 2007 Feb 14.
The nonsymbiotic hemoglobins, AHb1 and AHb2, have recently been isolated from Arabidopsis thaliana. Using steady-state and time-resolved spectroscopic methods, we show that Fe2+ AHb1 contains a mixture of penta- and hexacoordinated heme, while Fe2+ AHb2 is fully hexacoordinated. In the CO complexes, polar interactions and H-bonds with the ligand are stronger for AHb1 than for AHb2. The ligand binding kinetics are substantially different, reflecting the distribution between the penta- and hexacoordinated species, and indicate that protein dynamics and ligand migration pathways are very specific for each of the two proteins. In particular, a very small, non-exponential geminate rebinding observed in AHb1 suggests that the distal heme cavity is connected with the exterior by a relatively open channel. The large, temperature-dependent geminate rebinding observed for AHb2 implies a major role of protein dynamics in the ligand migration from the distal cavity to the solvent. The structures of AHb1 and AHb2, modeled on the basis of the homologous rice hemoglobin, exhibit a different cavity system that is fully compatible with the observed ligand binding kinetics. Overall, these kinetic and structural data are consistent with the putative NO-dioxygenase activity previously attributed to AHb1, whereas the role of AHb2 remains elusive.
非共生血红蛋白AHb1和AHb2最近已从拟南芥中分离出来。我们使用稳态和时间分辨光谱方法表明,Fe2+ AHb1含有五配位和六配位血红素的混合物,而Fe2+ AHb2则完全是六配位的。在CO复合物中,AHb1与配体的极性相互作用和氢键比AHb2更强。配体结合动力学有很大差异,反映了五配位和六配位物种之间的分布,并表明蛋白质动力学和配体迁移途径对这两种蛋白质中的每一种都非常特异。特别是,在AHb1中观察到的非常小的、非指数形式的双分子重结合表明,血红素远端腔通过一个相对开放的通道与外部相连。在AHb2中观察到的与温度相关的大的双分子重结合意味着蛋白质动力学在配体从远端腔迁移到溶剂中的主要作用。基于同源水稻血红蛋白建模的AHb1和AHb2的结构表现出不同的腔系统,这与观察到的配体结合动力学完全兼容。总体而言,这些动力学和结构数据与先前归因于AHb1的假定的NO双加氧酶活性一致,而AHb2的作用仍然难以捉摸。