Modes of Uptake and Translocation of NO3- Affecting Growth of Host Plants in Arbuscular Mycorrhizal Symbiosis
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the National Natural Science Fundation of China (No. 41371291) and the Project of Zhejiang Public Welfare Technology Application Research Plan(No.LGN20D010002)

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    Abstract:

    【Objective】Effects of uptake and translocation of NO3- in arbuscular mycorrhizal symbiosis and formation of arginine(Arg) in extraradical mycelium(ERM) and mycorrhizal root when ERM was exposed to NO3-or NH4+, affecting growth of their host plants were studied. 【Method】In this study a dual split culture system was established with Ri T- DNA transformed carrot root and Glomus intraradices(Rhizophagus intraradices) and the 15N/13C isotope tracing technique was used to explore pathways of the uptake and transport of NO3-, and determine how much arginine accumulated in ERM and mycorrhizal root after NO3- or NH4+ was absorbed and translocated in the fungal compartment, and a field experiment was conducted too to address how uptake and translocatiton of NO3-or NH4+ affect growth of the host plants. 【Result】Results show that AM hypha preferred to uptake NH4+ over NO3- when they both were available in the soil. When AM extraradical hypha were exposed to NH415 NO3- for 1 week, though the free amino acids, include Arg, in the extraradical mycelium (ERM) were not labelled by15N, those in the mycorrhizal tissues were, indicating that 15 NO3- in the fungal compartment were transported directly via mycelium into mycorrhizal tissues rather than any new translocation mode; on the contrary, when extraradical hypha were cultured with 15NH4 NO3-, only Arg was 15N-labelled therein, while the form of nitrogen composed of other amino acids in the ERM was 14NO3- translocated mainly from the hypha compartment and hence not labelled. While exposed to 13C6-Glucose for 6 weeks, the ERM was found to have no13C-labelled Arg or protein, which indicates that ERM is unable to utilize glucose. When exposed to 13C1,2-acatate, the ERM was found to have Arg and protein13C labelled up to 8.5%2.3% and 7.6%0.7%, respectively; when exposed to 13C1,2-acatate plus 15NO3-, the ERM increased the concentration of free Arg with increasing N input, up to 54.2%19.3% and 13C labelled Arg and protein up to 57.4%4.8% and 50.3%2.8%, respectively, which indicates that increased C and N inputs in the hypha compartment may promote formation of Arg. In the field experiment, in the field low in P level, addition of KNO3 increased significantly weight of the AM-inoculated sweet corm plants by 12.28%, as compared to the control, but addition of NH4SO4 did not have such an effect and instead decreased biomass of the plants by 8.19%, and addition of urea did by 13.02%; however amendment of organic manure to urea application mitigated the adverse effect.【Conclusion】There are two different modes of AM fungi absorbing and transporting ammonium and nitrate. AM fungi absorb and transport ammonium nitrogen (NH4+ and urea), via GS-GOGAT in ERM, and most of the absorbed nitrogen is integrated into Arg molecules, and the synthesized arginine is intactly transported to the intraradical mycelium by ERM. Meanwhile, NO3-in the AM fungi symbiosis, as revealed by the isotope tracing technique, is adsorbed by ERM and transported via ERM to intraradical mycelium. Application of NO3 may promote growth of the AM fungi-hosted sweet corn, while application of NH4+ may affect the crop reversely.

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LI Mengyao, JIANG Xiangyan, JIN Hairu. Modes of Uptake and Translocation of NO3- Affecting Growth of Host Plants in Arbuscular Mycorrhizal Symbiosis[J]. Acta Pedologica Sinica,2020,57(6):1483-1491.

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History
  • Received:September 09,2019
  • Revised:December 10,2019
  • Adopted:February 13,2020
  • Online: August 25,2020
  • Published: November 11,2020