Xiaopeng Wang, He Wang, Man Zhou, Zuopin Zhuo, Gengen Lin, Yue Zhang, Fangshi Jiang, Yanhe Huang, Jinshi Lin
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Additionally, the vegetation rehabilitation models also altered the community structure of soil bacteria and fungi in the degraded <i>P. massoniana</i> forests. The pH and soil fertility index (IFI) were the main factors leading to variations in the community structure of the soil bacteria and fungi. Among them, the grass-planting model showed a significantly greater improvement in the soil fertility of degraded <i>P. massoniana</i> forests than the shrub-planting and arbor-planting models. Furthermore, Ascomycota, Basidiomycota, and Glomeromycota exhibited the most significant response to IFI, indicating their potential as indicator microorganisms for soil fertility changes. The improvement in soil fertility in degraded <i>P. massoniana</i> forests was influenced primarily by the increase in urease activity (S-UE) according to the vegetation rehabilitation models (84.20%, <i>p</i> = 0.000). In conclusion, the grass-planting system effectively improved the soil ecosystem quality of degraded <i>P. massoniana</i> forests in southern erosion-prone areas of China and was suitable for further application.</p>","PeriodicalId":203,"journal":{"name":"Land Degradation & Development","volume":null,"pages":null},"PeriodicalIF":3.6000,"publicationDate":"2024-04-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Response of soil microorganisms to soil fertility in the process of vegetation rehabilitation of degraded Pinus massoniana forest\",\"authors\":\"Xiaopeng Wang, He Wang, Man Zhou, Zuopin Zhuo, Gengen Lin, Yue Zhang, Fangshi Jiang, Yanhe Huang, Jinshi Lin\",\"doi\":\"10.1002/ldr.5147\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The rehabilitation of diverse and three-dimensional forest vegetation patterns is crucial for preventing forest degradation and improving soil fertility. 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引用次数: 0
摘要
恢复多样化和立体化的森林植被模式对于防止森林退化和提高土壤肥力至关重要。然而,土壤微生物群落与土壤肥力之间的关系并不明确。为了准确评估植被恢复措施对退化土壤生态系统实际影响的能力。我们选取了中国典型水土流失地区退化的马尾松林为研究对象,以未经处理的裸地为对照,建立了三种植被恢复模式。三种植被建设模式都增加了土壤细菌和真菌的数量和多样性,从而提高了土壤生态系统的稳定性。此外,植被恢复模式还改变了退化的马尾松林中土壤细菌和真菌的群落结构。pH 值和土壤肥力指数(IFI)是导致土壤细菌和真菌群落结构变化的主要因素。其中,植草模式对退化的马齿苋林土壤肥力的改善程度明显高于灌木种植和乔木种植模式。此外,子囊菌群(Ascomycota)、担子菌群(Basidiomycota)和球菌群(Glomeromycota)对 IFI 的反应最为显著,这表明它们有可能成为土壤肥力变化的指示微生物。根据植被恢复模型(84.20%,p = 0.000),退化的 P. massoniana 森林的土壤肥力改善主要受脲酶活性(S-UE)增加的影响。总之,植草系统有效改善了中国南方水土流失易发区退化马尾松林的土壤生态系统质量,适合进一步推广应用。
Response of soil microorganisms to soil fertility in the process of vegetation rehabilitation of degraded Pinus massoniana forest
The rehabilitation of diverse and three-dimensional forest vegetation patterns is crucial for preventing forest degradation and improving soil fertility. However, the relationship between soil microbial community and soil fertility was not clear. To accurately assess the capability of vegetation restoration measures on the real impact on degraded soil ecosystems. We selected three vegetation rehabilitation models of degraded Pinus massoniana forests in typical soil erosion areas in China as the research objects, with untreated bare land as the control. All three vegetation construction patterns increased the abundance and diversity of soil bacteria and fungi, thereby enhancing the stability of the soil ecosystem. Additionally, the vegetation rehabilitation models also altered the community structure of soil bacteria and fungi in the degraded P. massoniana forests. The pH and soil fertility index (IFI) were the main factors leading to variations in the community structure of the soil bacteria and fungi. Among them, the grass-planting model showed a significantly greater improvement in the soil fertility of degraded P. massoniana forests than the shrub-planting and arbor-planting models. Furthermore, Ascomycota, Basidiomycota, and Glomeromycota exhibited the most significant response to IFI, indicating their potential as indicator microorganisms for soil fertility changes. The improvement in soil fertility in degraded P. massoniana forests was influenced primarily by the increase in urease activity (S-UE) according to the vegetation rehabilitation models (84.20%, p = 0.000). In conclusion, the grass-planting system effectively improved the soil ecosystem quality of degraded P. massoniana forests in southern erosion-prone areas of China and was suitable for further application.
期刊介绍:
Land Degradation & Development is an international journal which seeks to promote rational study of the recognition, monitoring, control and rehabilitation of degradation in terrestrial environments. The journal focuses on:
- what land degradation is;
- what causes land degradation;
- the impacts of land degradation
- the scale of land degradation;
- the history, current status or future trends of land degradation;
- avoidance, mitigation and control of land degradation;
- remedial actions to rehabilitate or restore degraded land;
- sustainable land management.