The microbiome structure of decomposing plant leaves in soil depends on plant species, soil pore sizes, and soil moisture content

Author:

Benucci Gian Maria Niccolò,Toosi Ehsan R.,Yang Fan,Marsh Terence L.,Bonito Gregory M.,Kravchenko Alexandra

Abstract

Microbial communities are known as the primary decomposers of all the carbon accumulated in the soil. However, how important soil structure and its conventional or organic management, moisture content, and how different plant species impact this process are less understood. To answer these questions, we generated a soil microcosm with decomposing corn and soy leaves, as well as soil adjacent to the leaves, and compared it to control samples. We then used high-throughput amplicon sequencing of the ITS and 16S rDNA regions to characterize these microbiomes. Leaf microbiomes were the least diverse and the most even in terms of OTU richness and abundance compared to near soil and far soil, especially in their bacterial component. Microbial composition was significantly and primarily affected by niche (leaves vs. soil) but also by soil management type and plant species in the fungal microbiome, while moisture content and pore sizes were more important drivers for the bacterial communities. The pore size effect was significantly dependent on moisture content, but only in the organic management type. Overall, our results refine our understanding of the decomposition of carbon residues in the soil and the factors that influence it, which are key for environmental sustainability and for evaluating changes in ecosystem functions.

Funder

National Science Foundation

U.S. Department of Energy

Publisher

Frontiers Media SA

Subject

Microbiology (medical),Microbiology

Reference63 articles.

1. A new method for non-parametric multivariate analysis of variance;Anderson;Aust. Ecol.,2001

2. Multivariate dispersion as a measure of beta diversity;Anderson;Ecol. Lett.,2006

3. AndrewsS. FastQC: A Quality Control Tool for High Throughput Sequence Data2010

4. Soil microbial community responses to climate extremes: resistance, resilience and transitions to alternative states;Bardgett;Philos. Trans. R. Soc. Lond. B Biol. Sci.,2020

5. Responses of soil bacterial and fungal communities to extreme desiccation and rewetting;Barnard;ISME J.,2013

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