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Updated: Jun 7, 2026

Extraction and Analysis of Microbial Phospholipid Fatty Acids in Soils
Published on: August 26, 2016
The precisely regulated keystone taxa facilitate microbial mineralization of soil organic phosphorus via niche
Wenhui Yan1, Chengdong Huang1, Dandan Li1
1State Key Laboratory of Nutrient Use and Management, College of Resources and Environmental Sciences, Key Laboratory of Plant-Soil Interactions, Ministry of Education, China Agricultural University, Beijing, China.
Abstract:
Rhizosphere keystone taxa critically drive microbial community stability and soil biogeochemical cycles. However, the manipulation of such taxa remains a challenge. This study simulated plant-mediated modulation of keystone taxa via simplified synthetic root exudates to track their compositional shifts. The combination of luteolin, myristic acid, and glucose enhanced rhizosphere phosphatase activity, significantly enriched Domibacillus indicus D99, and converted it into a keystone taxon. This precise regulation was driven by transcriptional upregulation of C metabolism and an unusual fatty acid assimilation pathway. Additionally, metabolites produced by D. indicus D99 (such as bergapten and lactate) were preferentially utilized by phosphate-mineralizing bacteria, Bacillus sp. C67 and Domibacillus sp. C94. These partner bacteria exhibited less substrate overlap and pronounced resource partitioning, forming an efficient synergistic relationship with D. indicus D99 that amplified rhizosphere phosphatase activity and plant growth. This study highlights opportunities to utilize the ecological roles of keystone taxa in manipulating the microbiome.
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