生物多样性 ›› 2026, Vol. 34 ›› Issue (7): 26122.  DOI: 10.17520/biods2026122

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银杉天然林与人工林土壤微生物多样性、网络结构 及功能潜力差异

谢鹏1#, 周志波1#, 樊绍刚1, 莫平1, 黄科瑞1, 邓爱华1, 杨友伟1, 伍飞2, 肖德伟3, 王云1*   

  1. 1. 湖南文理学院生命与环境科学学院,湖南常德 415000 2. 城步苗族自治县青界山国有林场,湖南城步 422500 3. 滁口国有林场,湖南资兴 423400
  • 收稿日期:2026-04-09 修回日期:2026-07-01 出版日期:2026-07-20
  • 通讯作者: 王云
  • 基金资助:
    湖南省自然科学基金(2026JJ50424); 国家自然科学基金(32501690); 湖南省自然科学基金(2023JJ30436); 湖南省自然科学基金(2023JJ40464); 湖南省自然科学基金(2023JJ50051)

Soil microbial diversity, network structure, and functional potential differ between natural and plantation forests of Cathaya argyrophylla

Peng Xie1#, Zhibo Zhou1#, Shaogang Fan1, Ping Mo1, Kerui Huang1, Aihua Deng1, Youwei Yang1, Fei Wu2, Dewei Xiao3, Yun Wang1*   

  1. 1. College of Life and Environmental Sciences, Hunan University of Arts and Science, Changde, Hunan, China 

    2. Qingjie Mountain State Forest Farm, Chengbu, Hunan, China 

    3. Chukou State-Owned Forest Farm, Zixing, Hunan, China

  • Received:2026-04-09 Revised:2026-07-01 Online:2026-07-20
  • Contact: Yun Wang
  • Supported by:
    the Natural Science Foundation of Hunan Province (2026JJ50424, 2023JJ30436, 2023JJ40464, 2023JJ50051); National Natural Science Foundation of China(32501690)

摘要: 银杉(Cathaya argyrophylla)是松科银杉属的唯一现存种,具有重要的进化研究价值。作为典型的外生菌根依赖型树种,其迁地保护和人工繁育常面临幼苗存活率低、种群更新缓慢等瓶颈,这可能与银杉人工林土壤微生物群落结构及功能的差异,导致养分循环受阻,进而影响幼苗生长。为揭示人工栽培对银杉土壤微生态的影响机制,本研究基于16S rRNA和ITS高通量测序技术,比较分析了银杉人工林与天然林土壤理化性质及土壤微生物群落多样性、构建机制、网络特征与功能潜力的差异。结果表明:银杉人工林土壤的有效磷、速效钾、硝态氮含量及pH值显著高于天然林,而总碳和有机质含量较低;人工林土壤细菌α多样性显著高于天然林,但微生物共现网络的连通性和稳定性显著下降;群落构建机制由确定性选择主导转向随机过程主导。物种组成上,天然林富集嗜酸热菌属(Acidothermus)、瓶霉属(Oidiodendron)等耐酸性共生类群,人工林则以芽孢杆菌属(Bacillus)、木霉属(Trichoderma)等富营养型类群为主。现行人工林经营模式虽短期内提高了土壤养分有效性和细菌多样性,却导致微生物网络结构碎片化、关键共生菌群丧失及功能潜力退化,可能通过削弱银杉的菌根养分获取能力和土壤生态系统的缓冲能力,限制种群的长期恢复与自我维持。因此,银杉迁地保护应从单纯关注植物个体存活转向维护土壤微生态网络完整性,建议采取减少化肥投入、促进凋落物回归、调控土壤pH至适宜范围(4.5–5.5)、引入土著关键共生菌群等措施,重建功能稳定、互惠主导的根际互作体系,为银杉等菌根依赖型珍稀物种的可持续保护提供微生态支撑。

关键词: 银杉, 土壤微生物群落, 微生物网络稳定性, 群落构建, 可持续管理, 迁地保护

Abstract

Aims: Cathaya argyrophylla is the only extant species of the genus Cathaya in the family Pinaceae and has great evolutionary significance. As a typical ectomycorrhizal-dependent tree species, its ex situ conservation and artificial propagation are often constrained by low seedling survival and slow population regeneration. These limitations may be associated with disturbances to the rhizosphere microecosystem under artificial cultivation. This study aimed to reveal the effects of artificial cultivation on the soil microecology of C. argyrophylla and to provide a scientific basis for improving conservation strategies. 

Methods: We used 16S rRNA gene and ITS high-throughput sequencing, we compared soil physicochemical properties, microbial diversity, community assembly processes, co-occurrence network characteristics, and functional potential between C. argyrophylla plantations and natural forests. 

Results: Compared with natural forests, plantation soils had significantly higher available phosphorus, available potassium, nitrate nitrogen, and pH, but lower total carbon and soil organic matter contents. Bacterial α-diversity was significantly higher in plantation soils, whereas the connectivity and stability of microbial co-occurrence networks markedly decreased. Community assembly shifted from deterministic selection-dominated processes in natural forests to increased stochastic processes in plantations. In terms of taxonomic composition, natural forests were enriched with acid-tolerant and symbiotic taxa such as Acidothermus and Oidiodendron, whereas plantations were dominated by copiotrophic taxa such as Bacillus and Trichoderma

Conclusion: Current plantation management practices may enhance soil nutrient availability and bacterial diversity in the short term, but they are also associated with fragmented microbial network structures, loss of key symbiotic taxa, and degradation of functional potential. These changes may constrain the long-term recovery and self-maintenance of C. argyrophylla populations by weakening mycorrhizal nutrient acquisition and the buffering capacity of soil ecosystems. Therefore, ex situ conservation of C. argyrophylla should shift from a sole focus on plant survival to the maintenance of soil microecological network integrity. Management practices such as reducing chemical fertilizer inputs, promoting litter return, maintaining moderately acidic soil conditions, and introducing indigenous keystone symbiotic taxa may help reconstruct a functionally stable and mutualism-dominated rhizosphere interaction system, thereby providing microecological support for the sustainable conservation of C. argyrophylla and other mycorrhizal-dependent rare species.

Key words: Cathaya argyrophylla, soil microbiome, microbial network stability, community assembly, sustainable management, ex situ conservation