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Evolutionarily conserved core microbiota as an extended trait in nitrogen acquisition strategy of herbaceous species.
Cheng, Saisai; Gong, Xin; Xue, Wenfeng; Kardol, Paul; Delgado-Baquerizo, Manuel; Ling, Ning; Chen, Xiaoyun; Liu, Manqiang.
Affiliation
  • Cheng S; Soil Ecology Lab, College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, 210095, China.
  • Gong X; Soil Ecology Lab, College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, 210095, China.
  • Xue W; Soil Ecology Lab, College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, 210095, China.
  • Kardol P; Department of Forest Mycology and Plant Pathology, Swedish University of Agricultural Science, 75651, Uppsala, Sweden.
  • Delgado-Baquerizo M; Department of Forest Ecology and Management, Swedish University of Agricultural Sciences, 90751, Umeå, Sweden.
  • Ling N; Laboratorio de Biodiversidad y Funcionamiento Ecosistémico, Instituto de Recursos Naturales y Agrobiología de Sevilla (IRNAS), CSIC, 41012, Sevilla, Spain.
  • Chen X; Unidad Asociada CSIC-UPO (BioFun), Universidad Pablo de Olavide, 41013, Sevilla, Spain.
  • Liu M; Centre for Grassland Microbiome, State Key Laboratory of Grassland Agro-Ecosystems, College of Pastoral Agriculture Science and Technology, Lanzhou University, Lanzhou, 730020, China.
New Phytol ; 244(4): 1570-1584, 2024 Nov.
Article in En | MEDLINE | ID: mdl-39253787
ABSTRACT
Microbiota have co-evolved with plants over millions of years and are intimately linked to plants, ranging from symbiosis to pathogenesis. However, our understanding of the existence of a shared core microbiota across phylogenetically diverse plants remains limited. A common garden field experiment was conducted to investigate the rhizosphere microbial communities of phylogenetically contrasting herbaceous families. Through a combination of metagenomic sequencing, analysis of plant economic traits, and soil biochemical properties, we aimed to elucidate the eco-evolutionary role of the core rhizosphere microbiota in light of plant economic strategies. We identified a conserved core microbiota consisting of 278 taxa that was closely associated with the phylogeny of the plants studied. This core microbiota actively participated in multiple nitrogen metabolic processes and showed a strong correlation with the functional potential of rhizosphere nitrogen cycling, thereby serving as an extended trait in the plant nitrogen acquisition. Furthermore, our examination of simulated species loss revealed the crucial role of the core microbiota in maintaining the rhizosphere community's network stability. Our study highlighted that the core microbiota, which exhibited a phylogenetically conserved association with plants, potentially represented an extension of the plant phenotype and played an important role in nitrogen acquisition. These findings held implications for the utilization of microbiota-mediated plant functions.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Phylogeny / Rhizosphere / Microbiota / Nitrogen Language: En Journal: New Phytol Journal subject: BOTANICA Year: 2024 Document type: Article Affiliation country: China Country of publication: Reino Unido

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Phylogeny / Rhizosphere / Microbiota / Nitrogen Language: En Journal: New Phytol Journal subject: BOTANICA Year: 2024 Document type: Article Affiliation country: China Country of publication: Reino Unido