Department of Biochemistry, Biophysics, and Molecular Biology, Iowa State University, Ames, IA 50011, USA.
Biochemistry. 2011 May 24;50(20):4273-80. doi: 10.1021/bi2002423. Epub 2011 Apr 27.
Hemoglobins from the plants Parasponia andersonii (ParaHb) and Trema tomentosa (TremaHb) are 93% identical in primary structure but differ in oxygen binding constants in accordance with their distinct physiological functions. Additionally, these proteins are dimeric, and ParaHb exhibits the unusual property of having different heme redox potentials for each subunit. To investigate how these hemoglobins could differ in function despite their shared sequence identity and to determine the cause of subunit heterogeneity in ParaHb, we have measured their crystal structures in the ferric oxidation state. Furthermore, we have made a monomeric ParaHb mutant protein (I43N) and measured its ferrous/ferric heme redox potential to test the hypothesized link between quaternary structure and heme heterogeneity in wild-type ParaHb. Our results demonstrate that TremaHb is a symmetric dimeric hemoglobin similar to other class 1 nonsymbiotic plant hemoglobins but that ParaHb has structurally distinct heme coordination in each of its two subunits that is absent in the monomeric I43N mutant protein. A mechanism for achieving structural heterogeneity in ParaHb in which the Ile(101(F4)) side chain contacts the proximal His(105(F8)) in one subunit but not the other is proposed. These results are discussed in the context of the evolution of plant oxygen transport hemoglobins, and other potential functions of plant hemoglobins.
植物 Parasponia andersonii(ParaHb)和 Trema tomentosa(TremaHb)中的血红蛋白在一级结构上有 93%的同源性,但结合氧的常数不同,这与它们不同的生理功能相一致。此外,这些蛋白质是二聚体,ParaHb 具有每个亚基具有不同的血红素氧化还原电位的不寻常性质。为了研究这些血红蛋白尽管具有共享的序列同一性但功能却不同,并且确定 ParaHb 中亚基异质性的原因,我们已经测量了它们在高铁氧化状态下的晶体结构。此外,我们还制备了一种单体 ParaHb 突变蛋白(I43N),并测量了其亚铁/高铁血红素氧化还原电位,以检验野生型 ParaHb 中亚基异质性与四级结构之间的假设联系。我们的结果表明,TremaHb 是一种对称的二聚体血红蛋白,类似于其他类 1 非共生植物血红蛋白,但 ParaHb 的两个亚基中的血红素配位结构不同,在单体 I43N 突变蛋白中不存在。提出了一种在 ParaHb 中实现结构异质性的机制,其中 Ile(101(F4))侧链在一个亚基中与近端 His(105(F8))接触,但在另一个亚基中不接触。这些结果在植物氧运输血红蛋白的进化以及植物血红蛋白的其他潜在功能的背景下进行了讨论。