臭氧浓度升高对稻田土壤甲烷产生过程的影响
CSTR:
作者:
作者单位:

南京信息工程大学生态与应用气象学院

作者简介:

通讯作者:

中图分类号:

基金项目:


The Effect of Elevated Ozone Concentrations on Methane Production Process in Paddy Soil
Author:
Affiliation:

Key Laboratory of Ecosystem Carbon Source and Sink,China Meteorological Administration ECSS-CMA,School of Ecology and Applied Meteorology,Nanjing University of Information Science Technology

Fund Project:

  • 摘要
  • |
  • 图/表
  • |
  • 访问统计
  • |
  • 参考文献
  • |
  • 相似文献
  • |
  • 引证文献
  • |
  • 资源附件
  • |
  • 文章评论
    摘要:

    近地层臭氧(O3)浓度升高可以降低稻田甲烷(CH4)排放,但其对稻田土壤CH4产生过程的影响机制尚不明晰。本研究以长三角地区主栽水稻品种“南粳9108”为试验材料,利用开顶气室(Open Top Chamber,OTC),设置环境大气(NF)和环境大气+40 nmol·mol-1 O3(NF40)处理。通过采集水稻典型生育期(灌浆期和成熟期)根际土壤,开展微宇宙培养试验,并同步测定水稻根系形态特征、土壤碳组分、微生物丰度及产甲烷菌群落结构,系统分析O3浓度升高对稻田土壤CH4产生过程的调控机制。结果表明,与NF处理相比,O3浓度升高抑制水稻灌浆期根系的比根长和比根面积,提高水稻成熟期根际土壤有机碳稳定性;同时改变根际土壤产甲烷菌群落结构,降低乙酸营养型产甲烷菌相对丰度,增加氢营养型产甲烷菌相对丰度。O3浓度升高降低稻田根际土壤CH4产生速率38.1%~46.8%,其中,乙酸型途径CH4产生速率降低66.6%~68.1%,而氢型途径CH4产生速率增加6.1%~24.7%。本研究从水稻根系性状—土壤碳稳定性—产甲烷菌群落结构的耦合角度,系统阐明了O3浓度升高对稻田根际土壤CH4产生过程的调控机制,为预测未来O3污染背景下农业生态系统CH4排放响应提供重要的过程依据。

    Abstract:

    【Objective】Elevated near-surface ozone (O3) concentrations have been shown to reduce methane (CH4) emissions from rice paddies. However, the underlying mechanisms regulating soil CH4 production remain poorly understood. Thus, this study aimed to decipher the mechanisms regulating soil CH4 production at different rice growth stages and identify the main controlling factors.【Method】In this study, a widely cultivated rice cultivar (Nanjing 9108) in the Yangtze River Delta was used to investigate the effects of elevated O3 on methane production processes. An open-top chamber (OTC) system was employed to simulate elevated ozone conditions, including ambient air (NF) and ambient air supplemented with O3 (NF40 + 40 nmol·mol-1 O3). Rhizosphere soils were collected at the typical growth stages of rice (the filling stage and the maturity stage) and subjected to microcosm incubation experiments. Root morphological traits, soil carbon components, microbial abundance, and methanogenic archaeal community composition were simultaneously analyzed to elucidate the regulatory mechanisms of O3 on CH4 production. 【Results】The results showed that elevated O3 reduced specific root length (SRL) and specific root area (SRA) during the filling stage of rice, while enhancing soil organic carbon stability during the maturity stage of rice. This simultaneously altered the community composition of methanogens, characterized by an increase in the relative abundance of hydrogenotrophic methanogens and a decrease in the relative abundance of acetoclastic methanogens. O3 elevation reduced CH4 production rates in paddy soils by 38.1%–46.8%, with decreased acetoclastic methanogenesis rates by 66.6%–68.1%. Conversely, CH4 production rates via hydrogenotrophic methanogenesis increased by 6.1%–24.7%.【Conclusion】This study provides a process-based understanding of how elevated O3 regulates methane production in rice soils through coupled changes in plant root traits, soil carbon stabilization, and methanogenic community structure, offering critical insights for predicting CH4 emissions from agricultural ecosystems under future O3 pollution scenarios.

    参考文献
    相似文献
    引证文献
引用本文

王铭科,马锦峰,张艺嘉,杜一鸣,王燕波,尚 博,纪 洋,冯兆忠.臭氧浓度升高对稻田土壤甲烷产生过程的影响[J].土壤学报,2026,63(5). DOI:10.11766/trxb202601160036. WANG Mingke, MA Jinfeng, ZHANG Yijia, DU Yiming, WANG Yanbo, SHANG Bo, JI Yang, FENG Zhaozhong. The Effect of Elevated Ozone Concentrations on Methane Production Process in Paddy Soil[J]. Acta Pedologica Sinica,2026,63(5).

复制
分享
相关视频

文章指标
  • 点击次数:
  • 下载次数:
  • HTML阅读次数:
  • 引用次数:
历史
  • 收稿日期:2026-01-16
  • 最后修改日期:2026-05-14
  • 录用日期:2026-06-24
  • 在线发布日期: 2026-06-26
  • 出版日期:
文章二维码