L-theanine exuded from Camellia sinensis roots regulates element cycling in soil by shaping the rhizosphere microbiome assembly

Root exudate metabolites are a key medium for the interaction between plants and soil microbiota. L-theanine is a unique non-protein amino acid critical for the flavor and potential health benefits of tea products; however, its biological function in tea plants is not well understood. As L-theanine...

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Veröffentlicht in:The Science of the total environment 2022-09, Vol.837, p.155801-155801, Article 155801
Hauptverfasser: Xie, Hengtong, Chen, Zimeng, Feng, Xiaoxiao, Wang, Mengcen, Luo, Yu, Wang, Yuefei, Xu, Ping
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Sprache:eng
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Zusammenfassung:Root exudate metabolites are a key medium for the interaction between plants and soil microbiota. L-theanine is a unique non-protein amino acid critical for the flavor and potential health benefits of tea products; however, its biological function in tea plants is not well understood. As L-theanine is mainly synthesized in the roots of tea plants, we hypothesized that L-theanine could affect the function of the rhizosphere microbiota by modulating microbial assembly. In the present study, L-theanine was detected in the exudates of tea plant roots using liquid chromatography-mass spectrometry. Additionally, 16S rRNA gene sequencing revealed that L-theanine significantly altered the structure of the rhizosphere microbiota and selectively shaped rhizosphere microbial assembly. Moreover, metagenomic data showed that L-theanine affected the abundance of genes encoding element cycling in soil. Interestingly, the denitrification and complete nitrification pathways were significantly inhibited by L-theanine by decreasing the narH, napA, and napB genes abundance. These findings provide new insights into the biological function of L-theanine, as well as the implications of interactions between tea plant root exudates and the rhizosphere microbiome. [Display omitted] •Tea plant roots can exude L-theanine into rhizosphere soil.•The content of L-theanine in tea plant root exudates increased under low temperature.•Tea plants selectively shape rhizosphere microbiome assembly by exuding L-theanine.•L-theanine reduces the gene abundance targeting denitrification and complete nitrification.
ISSN:0048-9697
1879-1026
DOI:10.1016/j.scitotenv.2022.155801