Keown Jeremy R, Pearce Frederick Grant
*Biomolecular Interactions Centre and School of Biological Sciences, University of Canterbury, Private Bag 4800, Christchurch 8020, New Zealand.
Biochem J. 2014 Dec 15;464(3):413-23. doi: 10.1042/BJ20140676.
Most plants contain two isoforms of ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) activase (Rca), a chloroplast protein that maintains the activity of Rubisco during photosynthesis. The longer (α-) Rca isoform has previously been shown to regulate the activity of Rubisco in response to both the ADP:ATP ratio and redox potential via thioredoxin-f. We have characterized the arrangement of the different spinach (Spinacia oleracea) isoforms in solution, and show how the presence of nucleotides changes the oligomeric state. Although the shorter (β-) isoform from both tobacco (Nicotiana tabacum) and spinach tend to form a range of oligomers in solution, the size of which are relatively unaffected by the addition of nucleotide, the spinach α-isoform assembles as a hexamer in the presence of adenosine 5'-[γ-thio]triphosphate (ATPγS). These hexamers have significantly higher heat stability, and may play a role in optimizing photosynthesis at higher temperatures. Hexamers were also observed for mixtures of the two isoforms, suggesting that the α-isoform can act as a structural scaffold for hexamer formation by the β-isoform. Additionally, it is shown that a variant of the tobacco β-isoform acts in a similar fashion to the α-isoform of spinach, forming thermally stable hexamers in the presence of ATPγS. Both isoforms had similar rates of ATP hydrolysis, suggesting that a propensity for hexamer formation may not necessarily be correlated with activity. Modelling of the hexameric structures suggests that although the N-terminus of Rca forms a highly dynamic, extended structure, the C-terminus is located adjacent to the intersubunit interface.
大多数植物含有1,5 - 二磷酸核酮糖羧化酶/加氧酶(Rubisco)激活酶(Rca)的两种同工型,Rca是一种叶绿体蛋白,在光合作用过程中维持Rubisco的活性。此前已表明,较长的(α-)Rca同工型通过硫氧还蛋白-f响应ADP:ATP比值和氧化还原电位来调节Rubisco的活性。我们已经表征了溶液中不同菠菜(Spinacia oleracea)同工型的排列方式,并展示了核苷酸的存在如何改变寡聚状态。尽管烟草(Nicotiana tabacum)和菠菜的较短(β-)同工型在溶液中倾向于形成一系列寡聚体,其大小相对不受核苷酸添加的影响,但菠菜α-同工型在5'-[γ-硫代]三磷酸腺苷(ATPγS)存在下组装成六聚体。这些六聚体具有显著更高的热稳定性,可能在较高温度下优化光合作用中发挥作用。两种同工型的混合物也观察到了六聚体,这表明α-同工型可以作为β-同工型形成六聚体的结构支架。此外,研究表明烟草β-同工型的一个变体与菠菜α-同工型的作用方式相似,在ATPγS存在下形成热稳定的六聚体。两种同工型的ATP水解速率相似,这表明形成六聚体的倾向不一定与活性相关。六聚体结构的建模表明,尽管Rca的N端形成高度动态的伸展结构,但C端位于亚基间界面附近。