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杭州湾鹭鸟鸟粪输入对栖息地土壤有机碳的影响及驱动因子分析

Effects of Ardeidae bird droppings on soil organic carbon and its driving factors across habitats in Hangzhou Bay

  • 摘要: 鹭鸟作为湿地生态系统中重要的生物之一,其行为活动产生的鸟粪深刻影响着土壤环境特征。为探究不同生境下鸟粪输入对湿地土壤有机碳含量的影响及其驱动因子,选择杭州湾滨海滩涂和内陆平原2种鹭鸟栖息地,研究鸟粪输入下栖息地土壤有机碳的变化特征,并结合土壤特征及微生物群落,分析其对土壤有机碳的影响。研究结果表明,鸟粪输入改变了土壤养分状况。与对照地相比,滨海滩涂栖息地0~10 cm深度土壤全氮、全磷和有效磷含量分别增加66.96%、120.33%和178.14%,内陆平原栖息地分别增加115.90%、688.57%和2 693.44%;在10~20 cm深度土壤中,全氮、全磷和有效磷含量也均有不同程度增加;同时2种栖息地0~10 cm深度土壤pH均显著下降(p<0.05),氮磷比降低,其中内陆平原降幅更为明显。鸟粪输入还显著影响了土壤微生物的多样性及群落结构:在内陆平原栖息地,0~20 cm深度土壤微生物群落Shannon-Wiener多样性指数较对照地显著降低,而滨海滩涂则没有明显变化;相反,2种栖息地真菌群落0~10 cm深度土壤微生物Shannon-Wiener多样性指数分别较对照地提高了34.62%和25.99%,这表明鸟粪输入削弱了内陆平原土壤细菌多样性,却显著提高了2种栖息地土壤真菌多样性。此外,细菌和真菌群落中富营养菌的相对丰度有所增加,但减少了寡营养菌的相对丰度;鸟粪输入促进了土壤有机碳的积累,尤其在0~10 cm深度土壤中更为明显。土壤有机碳与全氮、全磷、有效磷、氮磷比和真菌群落多样性呈正相关,与土壤电导率、pH和细菌群落多样性呈负相关。总体来看,鸟粪通过调节土壤养分格局和微生物群落结构并改变pH,从而影响土壤有机碳的固存。因此鸟粪输入对提升湿地碳汇功能具有积极意义,也为科学管理鹭鸟栖息地提供理论依据。

     

    Abstract: Ardeidae birds are important components of wetland ecosystems and play a significant role in regulating nutrient cycling and ecosystem functioning. Through long-term roosting activities, large quantities of bird droppings are deposited onto the forest floor, introducing considerable amounts of organic matter and nutrients into the soil. These inputs can substantially alter soil physicochemical properties, microbial communities, and biogeochemical processes, thereby affecting soil organic carbon accumulation and storage. However, the mechanisms by which bird-dropping inputs influence soil organic carbon (SOC) dynamics in different habitats remain poorly understood. Therefore, this study investigated the effects of bird-dropping inputs on SOC and its driving factors in Ardeidae bird-roosting forests located in the coastal mudflat and inland plain regions of Hangzhou Bay, China. Soil samples were collected from bird-roosting forests and adjacent control forests at depths of 0-10 cm and 10-20 cm. Soil physicochemical properties, microbial diversity, community composition, and SOC content were analyzed to evaluate the impacts of bird-dropping inputs on soil carbon dynamics and to identify the major factors controlling SOC variation. The results showed that bird-dropping inputs significantly enhanced soil nutrient availability in both habitats. Compared with the corresponding control forests, total nitrogen, total phosphorus, and available phosphorus contents in the 0-10 cm soil layer increased by 66.96%, 120.33%, and 178.14%, respectively, in the coastal mudflat forest, and by 115.90%, 688.57%, and 2 693.44%, respectively, in the inland plain forest. Similar increases were observed in the 10-20 cm soil layer. Meanwhile, bird-dropping inputs significantly decreased soil pH and increased electrical conductivity, suggesting substantial alterations in soil chemical properties. The magnitude of nutrient enrichment and soil acidification was generally greater in the inland plain forest than in the coastal mudflat forest. Bird-dropping inputs also markedly affected soil microbial communities. In the inland plain forest, bacterial Shannon-Wiener diversity decreased significantly compared with the control forest, whereas no significant change was observed in the coastal mudflat forest. In contrast, fungal diversity increased significantly in the surface soil (0-10 cm) of both habitats, with increases of 34.62% and 25.99% in the coastal mudflat and inland plain forests, respectively. Community composition analysis further revealed that the relative abundances of copiotrophic taxa, including Proteobacteria, Actinobacteriota, and Ascomycota, increased, whereas oligotrophic taxa such as Acidobacteriota, Chloroflexi, and Basidiomycota decreased. These results indicate that nutrient enrichment caused by bird-dropping inputs favored nutrient-demanding microorganisms while suppressing taxa adapted to nutrient-poor environments. Bird-dropping inputs significantly promoted SOC accumulation, particularly in the 0-10 cm soil layer. Correlation analysis, random forest modeling, and partial least squares path modeling indicated that (total nitrogen) TN, (total phosphorus) TP, soil pH, and microbial diversity were the major factors influencing SOC variation. SOC was positively correlated with nutrient availability and fungal diversity, but negatively correlated with soil pH, electrical conductivity, and bacterial diversity. These findings suggest that bird-dropping inputs enhance SOC accumulation not only through direct organic matter inputs but also through indirect regulation of soil nutrient conditions, microbial community structure, and associated carbon cycling processes. Overall, bird-dropping inputs substantially altered soil nutrient status and microbial communities, ultimately promoting SOC accumulation in both habitats. This study highlights the ecological importance of bird-dropping inputs in regulating soil carbon dynamics and provides new insights into the mechanisms linking bird activities with belowground carbon cycling in wetland ecosystems.

     

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