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Degradation of Rubisco SSU during oxidative stress triggers aggregation of Rubisco particles in Chlamydomonas reinhardtii

机译:氧化应激过程中Rubisco SSU的降解引发莱茵衣藻中Rubisco颗粒的聚集

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Oxidative stress in plants and green algae has multiple damaging effects, and leads to the degradation of Ribulose-1,5-biphosphate carboxylase/oxygenase (Rubisco). We recently showed for the green algae Chlamydomonas reinhardtii that in response to a photo-oxidative stress, nascent synthesis of its chloroplast encoded large subunit (LSU) stops. In parallel, newly synthesized small subunits (SSU) that are encoded by the nucleus are rapidly degraded, thus assembly of new holoenzyme particles is inhibited. Here we show that under extreme oxidizing conditions, the steady-state level of the SSU is also reduced. Cleavage of the LSU under oxidizing conditions is well established, and we show, using sucrose gradients, that the resulting fragments of the LSU co-exist as parts of the holoenzyme. In parallel, we demonstrate the selective in-vivo formation of high-density aggregates of Rubisco particles, in response to oxidative stress. Given the known tendency of unassembled LSUs to aggregate, we propose that the rapid elimination of the SSU during oxidative stress along with the fragmentation of the LSU and formation of intra-protein disulfide bridges, leads to the observed aggregation of Rubisco particles. Indeed, we note here a substantially decreased ratio of SSU in the aggregated Rubisco particles. We also observed that this aggregation marks the viability threshold of C. reinhardtii cells exposed to oxidative stress.
机译:植物和绿藻中的氧化胁迫具有多种破坏作用,并导致1,5-双磷酸核糖羧化酶/加氧酶(Rubisco)降解。我们最近显示了绿藻衣藻,对光氧化应激作出反应,停止合成其叶绿体编码的大亚基(LSU)。同时,由核编码的新合成的小亚基(SSU)迅速降解,因此抑制了新的全酶颗粒的组装。在这里,我们表明在极端氧化条件下,SSU的稳态水平也会降低。 LSU在氧化条件下的裂解已得到充分证实,并且我们使用蔗糖梯度显示,LSU的所得片段作为全酶的一部分共存。平行地,我们证明了Rubisco颗粒的高密度聚集体对氧化应激的选择性体内形成。考虑到已知的未组装LSU聚集的趋势,我们建议氧化应激期间SSU的快速消除以及LSU的断裂和蛋白内二硫键的形成,导致观察到Rubisco颗粒的聚集。实际上,我们在这里注意到聚集的Rubisco颗粒中SSU的比例大大降低。我们还观察到这种聚集标志着暴露于氧化应激的莱茵衣藻细胞的活力阈值。

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