Lethbridge Research and Development Centre, Agriculture and Agri-Food Canada, Lethbridge, AB, T1J 4B1, Canada.
Saskatoon Research and Development Centre, Agriculture and Agri-Food Canada, Saskatoon, SK, S7N 0X2, Canada.
Planta. 2019 Nov 29;251(1):24. doi: 10.1007/s00425-019-03301-4.
The improvement of photosynthesis using biotechnological approaches has been the focus of much research. It is now vital that these strategies be assessed under future atmospheric conditions. The demand for crop products is expanding at an alarming rate due to population growth, enhanced affluence, increased per capita calorie consumption, and an escalating need for plant-based bioproducts. While solving this issue will undoubtedly involve a multifaceted approach, improving crop productivity will almost certainly provide one piece of the puzzle. The improvement of photosynthetic efficiency has been a long-standing goal of plant biotechnologists as possibly one of the last remaining means of achieving higher yielding crops. However, the vast majority of these studies have not taken into consideration possible outcomes when these plants are grown long-term under the elevated CO concentrations (e[CO]) that will be evident in the not too distant future. Due to the considerable effect that CO levels have on the photosynthetic process, these assessments should become commonplace as a means of ensuring that research in this field focuses on the most effective approaches for our future climate scenarios. In this review, we discuss the main biotechnological research strategies that are currently underway with the aim of improving photosynthetic efficiency and biomass production/yields in the context of a future of e[CO], as well as alternative approaches that may provide further photosynthetic benefits under these conditions.
利用生物技术手段提高光合作用一直是许多研究的重点。现在至关重要的是,在未来的大气条件下评估这些策略。由于人口增长、生活水平提高、人均卡路里摄入量增加以及对植物生物制品的需求不断增加,对作物产品的需求正在以惊人的速度增长。虽然解决这个问题无疑需要采取多方面的方法,但提高作物生产力几乎肯定是解决问题的一个途径。提高光合作用效率一直是植物生物技术学家的长期目标,因为这可能是实现更高产作物的最后手段之一。然而,这些研究中的绝大多数都没有考虑到这些植物在未来不久将明显存在的高浓度 CO 下(e[CO])长期生长的可能结果。由于 CO 水平对光合作用过程有很大的影响,这些评估应该成为一种常见的手段,以确保该领域的研究集中在针对我们未来气候情景的最有效方法上。在这篇综述中,我们讨论了目前正在进行的主要生物技术研究策略,这些策略旨在提高 e[CO] 背景下的光合作用效率和生物量生产/产量,并讨论了在这些条件下可能提供进一步光合作用效益的替代方法。