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Role of ClpP in the Biogenesis and Degradation of RuBisCO and ATP Synthase in Chlamydomonas reinhardtii

机译:ClpP在莱茵衣藻中RuBisCO和ATP合酶的生物发生和降解中的作用

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摘要

Ribulose 1,5-bisphosphate carboxylase/oxygenase (RuBisCO) associates a chloroplast- and a nucleus-encoded subunit (LSU and SSU). It constitutes the major entry point of inorganic carbon into the biosphere as it catalyzes photosynthetic CO2 fixation. Its abundance and richness in sulfur-containing amino acids make it a prime source of N and S during nutrient starvation, when photosynthesis is downregulated and a high RuBisCO level is no longer needed. Here we show that translational attenuation of ClpP1 in the green alga Chlamydomonas reinhardtii results in retarded degradation of RuBisCO during S- and N-starvation, suggesting that the Clp protease is a major effector of RubisCO degradation in these conditions. Furthermore, we show that ClpP cannot be attenuated in the context of rbcL point mutations that prevent LSU folding. The mutant LSU remains in interaction with the chloroplast chaperonin complex. We propose that degradation of the mutant LSU by the Clp protease is necessary to prevent poisoning of the chaperonin. In the total absence of LSU, attenuation of ClpP leads to a dramatic stabilization of unassembled SSU, indicating that Clp is responsible for its degradation. In contrast, attenuation of ClpP in the absence of SSU does not lead to overaccumulation of LSU, whose translation is controlled by assembly. Altogether, these results point to RuBisCO degradation as one of the major house-keeping functions of the essential Clp protease. In addition, we show that non-assembled subunits of the ATP synthase are also stabilized when ClpP is attenuated. In the case of the atpA-FUD16 mutation, this can even allow the assembly of a small amount of CF1, which partially restores phototrophy.
机译:核糖1,5-二磷酸羧化酶/加氧酶(RuBisCO)将叶绿体和核编码的亚基(LSU和SSU)结合在一起。它构成了无机碳进入生物圈的主要入口点,因为它催化了光合二氧化碳的固定。当光合作用被下调并且不再需要高RuBisCO含量时,其富含和丰富的含硫氨基酸使其成为营养饥饿期间氮和硫的主要来源。在这里,我们显示绿藻衣藻中的ClpP1的翻译减弱导致RuBisCO在S和N饥饿期间的降解受阻,这表明Clp蛋白酶在这些条件下是RubisCO降解的主要作用因子。此外,我们表明在阻止LSU折叠的rbcL点突变的情况下,ClpP不能被减弱。突变的LSU仍与叶绿体伴侣蛋白复合物相互作用。我们提出,通过Clp蛋白酶降解突变体LSU对于防止伴侣蛋白中毒是必要的。在完全不存在LSU的情况下,ClpP的衰减会导致未组装的SSU显着稳定,这表明Clp对其降解负责。相反,在没有SSU的情况下ClpP的衰减不会导致LSU的过度积累,而LSU的翻译受装配控制。总而言之,这些结果表明RuBisCO降解是必需的Clp蛋白酶的主要持家功能之一。此外,我们显示当ClpP减毒时,ATP合酶的非组装亚基也可以稳定。在atpA-FUD16突变的情况下,这甚至可以允许组装少量CF1,从而部分恢复光疗。

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