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首页> 外文期刊>The ISME journal emultidisciplinary journal of microbial ecology >Novel phosphate-solubilizing bacteria enhance soil phosphorus cycling following ecological restoration of land degraded by mining
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Novel phosphate-solubilizing bacteria enhance soil phosphorus cycling following ecological restoration of land degraded by mining

机译:新型磷酸溶解细菌增强土地生态恢复后的土壤磷循环降解

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摘要

Little is known about the changes in soil microbial phosphorus (P) cycling potential during terrestrial ecosystem management and restoration, although much research aims to enhance soil P cycling. Here, we used metagenomic sequencing to analyse 18 soil microbial communities at a P-deficient degraded mine site in southern China where ecological restoration was implemented using two soil ameliorants and eight plant species. Our results show that the relative abundances of key genes governing soil microbial P-cycling potential were higher at the restored site than at the unrestored site, indicating enhancement of soil P cycling following restoration. The gcd gene, encoding an enzyme that mediates inorganic P solubilization, was predominant across soil samples and was a major determinant of bioavailable soil P. We reconstructed 39 near-complete bacterial genomes harboring gcd, which represented diverse novel phosphate-solubilizing microbial taxa. Strong correlations were found between the relative abundance of these genomes and bioavailable soil P, suggesting their contributions to the enhancement of soil P cycling. Moreover, 84 mobile genetic elements were detected in the scaffolds containing gcd in the 39 genomes, providing evidence for the role of phage-related horizontal gene transfer in assisting soil microbes to acquire new metabolic potential related to P cycling.
机译:虽然许多研究旨在增强土壤P循环,但众所周知,众所周知土壤微生物磷(P)循环潜力的变化在这里,我们使用了Metagenomic测序在中国南部的P缺陷降解矿山点分析了18种土壤微生物群落,其中使用两种土壤修复剂和八种植物物种进行生态修​​复。我们的研究结果表明,治疗土壤微生物P循环潜力的关键基因的相对丰富于未安定部位,表明恢复后的土壤P循环的增强。编码介导无机P溶解的酶的GCD基因在土壤样品上占主导地位,是生物可利用土壤的主要决定因素。我们重建了39种含有GCD的近乎完全的细菌基因组,其代表了不同的新型磷酸溶解微生物分类群。在这些基因组和生物利用土壤P的相对丰度之间发现了强烈的相关性,表明他们对土壤p循环增强的贡献。此外,在39个基因组中含有GCD的支架中检测到84个流动遗传元件,为噬菌体相关水平基因转移在辅助土壤微生物中的作用提供证据,以获得与P循环相关的新代谢潜力。

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    South China Normal Univ Sch Life Sci Inst Ecol Sci Guangzhou 510631 Peoples R China;

    Sun Yat Sen Univ Sch Life Sci Guangzhou 510275 Peoples R China;

    South China Normal Univ Sch Life Sci Inst Ecol Sci Guangzhou 510631 Peoples R China;

    Sun Yat Sen Univ Sch Life Sci Guangzhou 510275 Peoples R China;

    Sun Yat Sen Univ Sch Life Sci Guangzhou 510275 Peoples R China;

    Sun Yat Sen Univ Sch Life Sci Guangzhou 510275 Peoples R China;

    Sun Yat Sen Univ Sch Life Sci Guangzhou 510275 Peoples R China;

    South China Normal Univ Sch Life Sci Inst Ecol Sci Guangzhou 510631 Peoples R China;

    South China Normal Univ Sch Life Sci Inst Ecol Sci Guangzhou 510631 Peoples R China;

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  • 正文语种 eng
  • 中图分类 微生物学;
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