凋落物多样性对矿山复垦土壤微生物代谢及多功能性的影响

Effect of Litter Diversity on Microbial Metabolism and Multifunctionality of Mine Reclaimed Soil

  • 摘要:
    目的 厘清不同凋落物多样性对复垦土壤环境、微生物代谢限制及土壤多功能性的影响。
    方法 采集山西平朔矿区安太堡露天煤矿南排土场复垦区纯油松林(CF)、榆树和油松混交林(MF)及对照的杨树林(BF)共30个表土样本,利用定量qPCR芯片技术测定土壤碳氮磷循环功能基因丰度。
    结果 凋落物多样性增加对复垦土壤理化性质、酶活性以及微生物多样性有显著的正向作用;微生物代谢养分限制主要受化学计量比调节,复垦土壤微生物碳限制与细菌丰富度负相关、与真菌丰富度无显著性关系;凋落物多样性增加有利于缓解碳限制,但对磷限制并不显著;凋落物多样性显著提升了土壤多功能性,土壤pH、有机质和细菌多样性是土壤多功能性的关键驱动因子。
    结论 凋落物多样性增加有利于复垦土壤性状改善和微生物功能提升,从而间接影响微生物代谢途径,有效提升土壤多功能性。本研究结果对未来科学配置植被资源、基于自然的解决方案服务受损矿山生态修复具有重要理论意义。

     

    Abstract:
    Objective The aims were to clarify the impact of different litter diversities on reclaimed soil environment, microbial metabolic limitations and soil multifunctionality.
    Method A total of 30 topsoil samples were collected from Pinus tabulaeformis (CF), Ulmus pumila and Pinus tabulaeformis mixed forest (MF) and poplar forest (BF) in the reclaimed area of the South Drainage Yard of Antaibao Open Pit Coal Mine in Pingshuo Kuangqu, Shanxi Province, and quantitative qPCR chip technology was used to determine the abundance of soil carbon (C), nitrogen and phosphorus (P) cycle functional genes.
    Result ①The increase in litter diversity had a significant positive effect on the physical and chemical properties, enzyme activities and microbial diversities of reclaimed soil. ②Microbial metabolic limitations were mainly regulated by stoichiometric ratios, and microbial C limitations in reclaimed soil were negatively correlated with bacterial richness, but had no significant relationship with fungal richness. Increasing litter diversities was conducive to alleviating C limitation, but not to P limitation. ③litter diversity significantly improved soil multifunctionality, and soil pH, organic matter and bacterial diversity were the key driving factors for soil multifunctionality.
    Conclusion The increase in litter diversity is conducive to the improvement of reclaimed soil properties and the improvement of microbial functions, thereby indirectly manipulating microbial metabolic pathways, effectively improving soil multifunctionality, which has important theoretical significance for the scientific allocation of vegetation resources and nature-based solutions to serve the ecological restoration of damaged mines in the future.

     

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