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Design and Construction of an Experimental Setup to Enhance Mineral Weathering through the Activity of Soil Organisms
Published on: November 10, 2023
Carbohydrate-active enzymes of soil prophages enhance global carbon cycling potential
Hanpeng Liao1, Chaofan Ai1, Chen Liu1
1Fujian Provincial Key Laboratory of Soil Environmental Health and Regulation, College of Resources and Environment, Fujian Agriculture and Forestry University, Fuzhou, China.
Abstract:
Recent work suggests that soil-borne viruses play an important role in controlling carbon (C) cycling and stocks. However, the contribution of individual prophage (i.e., temperate phages residing within bacterial hosts during lysogenic cycle) to C degradation remains largely undocumented at global scale. Here, we generated a global gene catalog of prophage-encoded carbohydrate-active enzyme (pCAZymes), including 20,131 soil bacterial genomes, 3548 metagenomes, and 951 metatranscriptomes derived from pre-existing databases. The catalog includes 4708 pCAZymes associated with the degradation of lignocellulose, lignin, and pectin, with 21 lytic polysaccharide monooxygenase genes newly identified in phages. Our findings reveal that prophages have potential to accelerate labile soil C degradation by encoding pCAZymes that cooperate with their bacterial hosts. Using machine learning models, we predict a 13 ± 0.7% increase in the C metabolic potential driven by soil prophages by 2100 under a high-emission scenario (SSP585). In vitro experiments demonstrated that the transcriptional activity of pCAZyme genes is regulated by environmental temperature. Soil microcosm experiments further confirmed that pCAZymes can enhance host-mediated organic C mineralization by increasing degradative enzyme activity. This study reveals previously overlooked ecological functions of prophages in global soil C transformation, with important implications for the global climate and C cycling.
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