Department of Biology, Washington University, St Louis, Missouri, United States of America.
PLoS One. 2011 Feb 22;6(2):e16680. doi: 10.1371/journal.pone.0016680.
Cyanothece sp. ATCC 51142 is a diazotrophic cyanobacterium notable for its ability to perform oxygenic photosynthesis and dinitrogen fixation in the same single cell. Previous transcriptional analysis revealed that the existence of these incompatible cellular processes largely depends on tightly synchronized expression programs involving ∼30% of genes in the genome. To expand upon current knowledge, we have utilized sensitive proteomic approaches to examine the impact of diurnal rhythms on the protein complement in Cyanothece 51142. We found that 250 proteins accounting for ∼5% of the predicted ORFs from the Cyanothece 51142 genome and 20% of proteins detected under alternating light/dark conditions exhibited periodic oscillations in their abundances. Our results suggest that altered enzyme activities at different phases during the diurnal cycle can be attributed to changes in the abundance of related proteins and key compounds. The integration of global proteomics and transcriptomic data further revealed that post-transcriptional events are important for temporal regulation of processes such as photosynthesis in Cyanothece 51142. This analysis is the first comprehensive report on global quantitative proteomics in a unicellular diazotrophic cyanobacterium and uncovers novel findings about diurnal rhythms.
集胞藻 sp. ATCC 51142 是一种固氮蓝藻,其显著特点是能够在同一单细胞中进行有氧光合作用和固氮作用。先前的转录分析表明,这些不兼容的细胞过程的存在在很大程度上取决于涉及基因组中约 30%基因的紧密同步表达程序。为了扩展当前的知识,我们利用灵敏的蛋白质组学方法来研究昼夜节律对集胞藻 51142 蛋白质组的影响。我们发现,250 种蛋白质占集胞藻 51142 基因组中预测的 ORFs 的约 5%,20%在交替光照/黑暗条件下检测到的蛋白质表现出丰度的周期性波动。我们的结果表明,在昼夜周期的不同阶段,酶活性的改变可以归因于相关蛋白质和关键化合物丰度的变化。全局蛋白质组学和转录组学数据的整合进一步表明,转录后事件对于集胞藻 51142 中光合作用等过程的时间调节很重要。这一分析是对单细胞固氮蓝藻进行全局定量蛋白质组学的首次全面报告,揭示了昼夜节律的新发现。