Plant-Environment Signalling, Department of Biology, Faculty of Science, Utrecht University, Utrecht, The Netherlands.
Copernicus Institute of Sustainable Development, Department of Environmental Sciences, Faculty of Geosciences, Utrecht University, Utrecht, The Netherlands.
Plant Cell Environ. 2024 Aug;47(8):2936-2953. doi: 10.1111/pce.14909. Epub 2024 Apr 17.
Plants use light as a resource and signal. Photons within the 400-700 nm waveband are considered photosynthetically active. Far-red photons (FR, 700-800 nm) are used by plants to detect nearby vegetation and elicit the shade avoidance syndrome. In addition, FR photons have also been shown to contribute to photosynthesis, but knowledge about these dual effects remains scarce. Here, we study shoot-architectural and photosynthetic responses to supplemental FR light during the photoperiod in several rice varieties. We observed that FR enrichment only mildly affected the rice transcriptome and shoot architecture as compared to established model species, whereas leaf formation, tillering and biomass accumulation were clearly promoted. Consistent with this growth promotion, we found that CO-fixation in supplemental FR was strongly enhanced, especially in plants acclimated to FR-enriched conditions as compared to control conditions. This growth promotion dominates the effects of FR photons on shoot development and architecture. When substituting FR enrichment with an end-of-day FR pulse, this prevented photosynthesis-promoting effects and elicited shade avoidance responses. We conclude that FR photons can have a dual role, where effects depend on the environmental context: in addition to being an environmental signal, they are also a potent source of harvestable energy.
植物将光作为资源和信号加以利用。波长在 400-700nm 波段内的光子被认为具有光合作用活性。远红(FR,700-800nm)光子被植物用来探测附近的植被,并引发避荫综合征。此外,FR 光子也被证明有助于光合作用,但关于这些双重作用的知识仍然很少。在这里,我们研究了在几个水稻品种的光周期中补充 FR 光对 Shoot-architectural 和光合作用的反应。我们观察到,与已建立的模式物种相比,FR 富集仅轻度影响水稻转录组和 Shoot 结构,而叶片形成、分蘖和生物量积累明显受到促进。与这种生长促进一致,我们发现补充 FR 中的 CO 固定被强烈增强,尤其是在适应 FR 富集条件的植物中,与对照条件相比。这种生长促进作用主导了 FR 光子对 Shoot 发育和结构的影响。当用一天结束时的 FR 脉冲代替 FR 富集时,这会阻止促进光合作用的作用,并引发避荫反应。我们的结论是,FR 光子可以具有双重作用,其作用取决于环境背景:除了作为环境信号外,它们还是可收获能量的有效来源。