Seasonal switchgrass ecotype contributions to soil organic carbon, deep soil microbial community composition and rhizodeposit uptake during an extreme drought

被引:31
作者
Stewart, Catherine E. [1 ,2 ]
Roosendaal, Damaris [1 ]
Denef, Karolien [3 ]
Pruessner, Elizabeth [1 ]
Comas, Louise H. [4 ]
Sarath, Gautam [5 ]
Jin, Virginia L. [6 ]
Schmer, Marty R. [6 ]
Soundararajan, Madhavan [7 ]
机构
[1] USDA ARS, Soil Management & Sugar Beet Res Unit, Suite 100,2150 Ctr Ave,Bldg D, Ft Collins, CO 80526 USA
[2] Colorado State Univ, Nat Resource Ecol Lab, Ft Collins, CO 80523 USA
[3] Colorado State Univ, Dept Chem, CIF, Ft Collins, CO 80523 USA
[4] USDA ARS, Water Management & Syst Res Unit, Suite 320,2150 Ctr Ave,Bldg D, Ft Collins, CO 80526 USA
[5] Univ Nebraska, Wheat Sorghum & Forage Res Unit, USDA ARS, 251 Filley Hall, Lincoln, NE 68683 USA
[6] Univ Nebraska, Agroecosyst Management Res Unit, USDA ARS, 251 Filley Hall, Lincoln, NE 68583 USA
[7] Univ Nebraska, Dept Biochem, Lincoln, NE 68588 USA
关键词
Switchgrass; Soil microbial biomass; PLFA; Soil C sequestration; C-13 stable isotope probing; DECOMPOSITION; MATTER; PLANT; DYNAMICS; SEQUESTRATION; CULTIVARS; PROFILES; TURNOVER; PATTERNS; TRAITS;
D O I
10.1016/j.soilbio.2017.04.021
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
The importance of rhizodeposit C and associated microbial communities in deep soil C stabilization is relatively unknown. Phenotypic variability in plant root biomass could impact C cycling through belowground plant allocation, rooting architecture, and microbial community abundance and composition. We used a pulse-chase C-13 labeling experiment with compound-specific stable-isotope probing to investigate the importance of rhizodeposit C to deep soil microbial biomass under two switchgrass ecotypes (Panicum virgatum L, Kanlow and Summer) with contrasting root morphology. We quantified root phenology, soil microbial biomass (phospholipid fatty acids, PLFA), and microbial rhizodeposit uptake (C-13-PLFAs) to 150 cm over one year during a severe drought. The lowland ecotype, Kanlow, had two times more root biomass with a coarser root system compared to the upland ecotype, Summer. Over the drought, Kanlow lost 78% of its root biomass, while Summer lost only 60%. Rhizosphere microbial communities associated with both ecotypes were similar. However, rhizodeposit uptake under Kanlow had a higher relative abundance of gram-negative bacteria (44.1%), and Summer rhizodeposit uptake was primarily in saprotrophic fungi (48.5%). Both microbial community composition and rhizodeposit uptake shifted over the drought into gram-positive communities. Rhizosphere soil C was greater one year later under Kanlow due to turnover of unlabeled structural root C. Despite a much greater root biomass under Kanlow, rhizosphere delta C-13 was not significantly different between the two ecotypes, suggesting greater microbial C input under the finer rooted species, Summer, whose microbial associations were predominately saprotrophic fungi. Ecotype specific microbial communities can direct rhizodeposit C flow and C accrual deep in the soil profile and illustrate the importance of the microbial community in plant strategies to survive environmental stress such as drought. Published by Elsevier Ltd.
引用
收藏
页码:191 / 203
页数:13
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