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Pyrenoid loss impairs carbon-concentrating mechanism induction and alters primary metabolism in Chlamydomonas reinhardtii.

机译:类胡萝卜素的损失会削弱碳浓缩机制的诱导,并改变莱茵衣藻的主要代谢。

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摘要

Carbon-concentrating mechanisms (CCMs) enable efficient photosynthesis and growth in CO2-limiting environments, and in eukaryotic microalgae localisation of Rubisco to a microcompartment called the pyrenoid is key. In the model green alga Chlamydomonas reinhardtii, Rubisco preferentially relocalises to the pyrenoid during CCM induction and pyrenoid-less mutants lack a functioning CCM and grow very poorly at low CO2. The aim of this study was to investigate the CO2 response of pyrenoid-positive (pyr+) and pyrenoid-negative (pyr-) mutant strains to determine the effect of pyrenoid absence on CCM induction and gene expression. Shotgun proteomic analysis of low-CO2-adapted strains showed reduced accumulation of some CCM-related proteins, suggesting that pyr- has limited capacity to respond to low-CO2 conditions. Comparisons between gene transcription and protein expression revealed potential regulatory interactions, since Rubisco protein linker (EPYC1) protein did not accumulate in pyr- despite increased transcription, while elements of the LCIB/LCIC complex were also differentially expressed. Furthermore, pyr- showed altered abundance of a number of proteins involved in primary metabolism, perhaps due to the failure to adapt to low CO2. This work highlights two-way regulation between CCM induction and pyrenoid formation, and provides novel candidates for future studies of pyrenoid assembly and CCM function.
机译:碳浓缩机制(CCM)可在限制CO2的环境中实现有效的光合作用和生长,在真核微藻中Rubisco定位到称为类胡萝卜素的微区室是关键。在模型绿藻莱茵衣藻中,Rubisco在CCM诱导过程中会优先重新定位到类胡萝卜素,而没有类胡萝卜素的突变体则缺乏功能性CCM,并且在低CO2下生长非常差。这项研究的目的是调查类胡萝卜素阳性(pyr +)和类胡萝卜素阴性(pyr-)突变菌株的CO2响应,以确定类胡萝卜素缺失对CCM诱导和基因表达的影响。 gun弹枪对低CO2适应菌株的蛋白质组学分析显示,某些CCM相关蛋白的积累减少,这表明pyr-对低CO2条件的反应能力有限。基因转录和蛋白质表达之间的比较显示了潜在的调节相互作用,因为尽管转录增加,但Rubisco蛋白接头(EPYC1)蛋白并未在pyr-中积累,而LCIB / LCIC复合物的元件也被差异表达。此外,pyr-显示出参与初级代谢的许多蛋白质的丰度发生了变化,这可能是由于无法适应低二氧化碳。这项工作强调了CCM诱导和类胡萝卜素形成之间的双向调控,并为今后的类胡萝卜素组装和CCM功能研究提供了新的候选对象。

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