数字农科院2.0

Short-term salt stress reduces photosynthetic oscillations under triose phosphate utilization limitation in tomato

文献类型: 外文期刊

作者: Zhang, Yuqi;Kaiser, Elias;Dutta, Satadal;Sharkey, Thomas D.;Marcelis, Leo F. M.;Li, Tao

作者机构:

关键词: Dynamic light;gas exchange;salt stress;tomato;TPU limitation;triose phosphate utilization

期刊名称: JOURNAL OF EXPERIMENTAL BOTANY

ISSN: 0022-0957

年卷期: 2024 年

页码:

收录情况: SCIE(2024版)

摘要: Triose phosphate utilization (TPU) limitation is one of the three biochemical limitations of photosynthetic CO2 assimilation rate in C3 plants. Under TPU limitation, abrupt and large transitions in light intensity cause damped oscillations in photosynthesis. When plants are salt-stressed, photosynthesis is often down-regulated particularly under dynamic light intensity, but how salt stress affects TPU-related dynamic photosynthesis is still unknown. To elucidate this, tomato (Solanum lycopersicum) was grown with and without sodium chloride (NaCl, 100 mM) stress for 13 d. Under high CO2 partial pressure, rapid increases in light intensity caused profound photosynthetic oscillations. Salt stress reduced photosynthetic oscillations in leaves initially under both low- and high-light conditions and reduced the duration of oscillations by about 2 min. Besides, salt stress increased the threshold for CO2 partial pressure at which oscillations occurred. Salt stress increased TPU capacity without affecting Rubisco carboxylation and electron transport capacity, indicating the up-regulation of end-product synthesis capacity in photosynthesis. Thus salt stress may reduce photosynthetic oscillations by decreasing leaf internal CO2 partial pressure and/or increasing TPU capacity. Our results provide new insights into how salt stress modulates dynamic photosynthesis as controlled by CO2 availability and end-product synthesis. Short-term salt stress decreased the settling time of light-triggered photosynthetic oscillations that occur when reaching triose phosphate limitation, and increased the threshold for [CO2 ] at which oscillations were observed.

分类号:

  • 相关文献

[1]Changes of antioxidative enzymes and cell membrane osmosis in tomato colonized by arbuscular mycorrhizae under NaCl stress. ZhongQun, He,ChaoXing, He,ZhiBin, Zhang,ZhiRong, Zou,HuaiSong, Wang.

[2]The Effects of Arbuscular Mycorrhizal Fungi on Reactive Oxyradical Scavenging System of Tomato Under Salt Tolerance. Huang Zhi,He Chao-xing,Zhang Zhi-bin,Huang Zhi,Zou Zhi-rong,Huang Zhi,He Zhong-qun. 2010

[3]Reducing the Halotolerance Gap between Sensitive and Resistant Tomato by Spraying Melatonin. Rong Zhou,Benjian Cen,Fangling Jiang,Mintao Sun,Junqin Wen,Xue Cao,Shouyao Cui,Lingpeng Kong,Niannian Zhou,Zhen Wu. 2022

[4]Identification and Characterization of Long Non-coding RNA in Tomato Roots Under Salt Stress. Li N.,Wang Z.,Wang B.,Wang J.,Xu R.,Yang T.,Huang S.,Wang H.,Yu Q.. 2022

[5]NaCl affects photosynthetic and stomatal dynamics by osmotic effects and reduces photosynthetic capacity by ionic effects in tomato. Zhang, Yuqi,Kaiser, Elias,Li, Tao,Marcelis, Leo F. M.. 2022

[6]Genome-wide characterization of salt-responsive mirnas, circrnas and associated cerna networks in tomatoes. Zhongyu Wang,Ning Li,Qinghui Yu,Huan Wang. 2021

[7]Low R:FR light ratio enhances calcium nitrate resistance and stomatal movement in tomato seedlings by regulating H2O2 accumulation. Zhou, Xiaoting,Ye, Deyang,Tang, Yunxin,Gan, Yirong,Huang, Jia,Bian, Zhonghua,Su, Lihong,He, Zhongqun,He, Chaoxing,Cheng, Shaobo. 2025

[8]番茄基因组中抗病基因同源序列分离. 时涛,孙福在,回文广,李国庆. 2002

[9]蔬菜育种的基因组学. 黄三文. 2012

[10]感细菌性斑点病番茄品种上存有抗病基因pto序列. 时涛,李国庆,孙福在. 2004

[11]李宝聚博士诊病手记(八十八)番茄细菌性斑点病症状多样性与综合防治. 王莹莹,柴阿丽,李宝聚. 2015

[12]The altitudinal effects on photosynthesis of Rosa platyacantha from the Tianshan Mountains in Northwestern China. Yang, S. H.,Wei, J. J.,Ge, H..

[13]Response of photosynthesis to short-term drought stress in rice seedlings overexpressing C-4 phosphoenolpyruvate carboxylase from maize and millet. Ding, Z. S.,Sun, X. F.,Huang, S. H.,Zhou, B. Y.,Zhao, M..

[14]Combined effects of elevated CO2 and Cd-contaminated soil on the growth, gas exchange, antioxidant defense, and Cd accumulation of poplars and willows. Guo, Baohua,Dai, Songxiang,Wang, Ruigang,Guo, Junkang,Ding, Yongzhen,Xu, Yingming,Wang, Ruigang,Guo, Junkang,Ding, Yongzhen,Xu, Yingming.

[15]The causes and impacts for heat stress in spring maize during grain filling in the North China Plain - A review. TAO Zhi-qiang,CHEN Yuan-quan,LI Chao,ZOU Juan-xiu,YAN Peng,YUAN Shu-fen,WU Xia,SUI Peng. 2016

[16]Excessive nitrogen application under moderate soil water deficit decreases photosynthesis, respiration, carbon gain and water use efficiency of maize. Huanli Xing,Wenbin Zhou,Chao Wang,Li Li,Xiangnan Li,Ningbo Cui,Weiping Hao,Fulai Liu,Yaosheng Wang. 2021

[17]Biochemical, gas exchange, and chlorophyll fluorescence analysis of maize genotypes under drought stress reveals important insights into their interaction and homeostasis. Singh, G. M.,Goldberg, S.,Schaefer, D.,Zhang, F.,Sharma, S.,Mishra, V. K.,Xu, J.. 2022

[18]Systemic regulation of photosynthetic function in maize plants at graining stage under a vertically heterogeneous light environment. Han yu WU,Mei yu QIAO,Wang feng ZHANG,Ke ru WANG,Shao kun LI,Chuang dao JIANG. 2022

[19]Excessive nitrogen application under moderate soil water deficit decreases photosynthesis, respiration, carbon gain and water use efficiency of maize. Huanli Xing,Wenbin Zhou,Chao Wang,Li Li,Xiangnan Li,Ningbo Cui,Weiping Hao,Fulai Liu,Yaosheng Wang. 2021

[20]Exogenous spermidine enhances the photosynthetic and antioxidant capacity of citrus seedlings under high temperature. Xu Chao,Tang Yuqing,Liu Xincheng,Yang Huidong,Wang Yuting,Hu Zhongdong,Hu Xinlong,Liu Buchun,Su Jing. 2022

作者其他论文 更多>>