生物多样性 ›› 2026, Vol. 34 ›› Issue (7): 26016.  DOI: 10.17520/biods.2026016

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马陆对土壤温室气体排放影响机制的研究进展与展望

王明柳1,2, 任玉连1, 陆梅1,2*   

  1. 1. 西南林业大学生态与环境学院(湿地学院)国家高原湿地研究中心/云南省高原湿地保护修复与生态服务重点实验室, 昆明 650224; 2. 西南林业大学水土保持学院, 昆明 650224
  • 收稿日期:2026-01-18 修回日期:2026-04-23 接受日期:2026-05-17 出版日期:2026-07-20
  • 通讯作者: 陆梅
  • 基金资助:
    国家自然科学基金(32271722); 云南省农业联合重点项目(202501BD070001-024); 云南省中青年学术技术带头人后备人才项目(202205AC160047); 云南省中青年学术技术带头人后备人才项目(996325106)

Research progress and prospects of mechanisms by which millipedes influence soil greenhouse gas emissions

Mingliu Wang1,2, Yulian Ren1, Mei Lu1,2*   

  1. 1 National Plateau Wetlands Research Center/Yunnan Key Laboratory of Plateau Wetland Conservation, Restoration and Ecological Services, College of Ecology and Environment (College of Wetlands), Southwest Forestry University, Kunming 650024, China 

    2 College of Soil and Water Conservation, Southwest Forestry University, Kunming 650024, China

  • Received:2026-01-18 Revised:2026-04-23 Accepted:2026-05-17 Online:2026-07-20
  • Contact: Mei Lu

摘要: 大气CO2、CH4、N2O等温室气体排放剧增所导致的全球变暖已成为国际社会和科学界共同关注的焦点。土壤动物如何介导碳氮循环过程进而驱动温室气体排放, 是全球气候变化研究的前沿科学问题。马陆作为全球物种多样性最丰富(> 12,000种)的关键节肢动物类群, 能够扮演消费者、分解者、捕食者及土壤工程师等多重角色, 可直接或间接调控土壤碳氮循环过程及相关温室气体(CO2、CH4、N2O)的排放。目前, 关于土壤动物对温室气体排放影响机制的研究主要集中于蚯蚓、白蚁等类群, 而有关马陆调控土壤温室气体排放的研究则十分缺乏, 大多为近20年来针对5目25科34属共几十个模式物种所开展的微观或控制实验。本文系统梳理了国内外关于马陆对土壤碳氮循环及CO2、CH4、N2O等排放影响的研究成果, 初步总结了其影响过程及机制: (1)马陆通过取食分解凋落物的肠道过程刺激自身呼吸、肠道酶活性及功能微生物活动直接促进CO2、CH4、N2O的排放; 同时通过凋落物破碎和粪球效应介导微生物及土壤动物活动间接影响温室气体排放。(2)马陆通过分泌、消化和排泄等作用调控土壤碳氮矿化及微生物呼吸过程, 从而影响土壤温室气体的产生。(3)马陆通过介导土壤功能微生物、功能酶、需氧-厌氧环境等变化影响土壤硝化、反硝化、氧化和还原过程, 从而调控CO2、CH4和N2O的排放。(4)马陆通过与根系、土壤、微生物及其他节肢动物的相互作用介导植物和土壤环境变化, 进而影响碳氮矿化、硝化、反硝化、甲烷氧化与还原等关键过程, 间接驱动土壤温室气体排放。未来的研究应重视“基于野外原位控制及微宇宙实验”的机理解析, 探索不同食性马陆对土壤碳氮关键过程、碳氮固定及温室气体排放的影响机制, 科学评估马陆活动对CO2、CH4、N2O排放的促进或抑制效应。

关键词: 马陆, 温室气体, 凋落物分解, 碳氮矿化, 硝化, 反硝化, 甲烷氧化, 甲烷还原

Abstract

Backgrounds & Aims: Global warming caused by the sharp increase in atmospheric greenhouse gas (CO2, CH4, and N2O) emissions has become a major concern for both the international and scientific communities. Understanding how soil fauna mediate the carbon and nitrogen processes to drive greenhouse gas emissions is a frontier scientific issue in global climate change research. As a key arthropod group with extremely high species diversity globally (with over 12,000 species), millipedes can directly or indirectly regulate soil carbon and nitrogen cycle processes and the associated emissions of greenhouse gases (i.e., CO2, CH4, and N2O) through their multiple roles as consumers, decomposers, predators, and soil engineers. At present, research on the mechanism by which soil fauna affect greenhouse gas emissions mainly focuses on groups such as earthworms and termites, while studies on millipedes regulating soil greenhouse gas emissions are extremely scarce. Most of them are microscopic or control experiments conducted in the past 20 years on dozens of model species from 25 families and 34 genera under 5 orders. This paper systematically reviews relevant domestic and international research findings about the effects of millipedes on soil carbon and nitrogen cycling as well as the emissions of greenhouse gases such as CO2, CH4, and N2O. We also preliminarily summarize the underlying processes and mechanisms. 

Review Results: (1) Millipedes directly promoted CO2, CH4, and N2O emissions by stimulating their own respiration, gut enzyme activities, and functional microbial activities during litter feeding and decomposition; simultaneously, they indirectly affected greenhouse gas emissions through litter fragmentation and the mediation of microbial and soil faunal activities via fecal pellets. (2) Millipedes regulated soil greenhouse gas production by affecting soil carbon and nitrogen mineralization and microbial respiration processes through secretion, digestion, and excretion. (3) By mediating changes in soil functional microorganisms, functional enzymes, and aerobic-anaerobic conditions, millipedes influenced soil nitrification, denitrification, oxidation, and reduction processes, thereby regulating CO2, CH4, and N2O emissions. (4) Through interactions with plant roots, soil, microorganisms, and other arthropods, millipede activities mediated changes in plants and the soil environment, thereby indirectly driving soil greenhouse gas emissions by influencing key processes such as carbon and nitrogen mineralization, nitrification, denitrification, methane oxidation and reduction. 

Conclusion: Future research should focus on the mechanism analysis based on in-situ field control and microcosmic experiments, exploring the mechanisms by which different feeding-habit millipedes affect key processes in soil carbon and nitrogen, as well as carbon and nitrogen fixation and greenhouse gas emissions. It is also essential to scientifically evaluate the promoting or inhibiting effects of millipede activities on the releases of CO2, CH4, and N2O.

Key words: millipedes, greenhouse gas, litter decomposition, carbon and nitrogen mineralization, nitrification, denitrification, methane oxidation, methane reduction