Maize functional requirements drive the selection of rhizobacteria under long‐term fertilization practices

Author:

Zhang Liyu12ORCID,Yuan Liang12,Wen Yanchen12,Zhang Meiling12ORCID,Huang Shuyu12,Wang Shiyu12,Zhao Yuanzheng12,Hao Xiangxiang3,Li Lujun3,Gao Qiang4,Wang Yin4,Zhang Shuiqing5,Huang Shaomin5,Liu Kailou6,Yu Xichu6,Li Dongchu1,Xu Jiukai12,Zhao Bingqiang12,Zhang Lu1,Zhang Huimin1,Zhou Wei12,Ai Chao12ORCID

Affiliation:

1. State Key Laboratory of Efficient Utilization of Arid and Semi‐arid Arable Land in Northern China, The Institute of Agricultural Resources and Regional Planning Chinese Academy of Agricultural Sciences Beijing 100081 China

2. Key Laboratory of Plant Nutrition and Fertilizer Ministry of Agriculture and Rural Affairs Beijing 100081 China

3. Hailun National Observation and Research Station of Agroecosystems, Key Laboratory of Mollisols Agroecology, Northeast Institute of Geography and Agroecology Chinese Academy of Sciences Harbin 150081 China

4. Jilin Agricultural University Changchun 130118 China

5. Institute of Plant Nutrition, Resource and Environment Henan Academy of Agricultural Sciences 116 Garden Road Zhengzhou 450002 China

6. Jiangxi Institute of Red Soil National Engineering and Technology Research Center for Red Soil Improvement Nanchang 330046 China

Abstract

Summary Rhizosphere microbiomes are pivotal for crop fitness, but the principles underlying microbial assembly during root–soil interactions across soils with different nutrient statuses remain elusive. We examined the microbiomes in the rhizosphere and bulk soils of maize plants grown under six long‐term (≥ 29 yr) fertilization experiments in three soil types across middle temperate to subtropical zones. The assembly of rhizosphere microbial communities was primarily driven by deterministic processes. Plant selection interacted with soil types and fertilization regimes to shape the structure and function of rhizosphere microbiomes. Predictive functional profiling showed that, to adapt to nutrient‐deficient conditions, maize recruited more rhizobacteria involved in nutrient availability from bulk soil, although these functions were performed by different species. Metagenomic analyses confirmed that the number of significantly enriched Kyoto Encyclopedia of Genes and Genomes Orthology functional categories in the rhizosphere microbial community was significantly higher without fertilization than with fertilization. Notably, some key genes involved in carbon, nitrogen, and phosphorus cycling and purine metabolism were dominantly enriched in the rhizosphere soil without fertilizer input. In conclusion, our results show that maize selects microbes at the root–soil interface based on microbial functional traits beneficial to its own performance, rather than selecting particular species.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

National Postdoctoral Program for Innovative Talents

Agricultural Science and Technology Innovation Program

Publisher

Wiley

Reference70 articles.

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