欢迎访问《应用生态学报》官方网站,今天是

应用生态学报 ›› 2026, Vol. 37 ›› Issue (4): 1025-1032.doi: 10.13287/j.1001-9332.202604.011

• 研究论文 • 上一篇    下一篇

木质素降解菌群对毛竹林土壤碳氮元素的调控

蒋迎楹, 曾文婷, 江明君, 王唯亦, 李全, 宋新章, 施曼*   

  1. 浙江农林大学竹子研究院, 杭州 311300
  • 收稿日期:2025-07-16 修回日期:2026-02-06 出版日期:2026-04-18 发布日期:2026-05-29
  • 通讯作者: *E-mail: shiman1031@126.com
  • 作者简介:蒋迎楹, 女, 2002年生, 本科生。主要从事毛竹根际微生物生态研究。E-mail: 13056836756@163.com
  • 基金资助:
    国家自然科学基金项目(32125027,32471975)和浙江省大学生科技活动计划暨新苗人才计划项目(2024R412A003)

Regulation of soil carbon and nitrogen by lignin-degrading microbial consortia in Moso bamboo forest

JIANG Yingying, ZENG Wenting, JIANG Mingjun, WANG Weiyi, LI Quan, SONG Xinzhang, SHI Man*   

  1. Bamboo Industry Institute, Zhejiang A&F University, Hangzhou 311300, China
  • Received:2025-07-16 Revised:2026-02-06 Online:2026-04-18 Published:2026-05-29

摘要: 毛竹林经营过程中遗留了大量伐桩和地下鞭,因其木质素含量高而降解缓慢,不利于毛竹林养分的再循环和土壤有机碳的固持。本研究前期从毛竹根际筛选出3个不同属且具有较强木质素降解能力的细菌:粘质沙雷氏菌(a26)、人苍白杆菌(b1)和亚苏假单胞菌(b6),将其按单菌株、双菌株或3个菌株组合分别接种至苯胺蓝培养基中,比较其木质素降解能力;同时,将其接种至含有毛竹叶和根凋落物的土壤中,探究菌群降解叶和根对土壤氮库及有机碳库的影响。结果表明:1)苯胺蓝培养基条件下3菌组合(a26×b1×b6)的木质素降解能力最高,显著高于双菌组合和单菌株。2)在含有叶凋落物的土壤,接种单菌和a26×b1、a26×b6双菌组合通过增加细菌纤维素降解功能基因(GH48)和几丁质降解功能基因丰度促进毛竹叶片的氮素归还,显著增加了土壤中铵态氮和硝态氮含量,增幅分别为10.4%~20.9%和11.4%~17.1%,但对土壤活性有机碳库的影响较小;接种a26×b1×b6 3菌组合对土壤中无机氮和活性有机碳库含量无显著影响。3)在含有根凋落物的土壤,接种单菌对土壤无机氮和活性有机碳库的影响较小;接种b1×b6和a26×b1×b6菌群显著增加了土壤中GH48比例(增幅40.9%和56.9%),维持了土壤无机氮的含量,显著增加了土壤微生物生物量碳(增幅46.5%、81.1%)和溶解性有机碳含量(增幅17.8%、25.2%),有利于土壤碳的固存。本研究结果可为毛竹林凋落物的快速降解提供有效途径,为“凋落物-土壤-微生物”连续体的碳氮循环提供科学参考。

关键词: 木质素降解, 细菌菌株组合, 凋落物分解, 土壤碳氮元素循环, 毛竹林

Abstract: During the management of Moso bamboo forests, a large number of stumps and underground rhizomes are left behind, which degrade slowly due to high lignin content, hindering nutrient recycling and soil organic carbon sequestration in Moso bamboo forests. In this study, three bacteria strains with strong lignin-degrading capabilities from different genera were isolated from the rhizosphere of Moso bamboo: Serratia marcescens (a26), Ochrobactrum anthropi (b1) and Pseudomonas asuensis (b6). We inoculated these strains individually, in pairs, or as a three-strain combination into aniline blue medium to compare their lignin-degrading abilities. Simultaneously, they were inoculated into soil containing Moso bamboo leaf and root litter to investigate the effects of leaf and root litter degradation by bacterial communities on soil nitrogen and organic carbon pools. The results showed that: 1) Under aniline blue medium conditions, the three-strain combination (a26×b1×b6) exhibited the highest lignin-degrading ability. 2) In soil with leaf litter, inoculation of single strains and the a26×b1, a26×b6 double-strain combinations promoted nitrogen return from bamboo leaves by increasing the abundance of bacterial cellulose-degrading functional gene (GH48) and chitin-degrading functional gene, significantly raising ammonium and nitrate content in the soil (rising by 10.4%-20.9% and 11.4%-17.1%, respectively), but had minimal impact on soil active organic carbon pool. Inoculation with the a26×b1×b6 three-strain combination showed no effect on soil inorganic nitrogen and active organic carbon pool. 3) In soil with root litter, inoculation with single strains had little effect on soil inorganic nitrogen and active organic carbon pools. Inoculation with the b1×b6 and a26×b1×b6 bacterial communities significantly increased the proportion of GH48 (increases of 40.9% and 56.9%), maintained soil inorganic nitrogen content, and significantly increased soil microbial biomass carbon (by 46.5% and 81.1%) and dissolved organic carbon content (by 17.8% and 25.2%), benefiting soil carbon sequestration. These findings could provide effective pathways for rapid degradation of Moso bamboo litter and offer scientific references for carbon and nitrogen cycling of the “litter-soil-microorganism” continuum.

Key words: lignin degrading, bacterial consortium, litter decomposition, soil C and N cycle, Moso bamboo forest