Potential relevance between soybean nitrogen uptake and rhizosphere prokaryotic communities under waterlogging stress

Author:

Lian Tengxiang123ORCID,Cheng Lang12,Liu Qi12,Yu Taobing12,Cai Zhandong12,Nian Hai12ORCID,Hartmann Martin3ORCID

Affiliation:

1. The State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, South China Agricultural University , Guangzhou, Guangdong, China

2. The Key Laboratory of Plant Molecular Breeding of Guangdong Province, College of Agriculture, South China Agricultural University , Guangzhou, Guangdong, China

3. Institute of Agricultural Sciences, ETH Zurich , Zurich, Switzerland

Abstract

Abstract Waterlogging in soil can limit the availability of nitrogen to plants by promoting denitrification and reducing nitrogen fixation and nitrification. The root-associated microorganisms that determine nitrogen availability at the root-soil interface can be influenced by plant genotype and soil type, which potentially alters the nitrogen uptake capacity of plants in waterlogged soils. In a greenhouse experiment, two soybean genotypes with contrasting capacities to resist waterlogging stress were grown in Udic Argosol and Haplic Alisol soils with and without waterlogging, respectively. Using isotope labeling, high-throughput amplicon sequencing and qPCR, we show that waterlogging negatively affects soybean yield and nitrogen absorption from fertilizer, atmosphere, and soil. These effects were soil-dependent and more pronounced in the waterlogging-sensitive than tolerant genotype. The tolerant genotype harbored more ammonia oxidizers and less nitrous oxide reducers. Anaerobic, nitrogen-fixing, denitrifying and iron-reducing bacteria such as Geobacter/Geomonas, Sphingomonas, Candidatus Koribacter, and Desulfosporosinus were proportionally enriched in association with the tolerant genotype under waterlogging. These changes in the rhizosphere microbiome might ultimately help the plant to improve nitrogen uptake under waterlogged, anoxic conditions. This research contributes to a better understanding of the adaptability of soybean genotypes under waterlogging stress and might help to formulate fertilization strategies that improve nitrogen use efficiency of soybean.

Funder

China Scholarship Council

Publisher

Oxford University Press (OUP)

Subject

General Medicine

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