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Structural and functional variability in root-associated bacterial microbiomes of Cd/Zn hyperaccumulator Sedum alfredii.
- Source :
-
Applied microbiology and biotechnology [Appl Microbiol Biotechnol] 2017 Nov; Vol. 101 (21), pp. 7961-7976. Date of Electronic Publication: 2017 Sep 11. - Publication Year :
- 2017
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Abstract
- Interactions between roots and microbes affect plant's resistance to abiotic stress. However, the structural and functional variation of root-associated microbiomes and their effects on metal accumulation in hyperaccumulators remain poorly understood. Here, we characterize the root-associated microbiota of a hyperaccumulating (HP) and a non-hyperaccumulating (NHP) genotype of Sedum alfredii by 16S ribosomal RNA gene profiling. We show that distinct microbiomes are observed in four spatially separable compartments: the bulk soil, rhizosphere, rhizoplane, and endosphere. Both the rhizosphere and rhizoplane were preferentially colonized by Proteobacteria, and the endosphere by Actinobacteria. The rhizosphere and endophytic microbiomes were dominated by the family of Sphingomonadaceae and Streptomycetaceae, respectively, which benefited for their survival and adaptation. The bacterial α-diversity decreases along the spatial gradient from the rhizosphere to the endosphere. Soil type and compartment were strongest determinants of root-associated community variation, and host genotype explained a small, but significant amount of variation. The enrichment of Bacteroidetes and depletion of Firmicutes and Planctomycetes in the HP endosphere compared with that of the NHP genotype may affect metal hyperaccumulation. Program PICRUSt predicted moderate functional differences in bacterial consortia across rhizocompartments and soil types. The functional categories involved in membrane transporters (specifically ATP-binding cassette transporters) and energy metabolism were overrepresented in endosphere of HP in comparison with NHP genotypes. Taken together, our study reveals substantial variation in structure and function of microbiomes colonizing different compartments, with the endophytic microbiota potentially playing an important role in heavy metal hyperaccumulation.
- Subjects :
- Calcium metabolism
Cluster Analysis
DNA, Bacterial chemistry
DNA, Bacterial genetics
DNA, Ribosomal chemistry
DNA, Ribosomal genetics
Phylogeny
Plant Roots metabolism
RNA, Ribosomal, 16S genetics
Sedum metabolism
Sequence Analysis, DNA
Soil Microbiology
Spatial Analysis
Zinc metabolism
Microbiota
Plant Roots microbiology
Sedum microbiology
Subjects
Details
- Language :
- English
- ISSN :
- 1432-0614
- Volume :
- 101
- Issue :
- 21
- Database :
- MEDLINE
- Journal :
- Applied microbiology and biotechnology
- Publication Type :
- Academic Journal
- Accession number :
- 28894921
- Full Text :
- https://doi.org/10.1007/s00253-017-8469-0