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首页> 外文期刊>MBio >Detecting Nitrous Oxide Reductase (nosZ) Genes in Soil Metagenomes: Method Development and Implications for the Nitrogen Cycle
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Detecting Nitrous Oxide Reductase (nosZ) Genes in Soil Metagenomes: Method Development and Implications for the Nitrogen Cycle

机译:检测土壤基因组中的一氧化二氮还原酶(nosZ)基因:方法开发和氮循环的意义。

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摘要

Microbial activities in soils, such as (incomplete) denitrification, represent major sources of nitrous oxide (N2O), a potent greenhouse gas. The key enzyme for mitigating N2O emissions is NosZ, which catalyzes N2O reduction to N2. We recently described “atypical” functional NosZ proteins encoded by both denitrifiers and nondenitrifiers, which were missed in previous environmental surveys (R. A. Sanford et al., Proc. Natl. Acad. Sci. U. S. A. 109:19709–19714, 2012, doi:10.1073/pnas.1211238109). Here, we analyzed the abundance and diversity of both nosZ types in whole-genome shotgun metagenomes from sandy and silty loam agricultural soils that typify the U.S. Midwest corn belt. First, different search algorithms and parameters for detecting nosZ metagenomic reads were evaluated based on in silico-generated (mock) metagenomes. Using the derived cutoffs, 71 distinct alleles (95% amino acid identity level) encoding typical or atypical NosZ proteins were detected in both soil types. Remarkably, more than 70% of the total nosZ reads in both soils were classified as atypical, emphasizing that prior surveys underestimated nosZ abundance. Approximately 15% of the total nosZ reads were taxonomically related to Anaeromyxobacter, which was the most abundant genus encoding atypical NosZ-type proteins in both soil types. Further analyses revealed that atypical nosZ genes outnumbered typical nosZ genes in most publicly available soil metagenomes, underscoring their potential role in mediating N2O consumption in soils. Therefore, this study provides a bioinformatics strategy to reliably detect target genes in complex short-read metagenomes and suggests that the analysis of both typical and atypical nosZ sequences is required to understand and predict N2O flux in soils. >IMPORTANCE Nitrous oxide (N2O) is a potent greenhouse gas with ozone layer destruction potential. Microbial activities control both the production and the consumption of N2O, i.e., its conversion to innocuous dinitrogen gas (N2). Until recently, consumption of N2O was attributed to bacteria encoding “typical” nitrous oxide reductase (NosZ). However, recent phylogenetic and physiological studies have shown that previously uncharacterized, functional, “atypical” NosZ proteins are encoded in genomes of diverse bacterial groups. The present study revealed that atypical nosZ genes outnumbered their typical counterparts, highlighting their potential role in N2O consumption in soils and possibly other environments. These findings advance our understanding of the diversity of microbes and functional genes involved in the nitrogen cycle and provide the means (e.g., gene sequences) to study N2O fluxes to the atmosphere and associated climate change.
机译:土壤中的微生物活动,例如(不完全的)反硝化作用,是一氧化二氮(N 2 O)的主要来源,一氧化二氮是一种有效的温室气体。缓解N 2 O排放的关键酶是NosZ,它催化N 2 O还原为N 2 。我们最近描述了反硝化剂和非脱硝剂均编码的“非典型”功能NosZ蛋白,这在先前的环境调查中均被遗漏(RA Sanford等人,Proc。Natl。Acad。Sci。USA 109:19709–19714,2012,doi:10.1073 /pnas.1211238109)。在这里,我们分析了以美国中西部玉米带为代表的沙质和粉质壤土农业土壤的全基因组shot弹枪基因组中的两种 nosZ 类型的丰度和多样性。首先,基于计算机生成的(模拟)元基因组,评估了用于检测 nosZ 宏基因组读数的不同搜索算法和参数。使用推导的临界值,在两种土壤类型中均检测到编码典型或非典型NosZ蛋白的71个不同等位基因(95%氨基酸同一性水平)。值得注意的是,两种土壤中总的 nosZ 读数中有70%以上被归为非典型,强调先前的调查低估了 nosZ 的丰度。在 nosZ 总读数中约有15%与厌氧杆菌在分类学上相关,这是两种土壤中编码非典型NosZ型蛋白质的最丰富的属。进一步的分析表明,在大多数公众可获得的土壤基因组中,非典型的 nosZ 基因数量超过典型的 nosZ 基因,突显了它们在介导N 2 O消耗中的潜在作用。土壤。因此,这项研究提供了一种生物信息学策略,可以可靠地检测复杂的短读元基因组中的靶基因,并建议需要对典型和非典型的 nosZ 序列进行分析,才能理解和预测N 2 < / sub>土壤中的O通量。 >重要性:一氧化二氮(N 2 O)是一种强效的温室气体,具有破坏臭氧层的潜力。微生物活动控制N 2 O的产生和消耗,即其转化为无害二氮气体(N 2 )。直到最近,消耗N 2 O还是归因于编码“典型”一氧化二氮还原酶(NosZ)的细菌。但是,最近的系统发育和生理学研究表明,以前未表征的功能性“非典型” NosZ蛋白在各种细菌群体的基因组中编码。本研究表明,非典型的 nosZ 基因数量超过其典型对应基因,突显了其在土壤和其他环境中消耗N 2 O的潜在作用。这些发现提高了我们对涉及氮循环的微生物和功能基因多样性的理解,并提供了研究N 2 通向大气的通量和相关的气候变化的手段(例如基因序列)。

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