Edaphic controls on genome size and GC content of bacteria in soil microbial communities

土壤学 GC含量 基因组大小 基因组 营养物 生物 土壤水分 细菌 土壤pH值 氨基酸 密码子使用偏好性 细菌基因组大小 食品科学 基因 遗传学 生态学
作者
Peter F. Chuckran,Cody Flagg,Jeffrey Propster,William A. Rutherford,Ella T. Sieradzki,Steven J. Blazewicz,Bruce A. Hungate,Jennifer Pett‐Ridge,Egbert Schwartz,Paul Dijkstra
出处
期刊:Soil Biology & Biochemistry [Elsevier BV]
卷期号:178: 108935-108935 被引量:18
标识
DOI:10.1016/j.soilbio.2022.108935
摘要

Nutrient limitation has been shown to reduce bacterial genome size and influence nucleotide composition; however, much of this work has been conducted in marine systems and the factors which shape soil bacterial genomic traits remain largely unknown. Here we determined average genome size, GC content, codon usage, and amino acid content from 398 soil metagenomes across a broad geographic range and used machine-learning to determine the environmental parameters that most strongly explain the distribution of these traits. We found that genomic trait averages were most related to pH, which we suggest is primarily due to the correlation of pH with several environmental parameters, particularly soil carbon content. Low pH soils had higher carbon to nitrogen ratios (C:N) and tended to have communities with lower GC content and larger genomes, potentially a response to increased physiological stress and a requirement for metabolic diversity. Conversely, communities in high pH and low soil C:N had smaller genomes and higher GC content—indicating potential resource driven selection against AT base pairs, which have a higher C:N than GC base pairs. Similarly, we found that nutrient conservation also applied to amino acid stoichiometry, where bacteria in soils with low C:N ratios tended to code for amino acids with lower C:N. Together, these relationships point towards fundamental mechanisms that underpin genome size, and nucleotide and amino acid selection in soil bacteria.
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