Department of Biology, University of Western Ontario, London, ON, N6A 5B7, Canada.
Nicholas School of the Environment, Duke University, Durham, NC, 27708, USA.
New Phytol. 2019 Jan;221(1):32-49. doi: 10.1111/nph.15283. Epub 2018 Jul 8.
Contents Summary 32 I. The importance of plant carbon metabolism for climate change 32 II. Rising atmospheric CO2 and carbon metabolism 33 III. Rising temperatures and carbon metabolism 37 IV. Thermal acclimation responses of carbon metabolic processes can be best understood when studied together 38 V. Will elevated CO2 offset warming-induced changes in carbon metabolism? 40 VI. No plant is an island: water and nutrient limitations define plant responses to climate drivers 41 VII. Conclusions 42 Acknowledgements 42 References 42 Appendix A1 48 SUMMARY: Plant carbon metabolism is impacted by rising CO concentrations and temperatures, but also feeds back onto the climate system to help determine the trajectory of future climate change. Here we review how photosynthesis, photorespiration and respiration are affected by increasing atmospheric CO concentrations and climate warming, both separately and in combination. We also compile data from the literature on plants grown at multiple temperatures, focusing on net CO assimilation rates and leaf dark respiration rates measured at the growth temperature (A and R , respectively). Our analyses show that the ratio of A to R is generally homeostatic across a wide range of species and growth temperatures, and that species that have reduced A at higher growth temperatures also tend to have reduced R , while species that show stimulations in A under warming tend to have higher R in the hotter environment. These results highlight the need to study these physiological processes together to better predict how vegetation carbon metabolism will respond to climate change.
内容概述 32 I. 植物碳代谢对气候变化的重要性 32 II. 大气 CO2 升高与碳代谢 33 III. 温度升高与碳代谢 37 IV. 综合研究有助于更好地理解碳代谢过程的热驯化响应 38 V. 高 CO2 会抵消升温对碳代谢的影响吗? 40 VI. 没有植物是孤岛:水和养分限制决定了植物对气候驱动因素的响应 41 VII. 结论 42 致谢 42 参考文献 42 附录 A1 48 概述:植物碳代谢受 CO2 浓度升高和温度升高的影响,但也会反馈到气候系统,有助于确定未来气候变化的轨迹。在这里,我们综述了光合作用、光呼吸和呼吸作用如何受到大气 CO2 浓度升高和气候变暖的影响,包括单独和综合影响。我们还从文献中编译了在多个温度下生长的植物的数据,重点关注在生长温度下测量的净 CO2 同化率和叶片暗呼吸率(分别为 A 和 R)。我们的分析表明,在广泛的物种和生长温度范围内,A 与 R 的比值通常是稳定的,并且在较高生长温度下 A 减少的物种往往 R 也减少,而在变暖条件下 A 受到刺激的物种在较热的环境中往往具有较高的 R。这些结果强调了需要综合研究这些生理过程,以更好地预测植被碳代谢将如何应对气候变化。