Mitigation of Paddy Field Soil Methane Emissions by Betaproteobacterium Azoarcus Inoculation of Rice Seeds

被引:7
作者
Sakoda, Midori [1 ]
Tokida, Takeshi [2 ]
Sakai, Yoriko [2 ]
Senoo, Keishi [3 ,4 ]
Nishizawa, Tomoyasu [1 ,5 ]
机构
[1] Tokyo Univ Agr & Technol, United Grad Sch Agr Sci, Tokyo 1838509, Japan
[2] Natl Agr & Food Res Org, Inst Agroenvironm Sci, Ibaraki 3058604, Japan
[3] Univ Tokyo, Grad Sch Agr & Life Sci, Tokyo 1138657, Japan
[4] Univ Tokyo, Collaborat Res Inst Innovat Microbiol, Tokyo 1138657, Japan
[5] Ibaraki Univ, Coll Agr, Ibaraki 3000393, Japan
关键词
methane; paddy field; Azoarcus; greenhouse gas; mitigation technique; CO2 ENRICHMENT FACE; COMMUNITY STRUCTURES; GENOME SEQUENCE; ORGANIC-CARBON; CH4; EMISSION; METHANOTROPHS; NITROGEN; IRON; FERTILIZATION; PERFORMANCE;
D O I
10.1264/jsme2.ME22052
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Paddy fields are a major source of atmospheric methane, a greenhouse gas produced by methanogens and consumed by methanotrophs in flooded soil. The inoculation of rice seeds with the bacterium Azoarcus sp. KH32C alters the rice root-associated soil bacterial community composition. The present study investigated the effects of KH32C-inoculated rice cultivation on soil methanogens and methanotrophs involved in methane emissions from a rice paddy field. KH32C-inoculated and non-inoculated rice (cv. Nipponbare) were cultivated in a Japanese rice paddy with and without nitrogen fertilizer. Measurements of methane emissions and soil solution chemical properties revealed increases in methane flux over the waterlogged period with elevations in the concentrations of dissolved methane, dissolved organic carbon, and ferrous iron, which is an indicator of soil reduction levels. Reverse transcription quantitative PCR and amplicon sequencing were used to assess the transcription of the methyl-coenzyme M reductase gene (mcrA) from methanogens and the particulate methane monooxygenase gene (pmoA) from methanotrophs in paddy soil. The results obtained showed not only the transcript copy numbers, but also the compositions of mcrA and pmoA transcripts were related to methane flux. KH32C-inoculated rice cultivation recruited soil methanogens and methanotrophs that suppressed high methane synthesis, increased methane consumption, and decreased methane emissions by 23.5 and 17.2% under non-fertilized and nitrogen-fertilized conditions, respectively, while maintaining rice grain yield. The present study demonstrated the mitigation of paddy field methane emissions arising from the use of KH32C in rice cultivation due to its influence on the compositions of soil methanogen and methanotroph populations.
引用
收藏
页数:12
相关论文
共 50 条
[1]   Mitigation of methane gas emissions in flooded paddy soil through the utilization of methanotrophs [J].
Davamani, Veeraswamy ;
Parameswari, Ettiyagounder ;
Arulmani, Subramanian .
SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 726
[2]   Mitigation of methane emissions from paddy fields by prolonging midseason drainage [J].
Itoh, Masayuki ;
Sudo, Shigeto ;
Mori, Shizuka ;
Saito, Hiroshi ;
Yoshida, Takahiro ;
Shiratori, Yutaka ;
Suga, Shinobu ;
Yoshikawa, Nanako ;
Suzue, Yasufumi ;
Mizukami, Hiroyuki ;
Mochida, Toshiyuki ;
Yagi, Kazuyuki .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2011, 141 (3-4) :359-372
[3]   Charcoal in Amazonian paddy soil-Nutrient availability, rice growth and methane emissions [J].
Barbosa de Sousa, Aurea Maria ;
Soares Santos, Raimundo Reginaldo ;
Gehring, Christoph .
JOURNAL OF PLANT NUTRITION AND SOIL SCIENCE, 2014, 177 (01) :39-47
[4]   Seasonal changes in methane emissions via different pathways from a rice paddy field [J].
Hamamoto, Shoichiro ;
Kobayakawa, Tatsuya ;
Cui, Dingwen ;
Ma, Xuping ;
Kajiura, Masako ;
Tokida, Takeshi ;
Nishimura, Taku .
PADDY AND WATER ENVIRONMENT, 2025, 23 (02) :333-342
[5]   Responses of methane emissions and rice yield to applications of biochar and straw in a paddy field [J].
Dong, Da ;
Yang, Min ;
Wang, Cheng ;
Wang, Hailong ;
Li, Yi ;
Luo, Jiafa ;
Wu, Weixiang .
JOURNAL OF SOILS AND SEDIMENTS, 2013, 13 (08) :1450-1460
[6]   Responses of methane emissions and rice yield to applications of biochar and straw in a paddy field [J].
Da Dong ;
Min Yang ;
Cheng Wang ;
Hailong Wang ;
Yi Li ;
Jiafa Luo ;
Weixiang Wu .
Journal of Soils and Sediments, 2013, 13 :1450-1460
[7]   Novel avenues of mitigation of rice paddy methane: a review [J].
Chatterjee, Ishita ;
Chakraborty, Subhajit ;
Ray, Mausumi ;
Ghosh, Rakesh ;
Chanda, Mita Rani ;
Goswami, Arunava ;
Sil, Moumita ;
Polikarpov, Igor .
JOURNAL OF CROP SCIENCE AND BIOTECHNOLOGY, 2025, 28 (03) :321-334
[8]   Nitrogen-regulated effects of free-air CO2 enrichment on methane emissions from paddy rice fields [J].
Zheng, Xunhua ;
Zhou, Zaixing ;
Wang, Yuesi ;
Zhu, Jianguo ;
Wang, Yulong ;
Yue, Jin ;
Shi, Yi ;
Kobayashi, Kazuhiko ;
Inubushi, Kazuyuki ;
Huang, Yao ;
Han, Shenghui ;
Xu, Zhongjun ;
Xie, Baohua ;
Butterbach-Bahl, Klaus ;
Yang, Lianxin .
GLOBAL CHANGE BIOLOGY, 2006, 12 (09) :1717-1732
[9]   Crop improvement strategies for mitigation of methane emissions from rice [J].
Balakrishnan, Divya ;
Kulkarni, Kalyani ;
Latha, P. C. ;
Subrahmanyam, D. .
EMIRATES JOURNAL OF FOOD AND AGRICULTURE, 2018, 30 (06) :451-462
[10]   Elevated ozone mitigates warming-induced methane emissions in a rice paddy field [J].
Zhong, Xin ;
Agathokleous, Evgenios ;
Wu, Jianghua ;
Zhang, Yujie ;
Zhou, Yuqing ;
Xu, Yansen ;
Shang, Bo ;
Ji, Yang ;
Feng, Zhaozhong .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2025, 385