Boll-leaf system gas exchange and its application in the analysis of cotton photosynthetic function

被引:0
作者
Minzhi Chen
Fubin Liang
Yinhua Yan
Yuxuan Wang
Yali Zhang
Jingshan Tian
Chuangdao Jiang
Wangfeng Zhang
机构
[1] Shihezi University,Key Laboratory of Oasis Eco
[2] Chinese Academy of Sciences,Agriculture, Xinjiang Production and Construction Corps/College of Agronomy
来源
Photosynthesis Research | 2021年 / 150卷
关键词
Cotton; Boll biomass; Boll-leaf system; Photosynthesis; Source-sink relationship; Yield formation;
D O I
暂无
中图分类号
学科分类号
摘要
Estimating the boll development and boll yield from single-leaf photosynthesis is difficult as the source-sink relationship of cotton (Gossypium hirsutum L.) is complicated. As the boll-leaf system (BLS), which includes the main-stem leaf, sympodial leaf, and non-leaf organs, is the basic unit of the cotton source-sink relationship and yield formation, the concept of "BLS photosynthesis" is introduced in this study. We speculate that the characteristics of BLS gas exchange can more accurately reflect the photosynthetic function of the system, thus revealing the law of photosynthesis in the process of boll development. The results showed that the photosynthetic rate of single leaves measured by a BLS chamber was consistent with that measured by a standard single-leaf chamber. BLSs exhibited typical light response curves, and the shape of the curves was similar to those of single leaves. The light compensation point and respiration rate of BLSs were higher than those of single leaves, while the apparent quantum efficiency of BLSs was lower. Compared with single leaves, the duration of the photosynthetic function of BLSs was longer. Increasing plant density decreased the gas exchange rate per unit BLS more significantly under field conditions. There was a better linear correlation between the net CO2 assimilation rate, respiration rate of BLSs and boll biomass. Therefore, we think that the gas exchange of BLSs can better reveal the changes in photosynthetic function of BLSs and boll development. This provides a new basis for analyzing the mechanism and regulation of cotton yield formation.
引用
收藏
页码:251 / 262
页数:11
相关论文
共 50 条
  • [31] Nitrogen nutrition and water stress effects on leaf photosynthetic gas exchange and water use efficiency in winter wheat
    Shangguan, ZP
    Shao, MA
    Dyckmans, J
    ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2000, 44 (02) : 141 - 149
  • [32] Responses of leaf gas exchange attributes, photosynthetic pigments and antioxidant enzymes in NaCl-stressed cotton (Gossypium hirsutum L.) seedlings to exogenous glycine betaine and salicylic acid
    Abdoul Kader Mounkaila Hamani
    Guangshuai Wang
    Mukesh Kumar Soothar
    Xiaojun Shen
    Yang Gao
    Rangjian Qiu
    Faisal Mehmood
    BMC Plant Biology, 20
  • [33] A model 2DLEAF of leaf gas exchange: Development, validation, and ecological application
    Pachepsky, LB
    Acock, B
    ECOLOGICAL MODELLING, 1996, 93 (1-3) : 1 - 18
  • [34] Effects of Nitrogen Application on Chlorophyll Fluorescence Parameters and Leaf Gas Exchange in Naked Oat
    Lin Ye-chun
    Hu Yue-gao
    Ren Chang-zhong
    Guo Lai-chun
    Wang Chun-long
    Jiang Ying
    Wang Xue-jiao
    Hlatshwayo, Phendukani
    Zeng Zhao-hai
    JOURNAL OF INTEGRATIVE AGRICULTURE, 2013, 12 (12) : 2164 - 2171
  • [35] Response of the photosynthetic apparatus of cotton (Gossypium hirsutum) to the onset of drought stress under field conditions studied by gas-exchange analysis and chlorophyll fluorescence imaging
    Massacci, A.
    Nabiev, S. M.
    Pietrosanti, L.
    Nematov, S. K.
    Chernikova, T. N.
    Thor, K.
    Leipner, J.
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2008, 46 (02) : 189 - 195
  • [36] A meta-analysis of leaf gas exchange and water status responses to drought
    Yan, Weiming
    Zhong, Yangquanwei
    Shangguan, Zhouping
    SCIENTIFIC REPORTS, 2016, 6
  • [37] LEAF GAS EXCHANGE OF NEW COCOA CLONES UNDER AN AGROFORESTRY SYSTEM IN ANTIOQUIA, COLOMBIA
    Carolina Gonzalez-Ceballos, Diana
    Andres Mejia-Londono, Henry
    Alexis Ramirez-Jimenez, Jamer
    Augusto Monsalve-Garcia, Danilo
    David Hernandez-Arredondo, Juan
    de Jesus Cordoba-Gaona, Oscar
    REVISTA FITOTECNIA MEXICANA, 2021, 44 (04) : 635 - 642
  • [38] Leaf gas exchange, source–sink relationship, and growth response of cotton to the interactive effects of nitrogen rate and planting density
    Adnan Noor Shah
    Guozheng Yang
    Mohsin Tanveer
    Javaid Iqbal
    Acta Physiologiae Plantarum, 2017, 39
  • [39] Photosynthetic gas exchange and antioxidative system in common bean plants infected by Colletotrichum lindemuthianum and supplied with silicon
    Polanco, Leonora R.
    Rodrigues, Fabricio A.
    Nascimento, Kelly J. T.
    Cruz, Maria F. A.
    Curvelo, Carmen R. S.
    DaMatta, Fabio M.
    Vale, Francisco X. R.
    TROPICAL PLANT PATHOLOGY, 2014, 39 (01): : 35 - 42
  • [40] QTL Analysis for Leaf Gas Exchange in an Apple Progeny Grown under Atmospheric Constraints
    Regnard, J. L.
    Segura, V.
    Merveille, N.
    Durel, C. E.
    Costes, E.
    XII EUCARPIA SYMPOSIUM ON FRUIT BREEDING AND GENETICS, 2009, 814 : 369 - 374