Mathematical and Statistical Methods Group, Wageningen University and Research, Wageningen, Gelderland, The Netherlands.
Horticulture and Product Physiology, Wageningen University and Research, Wageningen, Gelderland, The Netherlands.
PLoS One. 2023 Mar 16;18(3):e0275047. doi: 10.1371/journal.pone.0275047. eCollection 2023.
The conversion of supplemental greenhouse light energy into biomass is not always optimal. Recent trends in global energy prices and discussions on climate change highlight the need to reduce our energy footprint associated with the use of supplemental light in greenhouse crop production. This can be achieved by implementing "smart" lighting regimens which in turn rely on a good understanding of how fluctuating light influences photosynthetic physiology. Here, a simple fit-for-purpose dynamic model is presented. It accurately predicts net leaf photosynthesis under natural fluctuating light. It comprises two ordinary differential equations predicting: 1) the total stomatal conductance to CO2 diffusion and 2) the CO2 concentration inside a leaf. It contains elements of the Farquhar-von Caemmerer-Berry model and the successful incorporation of this model suggests that for tomato (Solanum lycopersicum L.), it is sufficient to assume that Rubisco remains activated despite rapid fluctuations in irradiance. Furthermore, predictions of the net photosynthetic rate under both 400ppm and enriched 800ppm ambient CO2 concentrations indicate a strong correlation between the dynamic rate of photosynthesis and the rate of electron transport. Finally, we are able to indicate whether dynamic photosynthesis is Rubisco or electron transport rate limited.
辅助温室光能转化为生物质并不总是最优的。最近全球能源价格的趋势和气候变化的讨论强调了需要减少与温室作物生产中辅助光照使用相关的能源足迹。这可以通过实施“智能”照明方案来实现,而这又依赖于对波动的光照如何影响光合作用生理学有很好的理解。在这里,提出了一个简单的、适用的动态模型。它可以准确地预测自然波动光照下的净叶光合作用。它由两个常微分方程组成,预测:1)CO2 扩散的总气孔导度和 2)叶片内的 CO2 浓度。它包含 Farquhar-von Caemmerer-Berry 模型的元素,并且成功地将这个模型融入其中,这表明对于番茄(Solanum lycopersicum L.),尽管辐照度快速波动,Rubisco 仍然保持激活状态。此外,在 400ppm 和富 800ppm 环境 CO2 浓度下的净光合速率预测表明,光合作用的动态速率与电子传递速率之间存在很强的相关性。最后,我们能够指出动态光合作用是 Rubisco 还是电子传递速率受限。