Photosynthetic refixing of CO2 is responsible for the apparent disparity between mitochondrial respiration in the light and in the dark

被引:0
|
作者
Huajing Kang
Hong Li
Yueliang Tao
Zhu Ouyang
机构
[1] Key Laboratory of Ecosystem Network Observation and Modeling,College of Life and Environmental Science
[2] Institute of Geographic Sciences and Natural Resources Research,undefined
[3] Chinese Academy of Sciences,undefined
[4] Yucheng Comprehensive Experiment Station China Academy of Science,undefined
[5] Graduates University of Chinese Academy of Sciences,undefined
[6] Wenzhou Vocational and Technical College,undefined
[7] Wenzhou University,undefined
来源
关键词
CO; refixed; Light inhibition; Mitochondrial respiration in the dark; Mitochondrial respiration in the light;
D O I
暂无
中图分类号
学科分类号
摘要
The net photosynthetic rate (PN), the sample room CO2 concentration (CO2S) and the intercellular CO2 concentration (Ci) in response to PAR, of C3 (wheat and bean) and C4 (maize and three-colored amaranth) plants were measured. Results showed that photorespiration (Rp) of wheat and bean could not occur at 2 % O2. At 2 % O2 and 0 μmol mol−1 CO2, PN can be used to estimate the rate of mitochondrial respiration in the light (Rd). The Rd decreased with increasing PAR, and ranged between 3.20 and 2.09 μmol CO2 m−2 s−1 in wheat. The trend was similar for bean (between 2.95 and 1.70 μmol CO2 m−2 s−1), maize (between 2.27 and 0.62 μmol CO2 m−2 s−1) and three-colored amaranth (between 1.37 and 0.49 μmol CO2 m−2 s−1). The widely observed phenomenon of Rd being lower than Rn can be attributed to refixation, rather than light inhibition. For all plants tested, CO2 recovery rates increased with increasing light intensity from 32 to 55 % (wheat), 29 to 59 % (bean), 54 to 87 % (maize) and 72 to 90 % (three-colored amaranth) at 50 and 2,000 μmol m−2 s−1, respectively.
引用
收藏
页码:3157 / 3162
页数:5
相关论文
共 50 条
  • [41] Does elevated atmospheric CO2 concentration inhibit mitochondrial respiration in green plants?
    Drake, BG
    Azcon-Bieto, J
    Berry, J
    Bunce, J
    Dijkstra, P
    Farrar, J
    Gifford, RM
    Gonzalez-Meler, MA
    Koch, G
    Lambers, H
    Siedow, J
    Wullschleger, S
    PLANT CELL AND ENVIRONMENT, 1999, 22 (06): : 649 - 657
  • [42] EFFECTS OF LIGHT AND CO2 ON NET PHOTOSYNTHETIC RATES OF STANDS OF AUBERGINE AND AMARANTHUS
    HAND, DW
    WILSON, JW
    ACOCK, B
    ANNALS OF BOTANY, 1993, 71 (03) : 209 - 216
  • [43] Effects of Light Quality and CO2 Concentration on Diurnal Photosynthetic Characteristics of Strawberry
    Wu, C. C.
    Yen, Y. H.
    Chang, M. Y.
    Fang, W.
    VII INTERNATIONAL SYMPOSIUM ON LIGHT IN HORTICULTURAL SYSTEMS, 2012, 956 : 247 - 253
  • [44] Photosynthetic Fixation of CO2 in Alkenes by Heterogeneous Photoredox Catalysis with Visible Light
    Yuan, Tao
    Wu, Ziwei
    Zhai, Senmao
    Wang, Rong
    Wu, Shiwen
    Cheng, Jiajia
    Zheng, Meifang
    Wang, Xinchen
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2023, 62 (27)
  • [45] Overexpression of phosphoenolpyruvate carboxylase from Corynebacterium glutamicum lowers the CO2 compensation point (Γ*) and enhances dark and light respiration in transgenic potato
    Häusler, RE
    Kleines, M
    Uhrig, H
    Hirsch, HJ
    Smets, H
    JOURNAL OF EXPERIMENTAL BOTANY, 1999, 50 (336) : 1231 - 1242
  • [46] Overexpression of phosphoenolpyruvate carboxylase from Corynebacterium glutamicum lowers the CO2 compensation point (Γ*) and enhances dark and light respiration in transgenic potato
    Haeusler, Rainer E.
    Kleines, Michael
    Uhrig, Helmut
    Hirsch, Heinz-Josef
    Smets, Helga
    Journal of Experimental Botany, 50 (336): : 1231 - 1242
  • [47] Direct inhibition of leaf dark respiration by elevated CO2 is minor in 12 grassland species
    Tjoelker, MG
    Oleksyn, J
    Lee, TD
    Reich, PB
    NEW PHYTOLOGIST, 2001, 150 (02) : 419 - 424
  • [48] LIGHT AND DARK CO2 FIXATION IN CLUSIA-UVITANA AND THE EFFECTS OF PLANT WATER STATUS AND CO2 AVAILABILITY
    WINTER, K
    ZOTZ, G
    BAUR, B
    DIETZ, KJ
    OECOLOGIA, 1992, 91 (01) : 47 - 51
  • [49] Developmental stage specificity of transcriptional, biochemical and CO2 efflux responses of leaf dark respiration to growth of Arabidopsis thaliana at elevated [CO2]
    Markelz, R. J. Cody
    Vosseller, Lauren N.
    Leakey, Andrew D. B.
    PLANT CELL AND ENVIRONMENT, 2014, 37 (11): : 2542 - 2552
  • [50] Apparent electron transport rate – a non-invasive proxy of photosynthetic CO2 uptake in lichens
    Knut Asbjørn Solhaug
    Johan Asplund
    Yngvar Gauslaa
    Planta, 2021, 253