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氮肥诱导田间棉花净碳同化率变化的原因是光合作用过程和碳损失机制的敏感性不同。

Differential sensitivities of photosynthetic processes and carbon loss mechanisms govern N-induced variation in net carbon assimilation rate for field-grown cotton.

机构信息

Department of Crop and Soil Sciences, University of Georgia, Tifton, GA 31794, USA.

出版信息

J Exp Bot. 2023 Apr 18;74(8):2638-2652. doi: 10.1093/jxb/erad038.

DOI:10.1093/jxb/erad038
PMID:36715336
Abstract

Nitrogen (N) deficiency limits the net carbon assimilation rate (AN), but the relative N sensitivities of photosynthetic component processes and carbon loss mechanisms remain relatively unexplored for field-grown cotton. Therefore, the objective of the current study was to define the relative sensitivity of individual physiological processes driving N deficiency-induced declines in AN for field-grown cotton. Among the potential diffusional limitations evaluated, mesophyll conductance was the only parameter substantially reduced by N deficiency, but this did not affect CO2 availability in the chloroplast. A number of metabolic processes were negatively impacted by N deficiency, and these effects were more pronounced at lower leaf positions in the cotton canopy. Ribulose bisphosphate (RuBP) regeneration and carboxylation, AN, and gross photosynthesis were the most sensitive metabolic processes to N deficiency, whereas photosynthetic electron transport processes, electron flux to photorespiration, and dark respiration exhibited intermediate sensitivity to N deficiency. Among thylakoid-specific processes, the quantum yield of PSI end electron acceptor reduction was the most sensitive process to N deficiency. It was concluded that AN is primarily limited by Rubisco carboxylation and RuBP regeneration under N deficiency in field-grown cotton, and the differential N sensitivities of the photosynthetic process and carbon loss mechanisms contributed significantly to photosynthetic declines.

摘要

氮(N)缺乏限制了净碳同化率(AN),但田间棉花光合作用组成过程和碳损失机制对 N 缺乏的相对敏感性仍相对未知。因此,本研究的目的是确定驱动田间棉花 AN 下降的各个生理过程对 N 缺乏的相对敏感性。在所评估的潜在扩散限制中,只有 N 缺乏显著降低了叶肉导度,但这并不影响叶绿体中 CO2 的可用性。许多代谢过程受到 N 缺乏的负面影响,而且这些影响在棉花冠层的较低叶位更为明显。核酮糖-1,5-二磷酸(RuBP)再生和羧化、AN 和总光合作用是对 N 缺乏最敏感的代谢过程,而光合电子传递过程、电子流到光呼吸和暗呼吸对 N 缺乏的敏感性则处于中间水平。在类囊体特异性过程中,PSI 末端电子受体还原的量子产率是对 N 缺乏最敏感的过程。结论是,在田间生长的棉花中,N 缺乏主要限制了 Rubisco 羧化和 RuBP 再生,光合作用过程和碳损失机制的不同 N 敏感性对光合作用下降有重要贡献。

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