Department of Chemistry and Biochemistry, Arizona State University, Tempe, AZ, 85287, USA.
Photosynth Res. 2013 Nov;117(1-3):557-66. doi: 10.1007/s11120-013-9827-0. Epub 2013 Apr 24.
Ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) is prone to inactivation from non-productive binding of sugar-phosphates. Reactivation of Rubisco requires conformational remodeling by a specific chaperone, Rubisco activase. Rubisco activase from tobacco and other plants in the family Solanaceae is an inefficient activator of Rubisco from non-Solanaceae plants and from the green alga Chlamydomonas reinhardtii. To determine if the Rubisco small subunit plays a role in the interaction with Rubisco activase, a hybrid Rubisco (SSNT) composed of tobacco small subunits and Chlamydomonas large subunits was constructed. The SSNT hybrid, like other hybrid Rubiscos containing plant small subunits, supported photoautotrophic growth in Chlamydomonas, but growth in air was much slower than for cells containing wild-type Rubisco. The kinetic properties of the SSNT hybrid Rubisco were similar to the wild-type enzyme, indicating that the poor growth in air was probably caused by disruption of pyrenoid formation and the consequent impairment of the CO2concentrating mechanism. Recombinant Rubisco activase from Arabidopsis activated the SSNT hybrid Rubisco and hybrid Rubiscos containing spinach and Arabidopsis small subunits at rates similar to the rates with wild-type Rubisco. However, none of the hybrid Rubiscos was activated by tobacco Rubisco activase. That replacement of Chlamydomonas small subunits with plant small subunits does not affect the species-specific interaction between Rubisco and Rubisco activase suggests that the association is not dominated by the small subunits that surround the Rubisco central solvent channel. Therefore, the geometry of a side-on binding mode is more consistent with the data than a top-on or ring-stacking binding mode.
核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)容易受到非生产性糖磷酸结合的失活。Rubisco 的重激活需要特定伴侣蛋白 Rubisco 激活酶的构象重塑。烟草和茄科其他植物的 Rubisco 激活酶对非茄科植物和绿藻莱茵衣藻的 Rubisco 的激活效率较低。为了确定 Rubisco 小亚基是否在与 Rubisco 激活酶的相互作用中起作用,构建了由烟草小亚基和衣藻大亚基组成的杂合 Rubisco(SSNT)。SSNT 杂种与含有植物小亚基的其他杂种 Rubisco 一样,支持衣藻的光自养生长,但在空气中的生长速度比含有野生型 Rubisco 的细胞慢得多。SSNT 杂种 Rubisco 的动力学性质与野生型酶相似,表明在空气中生长不良可能是由于类囊体形成中断以及随后对 CO2 浓缩机制的损害所致。拟南芥来源的重组 Rubisco 激活酶以与野生型 Rubisco 相似的速率激活 SSNT 杂种 Rubisco 和含有菠菜和拟南芥小亚基的杂种 Rubisco。然而,烟草 Rubisco 激活酶都不能激活任何杂种 Rubisco。用植物小亚基代替衣藻小亚基不会影响 Rubisco 和 Rubisco 激活酶之间的种间相互作用,这表明这种相互作用不是由围绕 Rubisco 中心溶剂通道的小亚基决定的。因此,侧结合模式的几何形状比顶结合模式或环堆积结合模式更符合数据。