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The structure and function of the global citrus rhizosphere microbiome

  • Jin Xu
  • , Yunzeng Zhang
  • , Pengfan Zhang
  • , Pankaj Trivedi
  • , Nadia Riera
  • , Yayu Wang
  • , Xin Liu
  • , Guangyi Fan
  • , Jiliang Tang
  • , Helvécio D. Coletta-Filho
  • , Jaime Cubero
  • , Xiaoling Deng
  • , Veronica Ancona
  • , Zhanjun Lu
  • , Balian Zhong
  • , M. Caroline Roper
  • , Nieves Capote
  • , Vittoria Catara
  • , Gerhard Pietersen
  • , Christian Vernière
  • Abdullah M. Al-Sadi, Lei Li, Fan Yang, Xun Xu, Jian Wang, Huanming Yang, Tao Jin, Nian Wang
  • University of Florida
  • Yangzhou University
  • BGI-Shenzhen
  • University of Chinese Academy of Sciences
  • Colorado State University
  • Guangxi University
  • Instituto Agronômico de Campinas
  • National Institute for Agricultural and Food Research and Technology (INIA-CSIC)
  • South China Agricultural University
  • Texas A&M University-Kingsville
  • Gannan Normal University
  • University of California at Riverside
  • Instituto de Investigacion y Formacion Agraria y Pesquera
  • University of Catania
  • Stellenbosch University
  • UMR BGPI
  • UMR PVBMT
  • Sultan Qaboos University

Research output: Contribution to journalArticlepeer-review

450 Scopus citations

Abstract

Citrus is a globally important, perennial fruit crop whose rhizosphere microbiome is thought to play an important role in promoting citrus growth and health. Here, we report a comprehensive analysis of the structural and functional composition of the citrus rhizosphere microbiome. We use both amplicon and deep shotgun metagenomic sequencing of bulk soil and rhizosphere samples collected across distinct biogeographical regions from six continents. Predominant taxa include Proteobacteria, Actinobacteria, Acidobacteria and Bacteroidetes. The core citrus rhizosphere microbiome comprises Pseudomonas, Agrobacterium, Cupriavidus, Bradyrhizobium, Rhizobium, Mesorhizobium, Burkholderia, Cellvibrio, Sphingomonas, Variovorax and Paraburkholderia, some of which are potential plant beneficial microbes. We also identify over-represented microbial functional traits mediating plant-microbe and microbe-microbe interactions, nutrition acquisition and plant growth promotion in citrus rhizosphere. The results provide valuable information to guide microbial isolation and culturing and, potentially, to harness the power of the microbiome to improve plant production and health.

Original languageEnglish
Article number4894
JournalNature Communications
Volume9
Issue number1
DOIs
StatePublished - 1 Dec 2018
Externally publishedYes

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