Structures of oxygen dissociation intermediates of 400 kDa V2 hemoglobin provide coarse snapshots of the protein allostery.

Biophysics and Physicobiology Pub Date : 2022-05-12 eCollection Date: 2022-01-01 DOI:10.2142/biophysico.bppb-v19.0019
Nobutaka Numoto, Seiko Onoda, Yoshiaki Kawano, Hideo Okumura, Seiki Baba, Yoshihiro Fukumori, Kunio Miki, Nobutoshi Ito
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Abstract

Ever since the historic discovery of the cooperative oxygenation of its multiple subunits, hemoglobin (Hb) has been among the most exhaustively studied allosteric proteins. However, the lack of structural information on the intermediates between oxygenated and deoxygenated forms prevents our detailed understanding of the molecular mechanism of its allostery. It has been difficult to prepare crystals of intact oxy-deoxy intermediates and to individually identify the oxygen saturation for each subunit. However, our recent crystallographic studies have demonstrated that giant Hbs from annelids are suitable for overcoming these problems and can provide abundant information on oxy-deoxy intermediate structures. Here, we report the crystal structures of oxy-deoxy intermediates of a 400 kDa Hb (V2Hb) from the annelid Lamellibrachia satsuma, following up on a series of previous studies of similar giant Hbs. Four intermediate structures had average oxygen saturations of 78%, 69%, 55%, and 26%, as determined by the occupancy refinement of the bound oxygen based on ambient temperature factors. The structures demonstrate that the cooperative oxygen dissociation is weaker, large ternary and quaternary changes are induced at a later stage of the oxygen dissociation process, and the ternary and quaternary changes are smaller with local perturbations. Nonetheless, the overall structural transition seemed to proceed in the manner of the MWC two-state model. Our crystallographic snapshots of the allosteric transition of V2Hb provide important experimental evidence for a more detailed understanding of the allostery of Hbs by extension of the Monod-Wyman-Changeux (MWC) model.

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400 kDa V2血红蛋白的氧解离中间体结构提供了蛋白质变构的粗略快照。
自从血红蛋白(Hb)的多个亚基协同氧化的历史性发现以来,血红蛋白(Hb)一直是研究最详尽的变构蛋白之一。然而,缺乏氧和脱氧形式之间的中间体的结构信息阻碍了我们对其变构的分子机制的详细了解。制备完整的氧-脱氧中间体晶体和单独确定每个亚基的氧饱和度一直是困难的。然而,我们最近的晶体学研究表明,来自环节动物的巨型Hbs适合克服这些问题,并可以提供丰富的氧-脱氧中间结构信息。在此,我们报道了一种400 kDa Hb (V2Hb)的氧-脱氧中间体的晶体结构,来自环节动物Lamellibrachia satsuma,在之前对类似巨型Hb的一系列研究之后。4个中间结构的平均氧饱和度分别为78%、69%、55%和26%,这是根据环境温度因素对结合氧的占用细化确定的。结构分析表明,氧解离作用较弱,在氧解离后期会引起较大的三元和四元变化,局部扰动时三元和四元变化较小。尽管如此,整体结构转变似乎是按照MWC两态模型的方式进行的。我们对V2Hb变构跃迁的晶体学快照为通过扩展Monod-Wyman-Changeux (MWC)模型更详细地理解Hbs的变构提供了重要的实验证据。
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