Monitoring CO2 emissions to gain a dynamic view of carbon allocation to arbuscular mycorrhizal fungi

被引:0
|
作者
Renata Slavíková
David Püschel
Martina Janoušková
Martina Hujslová
Tereza Konvalinková
Hana Gryndlerová
Milan Gryndler
Martin Weiser
Jan Jansa
机构
[1] Academy of Sciences of the Czech Republic,Laboratory of Fungal Biology, Institute of Microbiology
[2] Academy of Sciences of the Czech Republic,Institute of Botany
[3] Charles University in Prague,Faculty of Science, Department of Botany
来源
Mycorrhiza | 2017年 / 27卷
关键词
Belowground carbon (C) allocation; C isotope labelling; Glomeromycota; Shade;
D O I
暂无
中图分类号
学科分类号
摘要
Quantification of carbon (C) fluxes in mycorrhizal plants is one of the important yet little explored tasks of mycorrhizal physiology and ecology. 13CO2 pulse-chase labelling experiments are increasingly being used to track the fate of C in these plant–microbial symbioses. Nevertheless, continuous monitoring of both the below- and aboveground CO2 emissions remains a challenge, although it is necessary to establish the full C budget of mycorrhizal plants. Here, a novel CO2 collection system is presented which allows assessment of gaseous CO2 emissions (including isotopic composition of their C) from both belowground and shoot compartments. This system then is used to quantify the allocation of recently fixed C in mycorrhizal versus nonmycorrhizal Medicago truncatula plants with comparable biomass and mineral nutrition. Using this system, we confirmed substantially greater belowground C drain in mycorrhizal versus nonmycorrhizal plants, with the belowground CO2 emissions showing large variation because of fluctuating environmental conditions in the glasshouse. Based on the assembled 13C budget, the C allocation to the mycorrhizal fungus was between 2.3% (increased 13C allocation to mycorrhizal substrate) and 2.9% (reduction of 13C allocation to mycorrhizal shoots) of the plant gross photosynthetic production. Although the C allocation to shoot respiration (measured during one night only) did not differ between the mycorrhizal and nonmycorrhizal plants under our experimental conditions, it presented a substantial part (∼10%) of the plant C budget, comparable to the amount of CO2 released belowground. These results advocate quantification of both above- and belowground CO2 emissions in future studies.
引用
收藏
页码:35 / 51
页数:16
相关论文
共 50 条
  • [31] Physiological Alteration in Sunflower Plants (Helianthus annuus L.) Exposed to High CO2 and Arbuscular Mycorrhizal Fungi
    Bellido, Enrique
    de la Haba, Purificacion
    Aguera, Eloisa
    PLANTS-BASEL, 2021, 10 (05):
  • [32] Increased photosynthetic acclimation in alfalfa associated with arbuscular mycorrhizal fungi (AMF) and cultivated in greenhouse under elevated CO2
    Goicoechea, Nieves
    Baslam, Marouane
    Erice, Gorka
    Jose Irigoyen, Juan
    JOURNAL OF PLANT PHYSIOLOGY, 2014, 171 (18) : 1774 - 1781
  • [33] Impact of arbuscular mycorrhizal fungi (AMF) and atmospheric CO2 concentration on the biomass production and partitioning in the forage legume alfalfa
    Baslam, Marouane
    Erice, Gorka
    Goicoechea, Nieves
    SYMBIOSIS, 2012, 58 (1-3) : 171 - 181
  • [34] Impact of arbuscular mycorrhizal fungi (AMF) and atmospheric CO2 concentration on the biomass production and partitioning in the forage legume alfalfa
    Marouane Baslam
    Gorka Erice
    Nieves Goicoechea
    Symbiosis, 2012, 58 : 171 - 181
  • [35] Arbuscular mycorrhizal fungi reduce N2O emissions from degraded residue patches
    Li, Xia
    He, Guang
    Li, Dandan
    Bei, Shuikuan
    Luan, Dongdong
    Sun, Xinzhan
    Yang, Gaiqiang
    Huo, Lijuan
    Zhen, Lina
    Zhao, Ruotong
    FRONTIERS IN ECOLOGY AND EVOLUTION, 2023, 11
  • [36] Arbuscular mycorrhizal fungi reduce nitrous oxide emissions from N2O hotspots
    Storer, Kate
    Coggan, Aisha
    Ineson, Phil
    Hodge, Angela
    NEW PHYTOLOGIST, 2018, 220 (04) : 1285 - 1295
  • [37] Seasonal carbon allocation to arbuscular mycorrhizal fungi assessed by microscopic examination, stable isotope probing and fatty acid analysis
    Lekberg, Ylva
    Rosendahl, Soren
    Michelsen, Anders
    Olsson, Pal Axel
    PLANT AND SOIL, 2013, 368 (1-2) : 547 - 555
  • [38] Increasing atmospheric CO2 differentially supports arsenite stress mitigating impact of arbuscular mycorrhizal fungi in wheat and soybean plants
    AbdElgawad, Hamada
    El-Sawah, Ahmed M.
    Mohammed, Afrah E.
    Alotaibi, Modhi O.
    Yehia, Ramy S.
    Selim, Samy
    Saleh, Ahmed M.
    Beemster, Gerrit T. S.
    Sheteiwy, Mohamed S.
    CHEMOSPHERE, 2022, 296
  • [39] Phosphorus availability and arbuscular mycorrhizal fungi limit soil C cycling and influence plant responses to elevated CO2 conditions
    L. Castañeda-Gómez
    J. R. Powell
    E. Pendall
    Y. Carrillo
    Biogeochemistry, 2022, 160 : 69 - 87
  • [40] EFFECTS OF ARBUSCULAR MYCORRHIZAL FUNGI AND RHIZOBIUM ON PHOTOSYNTHETIC ACTIVITY AND GROWTH RESPONSE IN ACACIA AURICULIFORMIS SEEDLINGS UNDER ELEVATED CO2
    Karthikeyan, A.
    JOURNAL OF TROPICAL FOREST SCIENCE, 2019, 31 (04) : 398 - 403