Mallmann Julia, Heckmann David, Bräutigam Andrea, Lercher Martin J, Weber Andreas P M, Westhoff Peter, Gowik Udo
Institute for Plant Molecular and Developmental Biology, Heinrich-Heine-Universität, Düsseldorf, Germany.
Institute for Computer Science, Heinrich-Heine-Universität, Düsseldorf, Germany.
Elife. 2014 Jun 16;3:e02478. doi: 10.7554/eLife.02478.
C4 photosynthesis represents a most remarkable case of convergent evolution of a complex trait, which includes the reprogramming of the expression patterns of thousands of genes. Anatomical, physiological, and phylogenetic and analyses as well as computational modeling indicate that the establishment of a photorespiratory carbon pump (termed C2 photosynthesis) is a prerequisite for the evolution of C4. However, a mechanistic model explaining the tight connection between the evolution of C4 and C2 photosynthesis is currently lacking. Here we address this question through comparative transcriptomic and biochemical analyses of closely related C3, C3-C4, and C4 species, combined with Flux Balance Analysis constrained through a mechanistic model of carbon fixation. We show that C2 photosynthesis creates a misbalance in nitrogen metabolism between bundle sheath and mesophyll cells. Rebalancing nitrogen metabolism requires anaplerotic reactions that resemble at least parts of a basic C4 cycle. Our findings thus show how C2 photosynthesis represents a pre-adaptation for the C4 system, where the evolution of the C2 system establishes important C4 components as a side effect.
C4光合作用代表了复杂性状趋同进化的一个显著例子,其中包括数千个基因表达模式的重新编程。解剖学、生理学、系统发育分析以及计算建模表明,光呼吸碳泵(称为C2光合作用)的建立是C4进化的先决条件。然而,目前缺乏一个解释C4和C2光合作用进化之间紧密联系的机制模型。在这里,我们通过对密切相关的C3、C3-C4和C4物种进行比较转录组学和生化分析,并结合通过碳固定机制模型进行约束的通量平衡分析,来解决这个问题。我们表明,C2光合作用在维管束鞘细胞和叶肉细胞之间的氮代谢中造成失衡。重新平衡氮代谢需要回补反应,这些反应至少类似于基本C4循环的部分反应。因此,我们的研究结果表明了C2光合作用如何代表了对C4系统的一种预适应,其中C2系统的进化作为一种副作用建立了重要的C4组分。