Seagrass rhizosphere microenvironment alters plant-associated microbial community composition

被引:66
作者
Brodersen, Kasper Elgetti [1 ,2 ]
Siboni, Nachshon [1 ]
Nielsen, Daniel A. [1 ]
Pernice, Mathieu [1 ]
Ralph, Peter J. [1 ]
Seymour, Justin [1 ]
Kuhl, Michael [1 ,2 ]
机构
[1] UTS, Fac Sci, Climate Change Cluster, Sydney, NSW, Australia
[2] Univ Copenhagen, Dept Biol, Marine Biol Sect, Helsingor, Denmark
基金
澳大利亚研究理事会;
关键词
EELGRASS ZOSTERA-MARINA; RADIAL OXYGEN LOSS; SULFATE REDUCTION; TROPICAL SEAGRASS; SULFIDE INTRUSION; NITROGEN-FIXATION; ORGANIC-CARBON; O-2; DYNAMICS; SEDIMENT; ROOTS;
D O I
10.1111/1462-2920.14245
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The seagrass rhizosphere harbors dynamic microenvironments, where plant-driven gradients of O-2 and dissolved organic carbon form microhabitats that select for distinct microbial communities. To examine how seagrass-mediated alterations of rhizosphere geochemistry affect microbial communities at the microscale level, we applied 16S rRNA amplicon sequencing of artificial sediments surrounding the meristematic tissues of the seagrass Zostera muelleri together with microsensor measurements of the chemical conditions at the basal leaf meristem (BLM).Radial O-2 loss (ROL) from the BLM led to approximate to 300 mu m thick oxic microzones, wherein pronounced decreases in H2S and pH occurred. Significantly higher relative abundances of sulphate-reducing bacteria were observed around the meristematic tissues compared to the bulk sediment, especially around the root apical meristems (RAM; approximate to 57% of sequences). Within oxic microniches, elevated abundances of sulphide-oxidizing bacteria were observed compared to the bulk sediment and around the RAM. However, sulphide oxidisers within the oxic microzone did not enhance sediment detoxification, as rates of H2S re-oxidation here were similar to those observed in a pre-sterilized root/rhizome environment. Our results provide novel insights into how chemical and microbiological processes in the seagrass rhizosphere modulate plant-microbe interactions potentially affecting seagrass health.
引用
收藏
页码:2854 / 2864
页数:11
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