Biophysical regulation of ecosystem carbon use efficiency in a temperate grassland through nitrogen use efficiency and canopy structure under deepened snow

环境科学 天蓬 生态系统 生物量(生态学) 初级生产 生态系统呼吸 温带气候 优势(遗传学) 生态学 碳循环 大气科学 草原 温带森林 氮气循环 下层林 氮气 土壤碳 陆地生态系统 土壤呼吸 固碳 营养物 温带雨林 自养 气候变化 生产力 农学 碳纤维 水分 森林生态学 葛兰素 营养循环 光合能力
作者
Ping Li,Zhou Jia,Yuntao WU,Nairsag Jalaid,Xiaoxia Zhao,T. Hu,Yanjun SU,Lingli Liu
出处
期刊:Journal of Ecology [Wiley]
卷期号:114 (1)
标识
DOI:10.1111/1365-2745.70229
摘要

Abstract Ecosystem carbon use efficiency (CUE) is a key indicator of an ecosystem's capacity to function as a carbon sink. While previous studies have predominantly focused on how climate and resource availability affect CUE through physiological processes during the growing season, the role of canopy structure in regulating carbon and energy exchange, especially its interactions with winter climate processes and nitrogen use efficiency (NUE) in shaping ecosystem CUE in semi‐arid grasslands, remains insufficiently understood. Here, we conducted a 5‐year snow manipulation experiment in a temperate grassland to investigate the effects of deepened snow on ecosystem CUE. We measured ecosystem carbon fluxes, soil nitrogen concentration, species biomass, plants' nitrogen concentration, canopy height and cover and species composition. We found that deepened snow increased soil nitrogen availability, while the concurrent rise in soil moisture facilitated nutrient acquisition and utilization. Together, these changes supported greater biomass accumulation per unit of nitrogen uptake, thereby enhancing NUE. In addition, deepened snow favoured the dominance of C3 grasses, which generally exhibit higher NUE and greater height than C3 forbs, providing a second pathway that further elevated community‐level NUE. The enhanced NUE, through both physiological efficiency and compositional shifts, promoted biomass production and facilitated the development of larger canopy volumes. Larger canopy volumes under deepened snow increased gross primary production through improved light interception, while the associated increase in autotrophic maintenance respiration was moderated by higher NUE. Besides, denser canopies reduced understorey temperatures throughout the day, particularly at night, thereby suppressing heterotrophic respiration. Ultimately, deepened snow increased ecosystem CUE by enhancing carbon uptake while limiting respiratory carbon losses. Synthesis . These findings demonstrated the crucial role of biophysical processes associated with canopy structure and NUE in regulating ecosystem CUE, which has been largely overlooked in previous studies. We also highlight the importance of winter processes in shaping carbon sequestration dynamics and their potential to modulate future grassland responses to climate change.
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